2026 (4)
Comprehensive characterisation of IAA inactivation pathways reveals the impact of glycosylation on auxin metabolism and plant development in Arabidopsis. Casanova-Sáez, R., Pěnčík, A., Brunoni, F., Ament, A., Hladík, P., Žukauskaitė, A., Šimura, J., Voß, U., Novák, O., Bennett, M., Ljung, K., & Mateo-Bonmatí, E. Communications Biology, 9(1): 762. June 2026.
Comprehensive characterisation of IAA inactivation pathways reveals the impact of glycosylation on auxin metabolism and plant development in Arabidopsis [link]Paper   doi   link   bibtex   abstract  
Illuminating the subcellular maze: fluorescence-activated organelle sorting in plant sciences. Skalický, V., Antoniadi, I., Ljung, K., & Novák, O. Journal of Experimental Botany, 77(1): 120–133. January 2026.
Illuminating the subcellular maze: fluorescence-activated organelle sorting in plant sciences [link]Paper   doi   link   bibtex   abstract  
L-Glutamine Modulates Root Architecture and Hormonal Balance in Arabidopsis. Pařízková, B., Johansson, A. I., Juvany, M., Šimura, J., Ljung, K., & Antoniadi, I. Physiologia Plantarum, 178(1): e70723. 2026. _eprint: https://onlinelibrary.wiley.com/doi/pdf/10.1111/ppl.70723
L-Glutamine Modulates Root Architecture and Hormonal Balance in Arabidopsis [link]Paper   doi   link   bibtex   abstract  
Recruitment of bifunctional regulator thermospermine to methylated ribosomes directs xylem fate. Ko, D., Ruonala, R., Faille, A., Hellmann, E., Help, H., Liu, H., Nielsen, R., Haakonsson, A., De Diego, N., Paatero, A., Shcherbii, M. V., Stefanowicz, K., Ćavar Zeljković, S., Drud Lundager Rasmussen, T., Novak, O., Bodi, Z., Eswaran, G., Wybouw, B., Bourdon, M., Urbez, C., Liu, X., Salokas, K., Öhman, T., Waldie, T., Törönen, P., el-Showk , S., Balcerowicz, M., Besnard, F., Liu, X., Perkins, P., Mazzoni-Putman, S., Vainonen, J. P., Sierla, M., Frilander, M. J., Mandrup, S., Vernoux, T., Ljung, K., Ferrando, A., Blazquez, M. A., Holm, L., Fray, R., Varjosalo, M., Leyser, O., Paavilainen, V. O., Mähönen, A. P., Stepanova, A., Alonso, J., Heber, S., Malinowski, R., Kirpekar, F., Warren, A. J., & Helariutta, Y. Science, 391(6786): 694–699. February 2026.
Recruitment of bifunctional regulator thermospermine to methylated ribosomes directs xylem fate [link]Paper   doi   link   bibtex   abstract  
  2025 (7)
A long-distance inhibitory system regulates haustoria numbers in parasitic plants. Kokla, A., Leso, M., Šimura, J., Wärdig, C., Hayashi, M., Nishii, N., Tsuchiya, Y., Ljung, K., & Melnyk, C. W. Proceedings of the National Academy of Sciences, 122(8): e2424557122. February 2025.
A long-distance inhibitory system regulates haustoria numbers in parasitic plants [link]Paper   doi   link   bibtex   abstract  
A suitable strategy to find IAA metabolism mutants. Casanova-Sáez, R., Pěnčík, A., Muñoz-Viana, R., Brunoni, F., Pinto, R., Novák, O., Ljung, K., & Mateo-Bonmatí, E. Physiologia Plantarum, 177(2): e70166. 2025. _eprint: https://onlinelibrary.wiley.com/doi/pdf/10.1111/ppl.70166
A suitable strategy to find IAA metabolism mutants [link]Paper   doi   link   bibtex   abstract  
Apoptotic bodies in phytoplankton suggest evolutionary conservation of cell death mechanisms. Corredor, L., Vergou, G. A., Skalický, V., Antoniadi, I., Wheaton, B. J., Ljung, K., Gorzsás, A., & Funk, C. Nature Communications, 16(1): 8427. September 2025.
Apoptotic bodies in phytoplankton suggest evolutionary conservation of cell death mechanisms [link]Paper   doi   link   bibtex   abstract  
Essential developmental processes in Physcomitrium patens require distinct levels of total activity provided by functionally redundant PpROP GTPases. Le Bail, A., Kost, B., Nüssel, J., Lolis, T. I., Koch, D., Voll, H., Schulmeister, S., Kaier, A., Ljung, K., & Ntefidou, M. New Phytologist, 248(6): 2865–2890. 2025. _eprint: https://nph.onlinelibrary.wiley.com/doi/pdf/10.1111/nph.70603
Essential developmental processes in Physcomitrium patens require distinct levels of total activity provided by functionally redundant PpROP GTPases [link]Paper   doi   link   bibtex   abstract  
Glucuronoyl Esterase of Pathogenic Phanerochaete carnosa Induces Immune Responses in Aspen Independently of Its Enzymatic Activity. Donev, E. N., Derba-Maceluch, M., Liu, X., Bwanika, H. C., Dobrowolska, I., Thapa, M., Leśniewska, J., Šimura, J., Yi-Lin Tsai, A., Krajewski, K. S., Boström, D., Kleczkowski, L. A., Eriksson, M. E., Ljung, K., Master, E. R., & Mellerowicz, E. J. Plant Biotechnology Journal, n/a(n/a). 2025. _eprint: https://onlinelibrary.wiley.com/doi/pdf/10.1111/pbi.70357
Glucuronoyl Esterase of Pathogenic Phanerochaete carnosa Induces Immune Responses in Aspen Independently of Its Enzymatic Activity [link]Paper   doi   link   bibtex   abstract  
The CYP71A, NIT, AMI, and IAMH gene families are dispensable for indole-3-acetaldoxime-mediated auxin biosynthesis in Arabidopsis. Fenech, M., Brumos, J., Pěnčík, A., Edwards, B., Belcapo, S., DeLacey, J., Patel, A., Kater, M., Li, X., Ljung, K., Novak, O., Alonso, J. M, & Stepanova, A. N The Plant Cell, 37(11): koaf242. November 2025.
The CYP71A, NIT, AMI, and IAMH gene families are dispensable for indole-3-acetaldoxime-mediated auxin biosynthesis in Arabidopsis [link]Paper   doi   link   bibtex   abstract  
The protein kinases KIPK and KIPK-LIKE1 suppress overbending during negative hypocotyl gravitropic growth in Arabidopsis. Xiao, Y., Zourelidou, M., Bassukas, A. E L., Weller, B., Janacek, D. P, Šimura, J., Ljung, K., Hammes, U. Z, Li, J., & Schwechheimer, C. The Plant Cell, 37(4): koaf056. April 2025.
The protein kinases KIPK and KIPK-LIKE1 suppress overbending during negative hypocotyl gravitropic growth in Arabidopsis [link]Paper   doi   link   bibtex   abstract  
  2024 (5)
Adventitious rooting in response to long-term cold: a possible mechanism of clonal growth in alpine perennials. Mishra, P., Roggen, A., Ljung, K., Albani, M. C., & Vayssières, A. Frontiers in Plant Science, 15. April 2024.
Adventitious rooting in response to long-term cold: a possible mechanism of clonal growth in alpine perennials [link]Paper   doi   link   bibtex   abstract  
In situ seasonal patterns of root auxin concentrations and meristem length in an arctic sedge. Blume-Werry, G., Semenchuk, P., Ljung, K., Milbau, A., Novak, O., Olofsson, J., & Brunoni, F. New Phytologist. February 2024. _eprint: https://onlinelibrary.wiley.com/doi/pdf/10.1111/nph.19616
In situ seasonal patterns of root auxin concentrations and meristem length in an arctic sedge [link]Paper   doi   link   bibtex   abstract  
Profiling of 1-aminocyclopropane-1-carboxylic acid and selected phytohormones in Arabidopsis using liquid chromatography-tandem mass spectrometry. Karady, M., Hladík, P., Cermanová, K., Jiroutová, P., Antoniadi, I., Casanova-Sáez, R., Ljung, K., & Novák, O. Plant Methods, 20(1): 41. March 2024.
Profiling of 1-aminocyclopropane-1-carboxylic acid and selected phytohormones in Arabidopsis using liquid chromatography-tandem mass spectrometry [link]Paper   doi   link   bibtex   abstract  
The Arabidopsis splicing factor PORCUPINE/SmE1 orchestrates temperature-dependent root development via auxin homeostasis maintenance. El Arbi, N., Nardeli, S. M., Šimura, J., Ljung, K., & Schmid, M. New Phytologist, 244(4): 1408–1421. 2024. _eprint: https://onlinelibrary.wiley.com/doi/pdf/10.1111/nph.20153
The Arabidopsis splicing factor PORCUPINE/SmE1 orchestrates temperature-dependent root development via auxin homeostasis maintenance [link]Paper   doi   link   bibtex   abstract  
Unveiling Molecular Signatures in Light-Induced Seed Germination: Insights from PIN3, PIN7, and AUX1 in Arabidopsis thaliana. Tognacca, R. S., Ljung, K., & Botto, J. F. Plants, 13(3): 408. January 2024. Number: 3
Unveiling Molecular Signatures in Light-Induced Seed Germination: Insights from PIN3, PIN7, and AUX1 in Arabidopsis thaliana [link]Paper   doi   link   bibtex   abstract  
  2023 (11)
Changes in cell wall composition due to a pectin biosynthesis enzyme GAUT10 impact root growth. Dash, L., Swaminathan, S., Šimura, J., Gonzales, C. L. P, Montes, C., Solanki, N., Mejia, L., Ljung, K., Zabotina, O. A, & Kelley, D. R Plant Physiology, 193(4): 2480–2497. December 2023.
Changes in cell wall composition due to a pectin biosynthesis enzyme GAUT10 impact root growth [link]Paper   doi   link   bibtex   abstract  
Cytokinin signaling regulates two-stage inflorescence arrest in Arabidopsis. Walker, C. H, Ware, A., Šimura, J., Ljung, K., Wilson, Z., & Bennett, T. Plant Physiology, 191(1): 479–495. January 2023.
Cytokinin signaling regulates two-stage inflorescence arrest in Arabidopsis [link]Paper   doi   link   bibtex   abstract  
Flexible Organic Electronic Ion Pump for Flow-Free Phytohormone Delivery into Vasculature of Intact Plants. Bernacka-Wojcik, I., Talide, L., Abdel Aziz, I., Simura, J., Oikonomou, V. K., Rossi, S., Mohammadi, M., Dar, A. M., Seitanidou, M., Berggren, M., Simon, D. T., Tybrandt, K., Jonsson, M. P., Ljung, K., Niittylä, T., & Stavrinidou, E. Advanced Science, 10(14): 2206409. May 2023. _eprint: https://onlinelibrary.wiley.com/doi/pdf/10.1002/advs.202206409
Flexible Organic Electronic Ion Pump for Flow-Free Phytohormone Delivery into Vasculature of Intact Plants [link]Paper   doi   link   bibtex   abstract  
Flexure wood formation via growth reprogramming in hybrid aspen involves jasmonates and polyamines and transcriptional changes resembling tension wood development. Urbancsok, J., Donev, E. N., Sivan, P., van Zalen, E., Barbut, F. R., Derba-Maceluch, M., Šimura, J., Yassin, Z., Gandla, M. L., Karady, M., Ljung, K., Winestrand, S., Jönsson, L. J., Scheepers, G., Delhomme, N., Street, N. R., & Mellerowicz, E. J. New Phytologist. October 2023. _eprint: https://onlinelibrary.wiley.com/doi/pdf/10.1111/nph.19307
Flexure wood formation via growth reprogramming in hybrid aspen involves jasmonates and polyamines and transcriptional changes resembling tension wood development [link]Paper   doi   link   bibtex   abstract  
Fluorescence-activated multi-organelle mapping of subcellular plant hormone distribution. Skalický, V., Antoniadi, I., Pěnčík, A., Chamrád, I., Lenobel, R., Kubeš, M. F., Zatloukal, M., Žukauskaitė, A., Strnad, M., Ljung, K., & Novák, O. The Plant Journal, 116(6): 1825–1841. September 2023. _eprint: https://onlinelibrary.wiley.com/doi/pdf/10.1111/tpj.16456
Fluorescence-activated multi-organelle mapping of subcellular plant hormone distribution [link]Paper   doi   link   bibtex   abstract  
GOLVEN peptides regulate lateral root spacing as part of a negative feedback loop on the establishment of auxin maxima. Jourquin, J., Fernandez, A. I., Wang, Q., Xu, K., Chen, J., Šimura, J., Ljung, K., Vanneste, S., & Beeckman, T. Journal of Experimental Botany, 74(14): 4031–4049. August 2023.
GOLVEN peptides regulate lateral root spacing as part of a negative feedback loop on the establishment of auxin maxima [link]Paper   doi   link   bibtex   abstract  
Long-distance turgor pressure changes induce local activation of plant glutamate receptor-like channels. Grenzi, M., Buratti, S., Parmagnani, A. S., Abdel Aziz, I., Bernacka-Wojcik, I., Resentini, F., Šimura, J., Doccula, F. G., Alfieri, A., Luoni, L., Ljung, K., Bonza, M. C., Stavrinidou, E., & Costa, A. Current Biology. February 2023.
Long-distance turgor pressure changes induce local activation of plant glutamate receptor-like channels [link]Paper   doi   link   bibtex   abstract  
Modulating auxin response stabilizes tomato fruit set. Israeli, A., Schubert, R., Man, N., Teboul, N., Serrani Yarce, J. C., Rosowski, E. E, Wu, M., Levy, M., Efroni, I., Ljung, K., Hause, B., Reed, J. W, & Ori, N. Plant Physiology, 192(3): 2336–2355. July 2023.
Modulating auxin response stabilizes tomato fruit set [link]Paper   doi   link   bibtex   abstract  
Physcomitrium patens PpRIC, an ancestral CRIB-domain ROP effector, inhibits auxin-induced differentiation of apical initial cells. Ntefidou, M., Eklund, D. M., Bail, A. L., Schulmeister, S., Scherbel, F., Brandl, L., Dörfler, W., Eichstädt, C., Bannmüller, A., Ljung, K., & Kost, B. Cell Reports, 42(2). February 2023.
Physcomitrium patens PpRIC, an ancestral CRIB-domain ROP effector, inhibits auxin-induced differentiation of apical initial cells [link]Paper   doi   link   bibtex   abstract  
Salicylic acid metabolism and signalling coordinate senescence initiation in aspen in nature. Lihavainen, J., Šimura, J., Bag, P., Fataftah, N., Robinson, K. M., Delhomme, N., Novák, O., Ljung, K., & Jansson, S. Nature Communications, 14(1): 4288. July 2023. Number: 1
Salicylic acid metabolism and signalling coordinate senescence initiation in aspen in nature [link]Paper   doi   link   bibtex   abstract  
Tree architecture: A strigolactone-deficient mutant reveals a connection between branching order and auxin gradient along the tree stem. Su, C., Kokosza, A., Xie, X., Pěnčík, A., Zhang, Y., Raumonen, P., Shi, X., Muranen, S., Topcu, M. K., Immanen, J., Hagqvist, R., Safronov, O., Alonso-Serra, J., Eswaran, G., Venegas, M. P., Ljung, K., Ward, S., Mähönen, A. P., Himanen, K., Salojärvi, J., Fernie, A. R., Novák, O., Leyser, O., Pałubicki, W., Helariutta, Y., & Nieminen, K. Proceedings of the National Academy of Sciences, 120(48): e2308587120. November 2023.
Tree architecture: A strigolactone-deficient mutant reveals a connection between branching order and auxin gradient along the tree stem [link]Paper   doi   link   bibtex   abstract  
  2022 (11)
Auxin boosts energy generation pathways to fuel pollen maturation in barley. Amanda, D., Frey, F. P., Neumann, U., Przybyl, M., Šimura, J., Zhang, Y., Chen, Z., Gallavotti, A., Fernie, A. R., Ljung, K., & Acosta, I. F. Current Biology, 32(8): 1798–1811.e8. April 2022.
Auxin boosts energy generation pathways to fuel pollen maturation in barley [link]Paper   doi   link   bibtex   abstract  
Fluorescence activated cell sorting—A selective tool for plant cell isolation and analysis. Antoniadi, I., Skalický, V., Sun, G., Ma, W., Galbraith, D. W., Novák, O., & Ljung, K. Cytometry Part A, 101(9): 725–736. May 2022. _eprint: https://onlinelibrary.wiley.com/doi/pdf/10.1002/cyto.a.24461
Fluorescence activated cell sorting—A selective tool for plant cell isolation and analysis [link]Paper   doi   link   bibtex   abstract  
IPT9, a cis-zeatin cytokinin biosynthesis gene, promotes root growth. Antoniadi, I., Mateo-Bonmatí, E., Pernisová, M., Brunoni, F., Antoniadi, M., Villalonga, M. G., Ament, A., Karády, M., Turnbull, C., Doležal, K., Pěnčík, A., Ljung, K., & Novák, O. Frontiers in Plant Science, 13. October 2022.
IPT9, a cis-zeatin cytokinin biosynthesis gene, promotes root growth [link]Paper   link   bibtex   abstract  
Inactivation of the entire Arabidopsis group II GH3s confers tolerance to salinity and water deficit. Casanova-Sáez, R., Mateo-Bonmatí, E., Šimura, J., Pěnčík, A., Novák, O., & Ljung, K. New Phytologist, 235(1): 263–275. 2022.
Inactivation of the entire Arabidopsis group II GH3s confers tolerance to salinity and water deficit [link]Paper   doi   link   bibtex   abstract  
KAI2 regulates seedling development by mediating light-induced remodelling of auxin transport. Hamon-Josse, M., Villaécija-Aguilar, J. A., Ljung, K., Leyser, O., Gutjahr, C., & Bennett, T. New Phytologist, 235(1): 126–140. 2022.
KAI2 regulates seedling development by mediating light-induced remodelling of auxin transport [link]Paper   doi   link   bibtex   abstract  
Nitrogen represses haustoria formation through abscisic acid in the parasitic plant Phtheirospermum japonicum. Kokla, A., Leso, M., Zhang, X., Simura, J., Serivichyaswat, P. T., Cui, S., Ljung, K., Yoshida, S., & Melnyk, C. W. Nature Communications, 13(1): 2976. May 2022.
Nitrogen represses haustoria formation through abscisic acid in the parasitic plant Phtheirospermum japonicum [link]Paper   doi   link   bibtex   abstract  
PIF7 is a master regulator of thermomorphogenesis in shade. Burko, Y., Willige, B. C., Seluzicki, A., Novák, O., Ljung, K., & Chory, J. Nature Communications, 13(1): 4942. August 2022. Number: 1
PIF7 is a master regulator of thermomorphogenesis in shade [link]Paper   doi   link   bibtex   abstract  
Potassium transporter TRH1/KUP4 contributes to distinct auxin-mediated root system architecture responses. Templalexis, D., Tsitsekian, D., Liu, C., Daras, G., Šimura, J., Moschou, P., Ljung, K., Hatzopoulos, P., & Rigas, S. Plant Physiology, 188(2): 1043–1060. February 2022.
Potassium transporter TRH1/KUP4 contributes to distinct auxin-mediated root system architecture responses [link]Paper   doi   link   bibtex   abstract  
The RPN12a proteasome subunit is essential for the multiple hormonal homeostasis controlling the progression of leaf senescence. Boussardon, C., Bag, P., Juvany, M., Šimura, J., Ljung, K., Jansson, S., & Keech, O. Communications Biology, 5(1): 1–14. September 2022.
The RPN12a proteasome subunit is essential for the multiple hormonal homeostasis controlling the progression of leaf senescence [link]Paper   doi   link   bibtex   abstract  
iP & OEIP – Cytokinin Micro Application Modulates Root Development with High Spatial Resolution. Pařízková, B., Antoniadi, I., Poxson, D. J., Karady, M., Simon, D. T., Zatloukal, M., Strnad, M., Doležal, K., Novák, O., & Ljung, K. Advanced Materials Technologies,2101664. April 2022.
iP & OEIP – Cytokinin Micro Application Modulates Root Development with High Spatial Resolution [link]Paper   doi   link   bibtex   abstract  
  2021 (10)
Alterations in hormonal signals spatially coordinate distinct responses to DNA double-strand breaks in Arabidopsis roots. Takahashi, N., Inagaki, S., Nishimura, K., Sakakibara, H., Antoniadi, I., Karady, M., Ljung, K., & Umeda, M. Science Advances, 7(25): eabg0993. June 2021.
doi   link   bibtex   abstract   5 downloads  
Auxin Metabolism in Plants. Casanova-Sáez, R., Mateo-Bonmatí, E., & Ljung, K. Cold Spring Harbor Perspectives in Biology, 13(3): a039867. March 2021.
Auxin Metabolism in Plants [link]Paper   doi   link   bibtex   abstract   10 downloads  
Best practices in plant cytometry. Galbraith, D., Loureiro, J., Antoniadi, I., Bainard, J., Bureš, P., Cápal, P., Castro, M., Castro, S., Čertner, M., Čertnerová, D., Chumová, Z., Doležel, J., Giorgi, D., Husband, B. C., Kolář, F., Koutecký, P., Kron, P., Leitch, I. J., Ljung, K., Lopes, S., Lučanová, M., Lucretti, S., Ma, W., Melzer, S., Molnár, I., Novák, O., Poulton, N., Skalický, V., Sliwinska, E., Šmarda, P., Smith, T. W., Sun, G., Talhinhas, P., Tárnok, A., Temsch, E. M., Trávníček, P., & Urfus, T. Cytometry Part A, 99(4): 311–317. April 2021.
Best practices in plant cytometry [link]Paper   doi   link   bibtex   4 downloads  
Broadening the roles of UDP-glycosyltransferases in auxin homeostasis and plant development. Mateo-Bonmatí, E., Casanova-Sáez, R., Šimura, J., & Ljung, K. The New Phytologist. July 2021.
doi   link   bibtex   abstract   2 downloads  
Dynamics of Auxin and Cytokinin Metabolism during Early Root and Hypocotyl Growth in Theobroma cacao. Mboene Noah, A., Casanova-Sáez, R., Makondy Ango, R. E., Antoniadi, I., Karady, M., Novák, O., Niemenak, N., & Ljung, K. Plants, 10(5): 967. May 2021.
Dynamics of Auxin and Cytokinin Metabolism during Early Root and Hypocotyl Growth in Theobroma cacao [link]Paper   doi   link   bibtex   abstract   4 downloads  
Function of the pseudo phosphotransfer proteins has diverged between rice and Arabidopsis. Vaughan‐Hirsch, J., Tallerday, E. J., Burr, C. A., Hodgens, C., Boeshore, S. L., Beaver, K., Melling, A., Sari, K., Kerr, I. D., Šimura, J., Ljung, K., Xu, D., Liang, W., Bhosale, R., Schaller, G. E., Bishopp, A., & Kieber, J. J. The Plant Journal, 106(1): 159–173. April 2021.
Function of the pseudo phosphotransfer proteins has diverged between rice and Arabidopsis [link]Paper   doi   link   bibtex  
Modulation of Arabidopsis root growth by specialized triterpenes. Bai, Y., Fernández‐Calvo, P., Ritter, A., Huang, A. C., Morales‐Herrera, S., Bicalho, K. U., Karady, M., Pauwels, L., Buyst, D., Njo, M., Ljung, K., Martins, J. C., Vanneste, S., Beeckman, T., Osbourn, A., Goossens, A., & Pollier, J. New Phytologist, 230(1): 228–243. April 2021.
Modulation of Arabidopsis root growth by specialized triterpenes [link]Paper   doi   link   bibtex  
Plant roots sense soil compaction through restricted ethylene diffusion. Pandey, B. K., Huang, G., Bhosale, R., Hartman, S., Sturrock, C. J., Jose, L., Martin, O. C., Karady, M., Voesenek, L. A. C. J., Ljung, K., Lynch, J. P., Brown, K. M., Whalley, W. R., Mooney, S. J., Zhang, D., & Bennett, M. J. Science, 371(6526): 276–280. January 2021.
Plant roots sense soil compaction through restricted ethylene diffusion [link]Paper   doi   link   bibtex   abstract  
Studies of moss reproductive development indicate that auxin biosynthesis in apical stem cells may constitute an ancestral function for focal growth control. Landberg, K., Šimura, J., Ljung, K., Sundberg, E., & Thelander, M. New Phytologist, 229(2): 845–860. January 2021.
Studies of moss reproductive development indicate that auxin biosynthesis in apical stem cells may constitute an ancestral function for focal growth control [link]Paper   doi   link   bibtex  
The chemical compound ‘Heatin’ stimulates hypocotyl elongation and interferes with the Arabidopsis NIT1‐subfamily of nitrilases. Woude, L., Piotrowski, M., Klaasse, G., Paulus, J. K., Krahn, D., Ninck, S., Kaschani, F., Kaiser, M., Novák, O., Ljung, K., Bulder, S., Verk, M., Snoek, B. L., Fiers, M., Martin, N. I., Hoorn, R. A. L., Robert, S., Smeekens, S., & Zanten, M. The Plant Journal,tpj.15250. May 2021.
The chemical compound ‘Heatin’ stimulates hypocotyl elongation and interferes with the Arabidopsis NIT1‐subfamily of nitrilases [link]Paper   doi   link   bibtex  
  2020 (11)
A WOX/Auxin Biosynthesis Module Controls Growth to Shape Leaf Form. Zhang, Z., Runions, A., Mentink, R. A., Kierzkowski, D., Karady, M., Hashemi, B., Huijser, P., Strauss, S., Gan, X., Ljung, K., & Tsiantis, M. Current Biology, 30(24): 4857–4868.e6. December 2020.
A WOX/Auxin Biosynthesis Module Controls Growth to Shape Leaf Form [link]Paper   doi   link   bibtex  
Auxin export from proximal fruits drives arrest in temporally competent inflorescences. Ware, A., Walker, C. H., Šimura, J., González-Suárez, P., Ljung, K., Bishopp, A., Wilson, Z. A., & Bennett, T. Nature Plants, 6(6): 699–707. June 2020.
Auxin export from proximal fruits drives arrest in temporally competent inflorescences [link]Paper   doi   link   bibtex  
Cell-surface receptors enable perception of extracellular cytokinins. Antoniadi, I., Novák, O., Gelová, Z., Johnson, A., Plíhal, O., Simerský, R., Mik, V., Vain, T., Mateo-Bonmatí, E., Karady, M., Pernisová, M., Plačková, L., Opassathian, K., Hejátko, J., Robert, S., Friml, J., Doležal, K., Ljung, K., & Turnbull, C. Nature Communications, 11(1): 4284. December 2020.
Cell-surface receptors enable perception of extracellular cytokinins [link]Paper   doi   link   bibtex   1 download  
Conifers exhibit a characteristic inactivation of auxin to maintain tissue homeostasis. Brunoni, F., Collani, S., Casanova‐Sáez, R., Šimura, J., Karady, M., Schmid, M., Ljung, K., & Bellini, C. New Phytologist, 226(6): 1753–1765. June 2020.
Conifers exhibit a characteristic inactivation of auxin to maintain tissue homeostasis [link]Paper   doi   link   bibtex   2 downloads  
HEARTBREAK Controls Post-translational Modification of INDEHISCENT to Regulate Fruit Morphology in Capsella. Dong, Y., Majda, M., Šimura, J., Horvath, R., Srivastava, A. K., Łangowski, Ł., Eldridge, T., Stacey, N., Slotte, T., Sadanandom, A., Ljung, K., Smith, R. S., & Østergaard, L. Current Biology, 30(19): 3880–3888.e5. October 2020.
HEARTBREAK Controls Post-translational Modification of INDEHISCENT to Regulate Fruit Morphology in Capsella [link]Paper   doi   link   bibtex   1 download  
HY5 and phytochrome activity modulate shoot to root coordination during thermomorphogenesis. Gaillochet, C., Burko, Y., Platre, M. P., Zhang, L., Simura, J., Willige, B. C., Kumar, S. V., Ljung, K., Chory, J., & Busch, W. Development,dev.192625. January 2020.
HY5 and phytochrome activity modulate shoot to root coordination during thermomorphogenesis [link]Paper   doi   link   bibtex   abstract  
Natural Variation in Adventitious Rooting in the Alpine Perennial Arabis alpina. Mishra, P., Roggen, A., Ljung, K., & Albani, M. C. Plants, 9(2): 184. February 2020.
Natural Variation in Adventitious Rooting in the Alpine Perennial Arabis alpina [link]Paper   doi   link   bibtex   abstract  
Nyctinastic thallus movement in the liverwort Marchantia polymorpha is regulated by a circadian clock. Lagercrantz, U., Billhardt, A., Rousku, S. N., Ljung, K., & Eklund, D. M. Scientific Reports, 10(1): 8658. December 2020.
Nyctinastic thallus movement in the liverwort Marchantia polymorpha is regulated by a circadian clock [link]Paper   doi   link   bibtex   abstract  
Reaction Wood Anatomical Traits and Hormonal Profiles in Poplar Bent Stem and Root. De Zio, E., Montagnoli, A., Karady, M., Terzaghi, M., Sferra, G., Antoniadi, I., Scippa, G. S., Ljung, K., Chiatante, D., & Trupiano, D. Frontiers in Plant Science, 11: 590985. December 2020.
Reaction Wood Anatomical Traits and Hormonal Profiles in Poplar Bent Stem and Root [link]Paper   doi   link   bibtex   abstract  
The CEP5 Peptide Promotes Abiotic Stress Tolerance, As Revealed by Quantitative Proteomics, and Attenuates the AUX/IAA Equilibrium in Arabidopsis. Smith, S., Zhu, S., Joos, L., Roberts, I., Nikonorova, N., Vu, L. D., Stes, E., Cho, H., Larrieu, A., Xuan, W., Goodall, B., van de Cotte, B., Waite, J. M., Rigal, A., Ramans Harborough, S., Persiau, G., Vanneste, S., Kirschner, G. K., Vandermarliere, E., Martens, L., Stahl, Y., Audenaert, D., Friml, J., Felix, G., Simon, R., Bennett, M. J., Bishopp, A., De Jaeger, G., Ljung, K., Kepinski, S., Robert, S., Nemhauser, J., Hwang, I., Gevaert, K., Beeckman, T., & De Smet, I. Molecular & Cellular Proteomics, 19(8): 1248–1262. August 2020.
The CEP5 Peptide Promotes Abiotic Stress Tolerance, As Revealed by Quantitative Proteomics, and Attenuates the AUX/IAA Equilibrium in Arabidopsis [link]Paper   doi   link   bibtex  
Vernalization shapes shoot architecture and ensures the maintenance of dormant buds in the perennial Arabis alpina. Vayssières, A., Mishra, P., Roggen, A., Neumann, U., Ljung, K., & Albani, M. C. New Phytologist, 227(1): 99–115. July 2020.
Vernalization shapes shoot architecture and ensures the maintenance of dormant buds in the perennial <i>Arabis alpina</i> [link]Paper   doi   link   bibtex  
  2019 (14)
A MYC2/MYC3/MYC4-dependent transcription factor network regulates water spray-responsive gene expression and jasmonate levels. Van Moerkercke, A., Duncan, O., Zander, M., Šimura, J., Broda, M., Vanden Bossche, R., Lewsey, M. G., Lama, S., Singh, K. B., Ljung, K., Ecker, J. R., Goossens, A., Millar, A. H., & Van Aken, O. Proceedings of the National Academy of Sciences, 116(46): 23345–23356. November 2019.
A MYC2/MYC3/MYC4-dependent transcription factor network regulates water spray-responsive gene expression and jasmonate levels [link]Paper   doi   link   bibtex   abstract   1 download  
A bacterial assay for rapid screening of IAA catabolic enzymes. Brunoni, F., Collani, S., Šimura, J., Schmid, M., Bellini, C., & Ljung, K. Plant Methods, 15(1): 126. December 2019.
A bacterial assay for rapid screening of IAA catabolic enzymes [link]Paper   doi   link   bibtex   abstract  
A role for the auxin precursor anthranilic acid in root gravitropism via regulation of PIN-FORMED protein polarity and relocalisation in Arabidopsis. Doyle, S. M., Rigal, A., Grones, P., Karady, M., Barange, D. K., Majda, M., Pařízková, B., Karampelias, M., Zwiewka, M., Pěnčík, A., Almqvist, F., Ljung, K., Novák, O., & Robert, S. New Phytologist, 223(3): 1420–1432. August 2019.
A role for the auxin precursor anthranilic acid in root gravitropism via regulation of PIN-FORMED protein polarity and relocalisation in Arabidopsis [link]Paper   doi   link   bibtex  
Autoregulation of RCO by Low-Affinity Binding Modulates Cytokinin Action and Shapes Leaf Diversity. Hajheidari, M., Wang, Y., Bhatia, N., Vuolo, F., Franco-Zorrilla, J. M., Karady, M., Mentink, R. A., Wu, A., Oluwatobi, B. R., Müller, B., Dello Ioio, R., Laurent, S., Ljung, K., Huijser, P., Gan, X., & Tsiantis, M. Current Biology, 29(24): 4183–4192.e6. December 2019.
Autoregulation of RCO by Low-Affinity Binding Modulates Cytokinin Action and Shapes Leaf Diversity [link]Paper   doi   link   bibtex  
Auxin Function in the Brown Alga Dictyota dichotoma. Bogaert, K. A., Blommaert, L., Ljung, K., Beeckman, T., & De Clerck, O. Plant Physiology, 179(1): 280–299. January 2019.
Auxin Function in the Brown Alga <i>Dictyota dichotoma</i> [link]Paper   doi   link   bibtex  
Control of root meristem establishment in conifers. Brunoni, F., Ljung, K., & Bellini, C. Physiologia Plantarum, 165(1): 81–89. January 2019.
Control of root meristem establishment in conifers [link]Paper   doi   link   bibtex  
Epigenetic Regulation of Auxin Homeostasis. Mateo-Bonmatí, E., Casanova-Sáez, R., & Ljung, K. Biomolecules, 9(10): 623. October 2019.
Epigenetic Regulation of Auxin Homeostasis [link]Paper   doi   link   bibtex   abstract  
HISTONE DEACETYLASE 9 stimulates auxin-dependent thermomorphogenesis in Arabidopsis thaliana by mediating H2A.Z depletion. van der Woude, L. C., Perrella, G., Snoek, B. L., van Hoogdalem, M., Novák, O., van Verk, M. C., van Kooten, H. N., Zorn, L. E., Tonckens, R., Dongus, J. A., Praat, M., Stouten, E. A., Proveniers, M. C. G., Vellutini, E., Patitaki, E., Shapulatov, U., Kohlen, W., Balasubramanian, S., Ljung, K., van der Krol, A. R., Smeekens, S., Kaiserli, E., & van Zanten, M. Proceedings of the National Academy of Sciences, 116(50): 25343–25354. December 2019.
HISTONE DEACETYLASE 9 stimulates auxin-dependent thermomorphogenesis in <i>Arabidopsis thaliana</i> by mediating H2A.Z depletion [link]Paper   doi   link   bibtex   abstract  
Implantable Organic Electronic Ion Pump Enables ABA Hormone Delivery for Control of Stomata in an Intact Tobacco Plant. Bernacka‐Wojcik, I., Huerta, M., Tybrandt, K., Karady, M., Mulla, M. Y., Poxson, D. J., Gabrielsson, E. O., Ljung, K., Simon, D. T., Berggren, M., & Stavrinidou, E. Small, 15(43): 1902189. October 2019.
Implantable Organic Electronic Ion Pump Enables ABA Hormone Delivery for Control of Stomata in an Intact Tobacco Plant [link]Paper   doi   link   bibtex  
PIN-driven auxin transport emerged early in streptophyte evolution. Skokan, R., Medvecká, E., Viaene, T., Vosolsobě, S., Zwiewka, M., Müller, K., Skůpa, P., Karady, M., Zhang, Y., Janacek, D. P., Hammes, U. Z., Ljung, K., Nodzyński, T., Petrášek, J., & Friml, J. Nature Plants, 5(11): 1114–1119. November 2019.
PIN-driven auxin transport emerged early in streptophyte evolution [link]Paper   doi   link   bibtex  
Regulatory Diversification of INDEHISCENT in the Capsella Genus Directs Variation in Fruit Morphology. Dong, Y., Jantzen, F., Stacey, N., Łangowski, Ł., Moubayidin, L., Šimura, J., Ljung, K., & Østergaard, L. Current Biology, 29(6): 1038–1046.e4. March 2019.
Regulatory Diversification of INDEHISCENT in the Capsella Genus Directs Variation in Fruit Morphology [link]Paper   doi   link   bibtex  
Selective auxin agonists induce specific AUX/IAA protein degradation to modulate plant development. Vain, T., Raggi, S., Ferro, N., Barange, D. K., Kieffer, M., Ma, Q., Doyle, S. M., Thelander, M., Pařízková, B., Novák, O., Ismail, A., Enquist, P., Rigal, A., Łangowska, M., Ramans Harborough, S., Zhang, Y., Ljung, K., Callis, J., Almqvist, F., Kepinski, S., Estelle, M., Pauwels, L., & Robert, S. Proceedings of the National Academy of Sciences, 116(13): 6463–6472. March 2019.
Selective auxin agonists induce specific AUX/IAA protein degradation to modulate plant development [link]Paper   doi   link   bibtex   abstract   2 downloads  
Surveillance of cell wall diffusion barrier integrity modulates water and solute transport in plants. Wang, P., Calvo-Polanco, M., Reyt, G., Barberon, M., Champeyroux, C., Santoni, V., Maurel, C., Franke, R. B., Ljung, K., Novak, O., Geldner, N., Boursiac, Y., & Salt, D. E. Scientific Reports, 9(1): 4227. December 2019.
Surveillance of cell wall diffusion barrier integrity modulates water and solute transport in plants [link]Paper   doi   link   bibtex  
Tissue-specific hormone profiles from woody poplar roots under bending stress. De Zio, E., Trupiano, D., Karady, M., Antoniadi, I., Montagnoli, A., Terzaghi, M., Chiatante, D., Ljung, K., & Scippa, G. S. Physiologia Plantarum, 165(1): 101–113. January 2019.
Tissue-specific hormone profiles from woody poplar roots under bending stress [link]Paper   doi   link   bibtex  
  2018 (9)
A mechanistic framework for auxin dependent Arabidopsis root hair elongation to low external phosphate. Bhosale, R., Giri, J., Pandey, B. K., Giehl, R. F. H., Hartmann, A., Traini, R., Truskina, J., Leftley, N., Hanlon, M., Swarup, K., Rashed, A., Voß, U., Alonso, J., Stepanova, A., Yun, J., Ljung, K., Brown, K. M., Lynch, J. P., Dolan, L., Vernoux, T., Bishopp, A., Wells, D., von Wirén, N., Bennett, M. J., & Swarup, R. Nature Communications, 9(1): 1409. December 2018.
A mechanistic framework for auxin dependent Arabidopsis root hair elongation to low external phosphate [link]Paper   doi   link   bibtex  
Broad spectrum developmental role of Brachypodium AUX1. van der Schuren, A., Voiniciuc, C., Bragg, J., Ljung, K., Vogel, J., Pauly, M., & Hardtke, C. S. New Phytologist, 219(4): 1216–1223. September 2018.
Broad spectrum developmental role of Brachypodium AUX1 [link]Paper   doi   link   bibtex  
Circadian clock components control daily growth activities by modulating cytokinin levels and cell division-associated gene expression in Populus trees: Control of growth in Populus. Edwards, K. D., Takata, N., Johansson, M., Jurca, M., Novák, O., Hényková, E., Liverani, S., Kozarewa, I., Strnad, M., Millar, A. J., Ljung, K., & Eriksson, M. E. Plant, Cell & Environment, 41(6): 1468–1482. June 2018.
Circadian clock components control daily growth activities by modulating cytokinin levels and cell division-associated gene expression in <i>Populus</i> trees: Control of growth in Populus. [link]Paper   doi   link   bibtex   5 downloads  
Combined transcriptome and translatome analyses reveal a role for tryptophan-dependent auxin biosynthesis in the control of DOG1 -dependent seed dormancy. Bai, B., Novák, O., Ljung, K., Hanson, J., & Bentsink, L. New Phytologist, 217(3): 1077–1085. February 2018.
Combined transcriptome and translatome analyses reveal a role for tryptophan-dependent auxin biosynthesis in the control of <i>DOG1</i> -dependent seed dormancy [link]Paper   doi   link   bibtex   1 download  
Plant Hormonomics: Multiple Phytohormone Profiling by Targeted Metabolomics. Šimura, J., Antoniadi, I., Široká, J., Tarkowská, D., Strnad, M., Ljung, K., & Novák, O. Plant Physiology, 177(2): 476–489. June 2018.
Plant Hormonomics: Multiple Phytohormone Profiling by Targeted Metabolomics [link]Paper   doi   link   bibtex   abstract  
Rice auxin influx carrier OsAUX1 facilitates root hair elongation in response to low external phosphate. Giri, J., Bhosale, R., Huang, G., Pandey, B. K., Parker, H., Zappala, S., Yang, J., Dievart, A., Bureau, C., Ljung, K., Price, A., Rose, T., Larrieu, A., Mairhofer, S., Sturrock, C. J., White, P., Dupuy, L., Hawkesford, M., Perin, C., Liang, W., Peret, B., Hodgman, C. T., Lynch, J., Wissuwa, M., Zhang, D., Pridmore, T., Mooney, S. J., Guiderdoni, E., Swarup, R., & Bennett, M. J. Nature Communications, 9(1): 1408. December 2018.
Rice auxin influx carrier OsAUX1 facilitates root hair elongation in response to low external phosphate [link]Paper   doi   link   bibtex  
The Xerobranching Response Represses Lateral Root Formation When Roots Are Not in Contact with Water. Orman-Ligeza, B., Morris, E. C., Parizot, B., Lavigne, T., Babé, A., Ligeza, A., Klein, S., Sturrock, C., Xuan, W., Novák, O., Ljung, K., Fernandez, M. A., Rodriguez, P. L., Dodd, I. C., De Smet, I., Chaumont, F., Batoko, H., Périlleux, C., Lynch, J. P., Bennett, M. J., Beeckman, T., & Draye, X. Current Biology, 28(19): 3165–3173.e5. October 2018.
The Xerobranching Response Represses Lateral Root Formation When Roots Are Not in Contact with Water [link]Paper   doi   link   bibtex  
Transcriptional stimulation of rate-limiting components of the autophagic pathway improves plant fitness. Minina, E. A, Moschou, P. N, Vetukuri, R. R, Sanchez-Vera, V., Cardoso, C., Liu, Q., Elander, P. H, Dalman, K., Beganovic, M., Lindberg Yilmaz, J., Marmon, S., Shabala, L., Suarez, M. F, Ljung, K., Novák, O., Shabala, S., Stymne, S., Hofius, D., & Bozhkov, P. V Journal of Experimental Botany, 69(6): 1415–1432. March 2018.
Transcriptional stimulation of rate-limiting components of the autophagic pathway improves plant fitness [link]Paper   doi   link   bibtex  
Ultra-rapid auxin metabolite profiling for high-throughput mutant screening in Arabidopsis. Pěnčík, A., Casanova-Sáez, R., Pilařová, V., Žukauskaitė, A., Pinto, R., Micol, J. L., Ljung, K., & Novák, O. Journal of Experimental Botany, 69(10): 2569–2579. April 2018.
Ultra-rapid auxin metabolite profiling for high-throughput mutant screening in Arabidopsis [link]Paper   doi   link   bibtex  
  2017 (12)
Altered expression of maize PLASTOCHRON1 enhances biomass and seed yield by extending cell division duration. Sun, X., Cahill, J., Van Hautegem, T., Feys, K., Whipple, C., Novák, O., Delbare, S., Versteele, C., Demuynck, K., De Block, J., Storme, V., Claeys, H., Van Lijsebettens, M., Coussens, G., Ljung, K., De Vliegher, A., Muszynski, M., Inzé, D., & Nelissen, H. Nature Communications, 8(1): 14752. April 2017.
Altered expression of maize PLASTOCHRON1 enhances biomass and seed yield by extending cell division duration [link]Paper   doi   link   bibtex  
Auxin minimum triggers the developmental switch from cell division to cell differentiation in the Arabidopsis root. Di Mambro, R., De Ruvo, M., Pacifici, E., Salvi, E., Sozzani, R., Benfey, P. N., Busch, W., Novak, O., Ljung, K., Di Paola, L., Marée, A. F. M., Costantino, P., Grieneisen, V. A., & Sabatini, S. Proceedings of the National Academy of Sciences, 114(36): E7641–E7649. September 2017.
Auxin minimum triggers the developmental switch from cell division to cell differentiation in the <i>Arabidopsis</i> root [link]Paper   doi   link   bibtex   abstract  
Brassinosteroid signaling-dependent root responses to prolonged elevated ambient temperature. Martins, S., Montiel-Jorda, A., Cayrel, A., Huguet, S., Roux, C. P., Ljung, K., & Vert, G. Nature Communications, 8(1): 309. December 2017.
Brassinosteroid signaling-dependent root responses to prolonged elevated ambient temperature [link]Paper   doi   link   bibtex  
Contrasting patterns of cytokinins between years in senescing aspen leaves. Edlund, E., Novak, O., Karady, M., Ljung, K., & Jansson, S. Plant, Cell & Environment, 40(5): 622–634. May 2017.
Contrasting patterns of cytokinins between years in senescing aspen leaves [link]Paper   doi   link   bibtex   1 download  
Enhanced Secondary- and Hormone Metabolism in Leaves of Arbuscular Mycorrhizal Medicago truncatula. Adolfsson, L., Nziengui, H., Abreu, I. N, Šimura, J., Beebo, A., Herdean, A., Aboalizadeh, J., Široká, J., Moritz, T., Novák, O., Ljung, K., Schoefs, B., & Spetea, C. Plant Physiology, 175(1): 392–411. September 2017.
Enhanced Secondary- and Hormone Metabolism in Leaves of Arbuscular Mycorrhizal <i>Medicago truncatula</i> [link]Paper   doi   link   bibtex  
High-Resolution Cell-Type Specific Analysis of Cytokinins in Sorted Root Cell Populations of Arabidopsis thaliana. Novák, O., Antoniadi, I., & Ljung, K. In Kleine-Vehn, J., & Sauer, M., editor(s), Plant Hormones, volume 1497, pages 231–248. Springer New York, New York, NY, 2017. Series Title: Methods in Molecular Biology
High-Resolution Cell-Type Specific Analysis of Cytokinins in Sorted Root Cell Populations of Arabidopsis thaliana [link]Paper   doi   link   bibtex  
Regulating plant physiology with organic electronics. Poxson, D. J., Karady, M., Gabrielsson, R., Alkattan, A. Y., Gustavsson, A., Doyle, S. M., Robert, S., Ljung, K., Grebe, M., Simon, D. T., & Berggren, M. Proceedings of the National Academy of Sciences, 114(18): 4597–4602. May 2017.
Regulating plant physiology with organic electronics [link]Paper   doi   link   bibtex   abstract  
SHADE AVOIDANCE 4 Is Required for Proper Auxin Distribution in the Hypocotyl. Ge, Y., Yan, F., Zourelidou, M., Wang, M., Ljung, K., Fastner, A., Hammes, U. Z., Di Donato, M., Geisler, M., Schwechheimer, C., & Tao, Y. Plant Physiology, 173(1): 788–800. January 2017.
SHADE AVOIDANCE 4 Is Required for Proper Auxin Distribution in the Hypocotyl [link]Paper   doi   link   bibtex  
The Arabidopsis bZIP11 transcription factor links low-energy signalling to auxin-mediated control of primary root growth. Weiste, C., Pedrotti, L., Selvanayagam, J., Muralidhara, P., Fröschel, C., Novák, O., Ljung, K., Hanson, J., & Dröge-Laser, W. PLOS Genetics, 13(2): e1006607. February 2017.
The Arabidopsis bZIP11 transcription factor links low-energy signalling to auxin-mediated control of primary root growth [link]Paper   doi   link   bibtex  
Type B Response Regulators Act As Central Integrators in Transcriptional Control of the Auxin Biosynthesis Enzyme TAA1. Yan, Z., Liu, X., Ljung, K., Li, S., Zhao, W., Yang, F., Wang, M., & Tao, Y. Plant Physiology, 175(3): 1438–1454. November 2017.
Type B Response Regulators Act As Central Integrators in Transcriptional Control of the Auxin Biosynthesis Enzyme TAA1 [link]Paper   doi   link   bibtex  
Zooming In on Plant Hormone Analysis: Tissue- and Cell-Specific Approaches. Novák, O., Napier, R., & Ljung, K. Annual Review of Plant Biology, 68(1): 323–348. April 2017.
Zooming In on Plant Hormone Analysis: Tissue- and Cell-Specific Approaches [link]Paper   doi   link   bibtex  
cis-Cinnamic Acid Is a Novel, Natural Auxin Efflux Inhibitor That Promotes Lateral Root Formation. Steenackers, W., Klíma, P., Quareshy, M., Cesarino, I., Kumpf, R. P., Corneillie, S., Araújo, P., Viaene, T., Goeminne, G., Nowack, M. K., Ljung, K., Friml, J., Blakeslee, J. J., Novák, O., Zažímalová, E., Napier, R., Boerjan, W., & Vanholme, B. Plant Physiology, 173(1): 552–565. January 2017.
cis-Cinnamic Acid Is a Novel, Natural Auxin Efflux Inhibitor That Promotes Lateral Root Formation [link]Paper   doi   link   bibtex  
  2016 (9)
Connective Auxin Transport in the Shoot Facilitates Communication between Shoot Apices. Bennett, T., Hines, G., van Rongen, M., Waldie, T., Sawchuk, M. G., Scarpella, E., Ljung, K., & Leyser, O. PLOS Biology, 14(4): e1002446. April 2016.
Connective Auxin Transport in the Shoot Facilitates Communication between Shoot Apices [link]Paper   doi   link   bibtex  
Cryptochromes Interact Directly with PIFs to Control Plant Growth in Limiting Blue Light. Pedmale, U., Huang, S., Zander, M., Cole, B., Hetzel, J., Ljung, K., Reis, P., Sridevi, P., Nito, K., Nery, J., Ecker, J., & Chory, J. Cell, 164(1-2): 233–245. January 2016.
Cryptochromes Interact Directly with PIFs to Control Plant Growth in Limiting Blue Light [link]Paper   doi   link   bibtex  
Dioxygenase-encoding AtDAO1 gene controls IAA oxidation and homeostasis in Arabidopsis. Porco, S., Pěnčík, A., Rashed, A., Voß, U., Casanova-Sáez, R., Bishopp, A., Golebiowska, A., Bhosale, R., Swarup, R., Swarup, K., Peňáková, P., Novák, O., Staswick, P., Hedden, P., Phillips, A. L., Vissenberg, K., Bennett, M. J., & Ljung, K. Proceedings of the National Academy of Sciences, 113(39): 11016–11021. September 2016.
Dioxygenase-encoding <i>AtDAO1</i> gene controls IAA oxidation and homeostasis in <i>Arabidopsis</i> [link]Paper   doi   link   bibtex   abstract  
Dynamic regulation of auxin oxidase and conjugating enzymes AtDAO1 and GH3 modulates auxin homeostasis. Mellor, N., Band, L. R., Pěnčík, A., Novák, O., Rashed, A., Holman, T., Wilson, M. H., Voß, U., Bishopp, A., King, J. R., Ljung, K., Bennett, M. J., & Owen, M. R. Proceedings of the National Academy of Sciences, 113(39): 11022–11027. September 2016.
Dynamic regulation of auxin oxidase and conjugating enzymes <i>AtDAO1</i> and <i>GH3</i> modulates auxin homeostasis [link]Paper   doi   link   bibtex   abstract  
Local auxin metabolism regulates environment-induced hypocotyl elongation. Zheng, Z., Guo, Y., Novák, O., Chen, W., Ljung, K., Noel, J. P., & Chory, J. Nature Plants, 2(4): 16025. April 2016.
Local auxin metabolism regulates environment-induced hypocotyl elongation [link]Paper   doi   link   bibtex  
The Effects of High Steady State Auxin Levels on Root Cell Elongation in Brachypodium. Pacheco-Villalobos, D., Díaz-Moreno, S. M., van der Schuren, A., Tamaki, T., Kang, Y. H., Gujas, B., Novak, O., Jaspert, N., Li, Z., Wolf, S., Oecking, C., Ljung, K., Bulone, V., & Hardtke, C. S. The Plant Cell, 28(5): 1009–1024. May 2016.
The Effects of High Steady State Auxin Levels on Root Cell Elongation in Brachypodium [link]Paper   doi   link   bibtex  
The PLETHORA Gene Regulatory Network Guides Growth and Cell Differentiation in Arabidopsis Roots. Santuari, L., Sanchez-Perez, G. F., Luijten, M., Rutjens, B., Terpstra, I., Berke, L., Gorte, M., Prasad, K., Bao, D., Timmermans-Hereijgers, J. L., Maeo, K., Nakamura, K., Shimotohno, A., Pencik, A., Novak, O., Ljung, K., van Heesch, S., de Bruijn, E., Cuppen, E., Willemsen, V., Mähönen, A. P., Lukowitz, W., Snel, B., de Ridder, D., Scheres, B., & Heidstra, R. The Plant Cell, 28(12): 2937–2951. December 2016.
The PLETHORA Gene Regulatory Network Guides Growth and Cell Differentiation in Arabidopsis Roots [link]Paper   doi   link   bibtex  
The allelochemical MDCA inhibits lignification and affects auxin homeostasis. Steenackers, W. J., Cesarino, I., Klíma, P., Quareshy, M., Vanholme, R., Corneillie, S., Kumpf, R. P., Van de Wouwer, D., Ljung, K., Goeminne, G., Novak, O., Zažímalová, E., Napier, R. M., Boerjan, W. A, & Vanholme, B. Plant Physiology,pp.01972.2015. August 2016.
The allelochemical MDCA inhibits lignification and affects auxin homeostasis [link]Paper   doi   link   bibtex  
The epidermis coordinates auxin-induced stem growth in response to shade. Procko, C., Burko, Y., Jaillais, Y., Ljung, K., Long, J. A., & Chory, J. Genes & Development, 30(13): 1529–1541. July 2016.
The epidermis coordinates auxin-induced stem growth in response to shade [link]Paper   doi   link   bibtex  
  2015 (9)
An intrinsic microRNA timer regulates progressive decline in shoot regenerative capacity in plants. Zhang, T. Q., Lian, H., Tang, H., Dolezal, K., Zhou, C. M., Yu, S., Chen, J. H., Chen, Q., Liu, H., Ljung, K., & Wang, J. W. Plant Cell, 27(2): 349–60. February 2015. Edition: 2015/02/05
An intrinsic microRNA timer regulates progressive decline in shoot regenerative capacity in plants [link]Paper   doi   link   bibtex   abstract  
Cell-Type-Specific Cytokinin Distribution within the Arabidopsis Primary Root Apex. Antoniadi, I., Plackova, L., Simonovik, B., Dolezal, K., Turnbull, C., Ljung, K., & Novak, O. Plant Cell, 27(7): 1955–67. July 2015. Edition: 2015/07/15
Cell-Type-Specific Cytokinin Distribution within the Arabidopsis Primary Root Apex [link]Paper   doi   link   bibtex   abstract  
Cell-type specific metabolic profiling of Arabidopsis thaliana protoplasts as a tool for plant systems biology. Petersson, S. V., Linden, P., Moritz, T., & Ljung, K. Metabolomics, 11(6): 1679–1689. December 2015. Edition: 2015/10/23
Cell-type specific metabolic profiling of Arabidopsis thaliana protoplasts as a tool for plant systems biology [link]Paper   doi   link   bibtex   abstract  
Contrasting growth responses in lamina and petiole during neighbor detection depend on differential auxin responsiveness rather than different auxin levels. de Wit, M., Ljung, K., & Fankhauser, C. New Phytol, 208(1): 198–209. October 2015. Edition: 2015/05/13
Contrasting growth responses in lamina and petiole during neighbor detection depend on differential auxin responsiveness rather than different auxin levels [link]Paper   doi   link   bibtex   abstract  
Development of the Poplar-Laccaria bicolor Ectomycorrhiza Modifies Root Auxin Metabolism, Signaling, and Response. Vayssieres, A., Pencik, A., Felten, J., Kohler, A., Ljung, K., Martin, F., & Legue, V. Plant Physiol, 169(1): 890–902. September 2015. Edition: 2015/06/19
Development of the Poplar-Laccaria bicolor Ectomycorrhiza Modifies Root Auxin Metabolism, Signaling, and Response [link]Paper   doi   link   bibtex   abstract  
Modelling of Arabidopsis LAX3 expression suggests auxin homeostasis. Mellor, N., Péret, B., Porco, S., Sairanen, I., Ljung, K., Bennett, M., & King, J. Journal of Theoretical Biology, 366: 57–70. February 2015.
Modelling of Arabidopsis LAX3 expression suggests auxin homeostasis [link]Paper   doi   link   bibtex  
New mechanistic links between sugar and hormone signalling networks. Ljung, K., Nemhauser, J. L., & Perata, P. Curr Opin Plant Biol, 25: 130–7. June 2015. Edition: 2015/06/04
New mechanistic links between sugar and hormone signalling networks [link]Paper   doi   link   bibtex   abstract   1 download  
The circadian clock rephases during lateral root organ initiation in Arabidopsis thaliana. Voss, U., Wilson, M. H., Kenobi, K., Gould, P. D., Robertson, F. C., Peer, W. A., Lucas, M., Swarup, K., Casimiro, I., Holman, T. J., Wells, D. M., Peret, B., Goh, T., Fukaki, H., Hodgman, T. C., Laplaze, L., Halliday, K. J., Ljung, K., Murphy, A. S., Hall, A. J., Webb, A. A., & Bennett, M. J. Nat Commun, 6(1): 7641. July 2015. Edition: 2015/07/07
The circadian clock rephases during lateral root organ initiation in Arabidopsis thaliana [link]Paper   doi   link   bibtex   abstract  
Three ancient hormonal cues co-ordinate shoot branching in a moss. Coudert, Y., Palubicki, W., Ljung, K., Novak, O., Leyser, O., & Harrison, C. J. Elife, 4: e06808. March 2015. Edition: 2015/03/26
Three ancient hormonal cues co-ordinate shoot branching in a moss [link]Paper   doi   link   bibtex   abstract  
  2014 (12)
ADP1 Affects Plant Architecture by Regulating Local Auxin Biosynthesis. Li, R., Li, J., Li, S., Qin, G., Novák, O., Pěnčík, A., Ljung, K., Aoyama, T., Liu, J., Murphy, A., Gu, H., Tsuge, T., & Qu, L. PLoS Genetics, 10(1): e1003954. January 2014.
ADP1 Affects Plant Architecture by Regulating Local Auxin Biosynthesis [link]Paper   doi   link   bibtex  
Alleviation of Zn toxicity by low water availability. Disante, K. B., Cortina, J., Vilagrosa, A., Fuentes, D., Hernández, E. I., & Ljung, K. Physiologia Plantarum, 150(3): 412–424. March 2014.
Alleviation of Zn toxicity by low water availability [link]Paper   doi   link   bibtex  
Arabidopsis gulliver1/superroot2‐7 identifies a metabolic basis for auxin and brassinosteroid synergy. Maharjan, P. M., Dilkes, B. P., Fujioka, S., Pěnčík, A., Ljung, K., Burow, M., Halkier, B. A., & Choe, S. The Plant Journal, 80(5): 797–808. December 2014.
Arabidopsis <i>gulliver1/superroot2‐7</i> identifies a metabolic basis for auxin and brassinosteroid synergy [link]Paper   doi   link   bibtex  
Auxin and Strigolactone Signaling Are Required for Modulation of Arabidopsis Shoot Branching by Nitrogen Supply. de Jong, M., George, G., Ongaro, V., Williamson, L., Willetts, B., Ljung, K., McCulloch, H., & Leyser, O. Plant Physiology, 166(1): 384–395. August 2014.
Auxin and Strigolactone Signaling Are Required for Modulation of Arabidopsis Shoot Branching by Nitrogen Supply [link]Paper   doi   link   bibtex   abstract  
Auxin-mediated nitrate signalling by NRT1.1 participates in the adaptive response of Arabidopsis root architecture to the spatial heterogeneity of nitrate availability: Nitrate signalling by NRT1.1. Mounier, E., Pervent, M., Ljung, K., Gojon, A., & Nacry, P. Plant, Cell & Environment, 37(1): 162–174. January 2014.
Auxin-mediated nitrate signalling by NRT1.1 participates in the adaptive response of <i>Arabidopsis</i> root architecture to the spatial heterogeneity of nitrate availability: Nitrate signalling by NRT1.1 [link]Paper   doi   link   bibtex  
Cotyledon-Generated Auxin Is Required for Shade-Induced Hypocotyl Growth in Brassica rapa. Procko, C., Crenshaw, C. M., Ljung, K., Noel, J. P., & Chory, J. Plant Physiology, 165(3): 1285–1301. June 2014.
Cotyledon-Generated Auxin Is Required for Shade-Induced Hypocotyl Growth in <i>Brassica rapa</i> [link]Paper   doi   link   bibtex   abstract  
Directional Auxin Transport Mechanisms in Early Diverging Land Plants. Viaene, T., Landberg, K., Thelander, M., Medvecka, E., Pederson, E., Feraru, E., Cooper, E., Karimi, M., Delwiche, C., Ljung, K., Geisler, M., Sundberg, E., & Friml, J. Current Biology, 24(23): 2786–2791. December 2014.
Directional Auxin Transport Mechanisms in Early Diverging Land Plants [link]Paper   doi   link   bibtex  
Effect of light on growth and endogenous hormones in Chlorella minutissima (Trebouxiophyceae). Stirk, W., Bálint, P., Tarkowská, D., Novák, O., Maróti, G., Ljung, K., Turečková, V., Strnad, M., Ördög, V., & van Staden, J. Plant Physiology and Biochemistry, 79: 66–76. June 2014.
Effect of light on growth and endogenous hormones in Chlorella minutissima (Trebouxiophyceae) [link]Paper   doi   link   bibtex  
Identification of new adventitious rooting mutants amongst suppressors of the Arabidopsis thaliana superroot2 mutation. Pacurar, D. I., Pacurar, M. L., Bussell, J. D., Schwambach, J., Pop, T. I., Kowalczyk, M., Gutierrez, L., Cavel, E., Chaabouni, S., Ljung, K., Fett-Neto, A. G., Pamfil, D., & Bellini, C. Journal of Experimental Botany, 65(6): 1605–1618. April 2014.
Identification of new adventitious rooting mutants amongst suppressors of the Arabidopsis thaliana superroot2 mutation [link]Paper   doi   link   bibtex   abstract  
Integration of growth and patterning during vascular tissue formation in Arabidopsis. De Rybel, B., Adibi, M., Breda, A. S., Wendrich, J. R., Smit, M. E., Novák, O., Yamaguchi, N., Yoshida, S., Van Isterdael, G., Palovaara, J., Nijsse, B., Boekschoten, M. V., Hooiveld, G., Beeckman, T., Wagner, D., Ljung, K., Fleck, C., & Weijers, D. Science, 345(6197): 1255215. August 2014.
Integration of growth and patterning during vascular tissue formation in <i>Arabidopsis</i> [link]Paper   doi   link   bibtex   abstract  
Light intensity modulates the regulatory network of the shade avoidance response in Arabidopsis. Hersch, M., Lorrain, S., de Wit, M., Trevisan, M., Ljung, K., Bergmann, S., & Fankhauser, C. Proceedings of the National Academy of Sciences, 111(17): 6515–6520. April 2014.
Light intensity modulates the regulatory network of the shade avoidance response in Arabidopsis [link]Paper   doi   link   bibtex  
Reduced phototropism in pks mutants may be due to altered auxin-regulated gene expression or reduced lateral auxin transport. Kami, C., Allenbach, L., Zourelidou, M., Ljung, K., Schütz, F., Isono, E., Watahiki, M. K., Yamamoto, K. T., Schwechheimer, C., & Fankhauser, C. The Plant Journal, 77(3): 393–403. February 2014.
Reduced phototropism in <i>pks</i> mutants may be due to altered auxin-regulated gene expression or reduced lateral auxin transport [link]Paper   doi   link   bibtex  
  2013 (12)
Arabidopsis WAT1 is a vacuolar auxin transport facilitator required for auxin homoeostasis. Ranocha, P., Dima, O., Nagy, R., Felten, J., Corratgé-Faillie, C., Novák, O., Morreel, K., Lacombe, B., Martinez, Y., Pfrunder, S., Jin, X., Renou, J., Thibaud, J., Ljung, K., Fischer, U., Martinoia, E., Boerjan, W., & Goffner, D. Nature Communications, 4(1): 2625. December 2013.
Arabidopsis WAT1 is a vacuolar auxin transport facilitator required for auxin homoeostasis [link]Paper   doi   link   bibtex  
Auxin controls Arabidopsis anther dehiscence by regulating endothecium lignification and jasmonic acid biosynthesis. Cecchetti, V., Altamura, M. M., Brunetti, P., Petrocelli, V., Falasca, G., Ljung, K., Costantino, P., & Cardarelli, M. The Plant Journal, 74(3): 411–422. May 2013.
Auxin controls Arabidopsis anther dehiscence by regulating endothecium lignification and jasmonic acid biosynthesis [link]Paper   doi   link   bibtex  
Auxin metabolism and homeostasis during plant development. Ljung, K. Development, 140(5): 943–950. March 2013.
Auxin metabolism and homeostasis during plant development [link]Paper   doi   link   bibtex   abstract  
Coordination of auxin and ethylene biosynthesis by the aminotransferase VAS1. Zheng, Z., Guo, Y., Novák, O., Dai, X., Zhao, Y., Ljung, K., Noel, J. P, & Chory, J. Nature Chemical Biology, 9(4): 244–246. April 2013.
Coordination of auxin and ethylene biosynthesis by the aminotransferase VAS1 [link]Paper   doi   link   bibtex  
Disturbed Local Auxin Homeostasis Enhances Cellular Anisotropy and Reveals Alternative Wiring of Auxin-ethylene Crosstalk in Brachypodium distachyon Seminal Roots. Pacheco-Villalobos, D., Sankar, M., Ljung, K., & Hardtke, C. S. PLoS Genetics, 9(6): e1003564. June 2013.
Disturbed Local Auxin Homeostasis Enhances Cellular Anisotropy and Reveals Alternative Wiring of Auxin-ethylene Crosstalk in Brachypodium distachyon Seminal Roots [link]Paper   doi   link   bibtex  
Regulation of Auxin Homeostasis and Gradients in Arabidopsis Roots through the Formation of the Indole-3-Acetic Acid Catabolite 2-Oxindole-3-Acetic Acid. Pěnčík, A., Simonovik, B., Petersson, S. V., Henyková, E., Simon, S., Greenham, K., Zhang, Y., Kowalczyk, M., Estelle, M., Zažímalová, E., Novák, O., Sandberg, G., & Ljung, K. The Plant Cell, 25(10): 3858–3870. October 2013.
Regulation of Auxin Homeostasis and Gradients in <i>Arabidopsis</i> Roots through the Formation of the Indole-3-Acetic Acid Catabolite 2-Oxindole-3-Acetic Acid [link]Paper   doi   link   bibtex  
Root gravitropism and root hair development constitute coupled developmental responses regulated by auxin homeostasis in the Arabidopsis root apex. Rigas, S., Ditengou, F. A., Ljung, K., Daras, G., Tietz, O., Palme, K., & Hatzopoulos, P. New Phytologist, 197(4): 1130–1141. March 2013.
Root gravitropism and root hair development constitute coupled developmental responses regulated by auxin homeostasis in the <i>Arabidopsis</i> root apex [link]Paper   doi   link   bibtex  
Sequential induction of auxin efflux and influx carriers regulates lateral root emergence. Péret, B., Middleton, A. M, French, A. P, Larrieu, A., Bishopp, A., Njo, M., Wells, D. M, Porco, S., Mellor, N., Band, L. R, Casimiro, I., Kleine‐Vehn, J., Vanneste, S., Sairanen, I., Mallet, R., Sandberg, G., Ljung, K., Beeckman, T., Benkova, E., Friml, J., Kramer, E., King, J. R, De Smet, I., Pridmore, T., Owen, M., & Bennett, M. J Molecular Systems Biology, 9(1): 699. January 2013.
Sequential induction of auxin efflux and influx carriers regulates lateral root emergence [link]Paper   doi   link   bibtex  
Soluble Carbohydrates Regulate Auxin Biosynthesis via PIF Proteins in Arabidopsis. Sairanen, I., Novák, O., Pěnčík, A., Ikeda, Y., Jones, B., Sandberg, G., & Ljung, K. The Plant Cell, 24(12): 4907–4916. January 2013.
Soluble Carbohydrates Regulate Auxin Biosynthesis via PIF Proteins in <i>Arabidopsis</i> [link]Paper   doi   link   bibtex   abstract   2 downloads  
Spatial Coordination between Stem Cell Activity and Cell Differentiation in the Root Meristem. Moubayidin, L., Di Mambro, R., Sozzani, R., Pacifici, E., Salvi, E., Terpstra, I., Bao, D., van Dijken , A., Dello Ioio, R., Perilli, S., Ljung, K., Benfey, P., Heidstra, R., Costantino, P., & Sabatini, S. Developmental Cell, 26(4): 405–415. August 2013.
Spatial Coordination between Stem Cell Activity and Cell Differentiation in the Root Meristem [link]Paper   doi   link   bibtex  
Thermospermine levels are controlled by an auxin-dependent feedback loop mechanism in Populus xylem. Milhinhos, A., Prestele, J., Bollhöner, B., Matos, A., Vera-Sirera, F., Rambla, J. L., Ljung, K., Carbonell, J., Blázquez, M. A., Tuominen, H., & Miguel, C. M. The Plant Journal, 75(4): 685–698. August 2013.
Thermospermine levels are controlled by an auxin-dependent feedback loop mechanism in <i>Populus</i> xylem [link]Paper   doi   link   bibtex  
  2012 (8)
An Endogenous Carbon-Sensing Pathway Triggers Increased Auxin Flux and Hypocotyl Elongation. Lilley, J. L. S., Gee, C. W., Sairanen, I., Ljung, K., & Nemhauser, J. L. Plant Physiology, 160(4): 2261–2270. December 2012.
An Endogenous Carbon-Sensing Pathway Triggers Increased Auxin Flux and Hypocotyl Elongation [link]Paper   doi   link   bibtex   abstract  
Fruit Growth in Arabidopsis Occurs via DELLA-Dependent and DELLA-Independent Gibberellin Responses. Fuentes, S., Ljung, K., Sorefan, K., Alvey, E., Harberd, N. P., & Østergaard, L. The Plant Cell, 24(10): 3982–3996. October 2012.
Fruit Growth in <i>Arabidopsis</i> Occurs via DELLA-Dependent and DELLA-Independent Gibberellin Responses [link]Paper   doi   link   bibtex  
Linking photoreceptor excitation to changes in plant architecture. Li, L., Ljung, K., Breton, G., Schmitz, R. J., Pruneda-Paz, J., Cowing-Zitron, C., Cole, B. J., Ivans, L. J., Pedmale, U. V., Jung, H., Ecker, J. R., Kay, S. A., & Chory, J. Genes & Development, 26(8): 785–790. April 2012.
Linking photoreceptor excitation to changes in plant architecture [link]Paper   doi   link   bibtex  
Phytochrome interacting factors 4 and 5 control seedling growth in changing light conditions by directly controlling auxin signaling: PIF4 and PIF5 control auxin signaling. Hornitschek, P., Kohnen, M. V., Lorrain, S., Rougemont, J., Ljung, K., López-Vidriero, I., Franco-Zorrilla, J. M., Solano, R., Trevisan, M., Pradervand, S., Xenarios, I., & Fankhauser, C. The Plant Journal, 71(5): 699–711. September 2012.
Phytochrome interacting factors 4 and 5 control seedling growth in changing light conditions by directly controlling auxin signaling: PIF4 and PIF5 control auxin signaling [link]Paper   doi   link   bibtex  
Root gravitropism is regulated by a transient lateral auxin gradient controlled by a tipping-point mechanism. Band, L. R., Wells, D. M., Larrieu, A., Sun, J., Middleton, A. M., French, A. P., Brunoud, G., Sato, E. M., Wilson, M. H., Péret, B., Oliva, M., Swarup, R., Sairanen, I., Parry, G., Ljung, K., Beeckman, T., Garibaldi, J. M., Estelle, M., Owen, M. R., Vissenberg, K., Hodgman, T. C., Pridmore, T. P., King, J. R., Vernoux, T., & Bennett, M. J. Proceedings of the National Academy of Sciences, 109(12): 4668–4673. March 2012.
Root gravitropism is regulated by a transient lateral auxin gradient controlled by a tipping-point mechanism [link]Paper   doi   link   bibtex   abstract  
Subterranean space exploration: the development of root system architecture. Jones, B., & Ljung, K. Current Opinion in Plant Biology, 15(1): 97–102. February 2012.
Subterranean space exploration: the development of root system architecture [link]Paper   doi   link   bibtex  
The Arabidopsis thaliana transcriptional activator STYLISH1 regulates genes affecting stamen development, cell expansion and timing of flowering. Ståldal, V., Cierlik, I., Chen, S., Landberg, K., Baylis, T., Myrenås, M., Sundström, J. F., Eklund, D. M., Ljung, K., & Sundberg, E. Plant Molecular Biology, 78(6): 545–559. April 2012.
The Arabidopsis thaliana transcriptional activator STYLISH1 regulates genes affecting stamen development, cell expansion and timing of flowering [link]Paper   doi   link   bibtex  
Tissue-specific profiling of the Arabidopsis thaliana auxin metabolome: Auxin metabolite profiling in Arabidopsis. Novák, O., Hényková, E., Sairanen, I., Kowalczyk, M., Pospíšil, T., & Ljung, K. The Plant Journal, 72(3): 523–536. November 2012.
Tissue-specific profiling of the <i>Arabidopsis thaliana</i> auxin metabolome: <i>Auxin metabolite profiling in</i> Arabidopsis [link]Paper   doi   link   bibtex  
  2011 (6)
Auxin and cytokinin regulate each other’s levels via a metabolic feedback loop. Jones, B., & Ljung, K. Plant Signaling & Behavior, 6(6): 901–904. June 2011.
Auxin and cytokinin regulate each other’s levels via a metabolic feedback loop [link]Paper   doi   link   bibtex  
RETRACTED: The AFB4 Auxin Receptor Is a Negative Regulator of Auxin Signaling in Seedlings. Greenham, K., Santner, A., Castillejo, C., Mooney, S., Sairanen, I., Ljung, K., & Estelle, M. Current Biology, 21(6): 520–525. March 2011.
RETRACTED: The AFB4 Auxin Receptor Is a Negative Regulator of Auxin Signaling in Seedlings [link]Paper   doi   link   bibtex   1 download  
SHORT-ROOT Regulates Primary, Lateral, and Adventitious Root Development in Arabidopsis. Lucas, M., Swarup, R., Paponov, I. A., Swarup, K., Casimiro, I., Lake, D., Peret, B., Zappala, S., Mairhofer, S., Whitworth, M., Wang, J., Ljung, K., Marchant, A., Sandberg, G., Holdsworth, M. J., Palme, K., Pridmore, T., Mooney, S., & Bennett, M. J. Plant Physiology, 155(1): 384–398. January 2011.
SHORT-ROOT Regulates Primary, Lateral, and Adventitious Root Development in Arabidopsis [link]Paper   doi   link   bibtex   abstract  
Strigolactone signaling is required for auxin-dependent stimulation of secondary growth in plants. Agusti, J., Herold, S., Schwarz, M., Sanchez, P., Ljung, K., Dun, E. A., Brewer, P. B., Beveridge, C. A., Sieberer, T., Sehr, E. M., & Greb, T. Proceedings of the National Academy of Sciences, 108(50): 20242–20247. December 2011.
Strigolactone signaling is required for auxin-dependent stimulation of secondary growth in plants [link]Paper   doi   link   bibtex   abstract  
TFL2/LHP1 is involved in auxin biosynthesis through positive regulation of YUCCA genes: Positive regulation of YUCCA genes by TFL2. Rizzardi, K., Landberg, K., Nilsson, L., Ljung, K., & Sundås-Larsson, A. The Plant Journal, 65(6): 897–906. March 2011.
TFL2/LHP1 is involved in auxin biosynthesis through positive regulation of YUCCA genes: Positive regulation of YUCCA genes by TFL2 [link]Paper   doi   link   bibtex  
The Arabidopsis YUCCA1 Flavin Monooxygenase Functions in the Indole-3-Pyruvic Acid Branch of Auxin Biosynthesis. Stepanova, A. N., Yun, J., Robles, L. M., Novak, O., He, W., Guo, H., Ljung, K., & Alonso, J. M. The Plant Cell, 23(11): 3961–3973. November 2011.
The Arabidopsis YUCCA1 Flavin Monooxygenase Functions in the Indole-3-Pyruvic Acid Branch of Auxin Biosynthesis [link]Paper   doi   link   bibtex   abstract  
  2010 (8)
A role for ABCB19-mediated polar auxin transport in seedling photomorphogenesis mediated by cryptochrome 1 and phytochrome B: ABCB19 and the photocontrol of hypocotyl growth. Wu, G., Cameron, J. N., Ljung, K., & Spalding, E. P. The Plant Journal, 62(2): 179–191. January 2010.
A role for ABCB19-mediated polar auxin transport in seedling photomorphogenesis mediated by cryptochrome 1 and phytochrome B: ABCB19 and the photocontrol of hypocotyl growth [link]Paper   doi   link   bibtex  
Auxin Metabolism and Function in the Multicellular Brown Alga Ectocarpus siliculosus. Le Bail, A., Billoud, B., Kowalczyk, N., Kowalczyk, M., Gicquel, M., Le Panse, S., Stewart, S., Scornet, D., Cock, J. M., Ljung, K., & Charrier, B. Plant Physiology, 153(1): 128–144. May 2010.
Auxin Metabolism and Function in the Multicellular Brown Alga <i>Ectocarpus siliculosus</i> [link]Paper   doi   link   bibtex   abstract  
Cytokinin Regulation of Auxin Synthesis in Arabidopsis Involves a Homeostatic Feedback Loop Regulated via Auxin and Cytokinin Signal Transduction. Jones, B., Gunnerås, S. A., Petersson, S. V., Tarkowski, P., Graham, N., May, S., Dolezal, K., Sandberg, G., & Ljung, K. The Plant Cell, 22(9): 2956–2969. October 2010.
Cytokinin Regulation of Auxin Synthesis in <i>Arabidopsis</i> Involves a Homeostatic Feedback Loop Regulated via Auxin and Cytokinin Signal Transduction [link]Paper   doi   link   bibtex   abstract  
Homologues of the Arabidopsis thaliana SHI/STY/LRP1 genes control auxin biosynthesis and affect growth and development in the moss Physcomitrella patens. Eklund, D. M., Thelander, M., Landberg, K., Ståldal, V., Nilsson, A., Johansson, M., Valsecchi, I., Pederson, E. R. A., Kowalczyk, M., Ljung, K., Ronne, H., & Sundberg, E. Development, 137(8): 1275–1284. April 2010.
Homologues of the <i>Arabidopsis thaliana SHI/STY/LRP1</i> genes control auxin biosynthesis and affect growth and development in the moss <i>Physcomitrella patens</i> [link]Paper   doi   link   bibtex   abstract  
Hormonal control of the shoot stem-cell niche. Zhao, Z., Andersen, S. U., Ljung, K., Dolezal, K., Miotk, A., Schultheiss, S. J., & Lohmann, J. U. Nature, 465(7301): 1089–1092. June 2010.
Hormonal control of the shoot stem-cell niche [link]Paper   doi   link   bibtex  
Interplay between the NADP-Linked Thioredoxin and Glutathione Systems in Arabidopsis Auxin Signaling. Bashandy, T., Guilleminot, J., Vernoux, T., Caparros-Ruiz, D., Ljung, K., Meyer, Y., & Reichheld, J. The Plant Cell, 22(2): 376–391. March 2010.
Interplay between the NADP-Linked Thioredoxin and Glutathione Systems in <i>Arabidopsis</i> Auxin Signaling [link]Paper   doi   link   bibtex   abstract  
Nitrate-Regulated Auxin Transport by NRT1.1 Defines a Mechanism for Nutrient Sensing in Plants. Krouk, G., Lacombe, B., Bielach, A., Perrine-Walker, F., Malinska, K., Mounier, E., Hoyerova, K., Tillard, P., Leon, S., Ljung, K., Zazimalova, E., Benkova, E., Nacry, P., & Gojon, A. Developmental Cell, 18(6): 927–937. June 2010.
Nitrate-Regulated Auxin Transport by NRT1.1 Defines a Mechanism for Nutrient Sensing in Plants [link]Paper   doi   link   bibtex  
Role of polyamines in plant vascular development. Vera-Sirera, F., Minguet, E. G., Singh, S. K., Ljung, K., Tuominen, H., Blázquez, M. A., & Carbonell, J. Plant Physiology and Biochemistry, 48(7): 534–539. July 2010.
Role of polyamines in plant vascular development [link]Paper   doi   link   bibtex   1 download  
  2009 (9)
A regulated auxin minimum is required for seed dispersal in Arabidopsis. Sorefan, K., Girin, T., Liljegren, S. J., Ljung, K., Robles, P., Galván-Ampudia, C. S., Offringa, R., Friml, J., Yanofsky, M. F., & Østergaard, L. Nature, 459(7246): 583–586. May 2009.
A regulated auxin minimum is required for seed dispersal in Arabidopsis [link]Paper   doi   link   bibtex  
An Auxin Gradient and Maximum in the Arabidopsis Root Apex Shown by High-Resolution Cell-Specific Analysis of IAA Distribution and Synthesis. Petersson, S. V., Johansson, A. I., Kowalczyk, M., Makoveychuk, A., Wang, J. Y., Moritz, T., Grebe, M., Benfey, P. N., Sandberg, G., & Ljung, K. The Plant Cell, 21(6): 1659–1668. August 2009.
An Auxin Gradient and Maximum in the <i>Arabidopsis</i> Root Apex Shown by High-Resolution Cell-Specific Analysis of IAA Distribution and Synthesis [link]Paper   doi   link   bibtex   abstract   1 download  
Auxin production by plant associated bacteria: impact on endogenous IAA content and growth of Triticum aestivum L. Ali, B., Sabri, A., Ljung, K., & Hasnain, S. Letters in Applied Microbiology, 48(5): 542–547. May 2009.
Auxin production by plant associated bacteria: impact on endogenous IAA content and growth of <i>Triticum aestivum</i> L. [link]Paper   doi   link   bibtex  
Auxin transport into cotyledons and cotyledon growth depend similarly on the ABCB19 Multidrug Resistance-like transporter. Lewis, D. R., Wu, G., Ljung, K., & Spalding, E. P. The Plant Journal, 60(1): 91–101. October 2009.
Auxin transport into cotyledons and cotyledon growth depend similarly on the ABCB19 Multidrug Resistance-like transporter [link]Paper   doi   link   bibtex  
Control of bud activation by an auxin transport switch. Prusinkiewicz, P., Crawford, S., Smith, R. S., Ljung, K., Bennett, T., Ongaro, V., & Leyser, O. Proceedings of the National Academy of Sciences, 106(41): 17431–17436. October 2009.
Control of bud activation by an auxin transport switch [link]Paper   doi   link   bibtex  
Local auxin biosynthesis modulates gradient-directed planar polarity in Arabidopsis. Ikeda, Y., Men, S., Fischer, U., Stepanova, A. N., Alonso, J. M., Ljung, K., & Grebe, M. Nature Cell Biology, 11(6): 731–738. June 2009.
Local auxin biosynthesis modulates gradient-directed planar polarity in Arabidopsis [link]Paper   doi   link   bibtex  
Quantification of indole-3-acetic acid from plant associated Bacillus spp. and their phytostimulatory effect on Vigna radiata (L.). Ali, B., Sabri, A. N., Ljung, K., & Hasnain, S. World Journal of Microbiology and Biotechnology, 25(3): 519–526. March 2009.
Quantification of indole-3-acetic acid from plant associated Bacillus spp. and their phytostimulatory effect on Vigna radiata (L.) [link]Paper   doi   link   bibtex  
REVEILLE1, a Myb-like transcription factor, integrates the circadian clock and auxin pathways. Rawat, R., Schwartz, J., Jones, M. A., Sairanen, I., Cheng, Y., Andersson, C. R., Zhao, Y., Ljung, K., & Harmer, S. L. Proceedings of the National Academy of Sciences, 106(39): 16883–16888. September 2009.
REVEILLE1, a Myb-like transcription factor, integrates the circadian clock and auxin pathways [link]Paper   doi   link   bibtex  
The AUXIN BINDING PROTEIN 1 Is Required for Differential Auxin Responses Mediating Root Growth. Tromas, A., Braun, N., Muller, P., Khodus, T., Paponov, I. A., Palme, K., Ljung, K., Lee, J., Benfey, P., Murray, J. A. H., Scheres, B., & Perrot-Rechenmann, C. PLoS ONE, 4(9): e6648. September 2009.
The AUXIN BINDING PROTEIN 1 Is Required for Differential Auxin Responses Mediating Root Growth [link]Paper   doi   link   bibtex  
  2008 (7)
Auxin can act independently of CRC , LUG , SEU , SPT and STY1 in style development but not apical-basal patterning of the Arabidopsis gynoecium. Ståldal, V., Sohlberg, J. J., Eklund, D. M., Ljung, K., & Sundberg, E. New Phytologist, 180(4): 798–808. December 2008.
Auxin can act independently of <i>CRC</i> , <i>LUG</i> , <i>SEU</i> , <i>SPT</i> and <i>STY1</i> in style development but not apical-basal patterning of the <i>Arabidopsis</i> gynoecium [link]Paper   doi   link   bibtex  
Cytokinin signaling regulates cambial development in poplar. Nieminen, K., Immanen, J., Laxell, M., Kauppinen, L., Tarkowski, P., Dolezal, K., Tahtiharju, S., Elo, A., Decourteix, M., Ljung, K., Bhalerao, R. P., Keinonen, K., Albert, V. A., & Helariutta, Y. Proceedings of the National Academy of Sciences, 105(50): 20032–20037. December 2008.
Cytokinin signaling regulates cambial development in poplar [link]Paper   doi   link   bibtex  
Disruptions in AUX1-Dependent Auxin Influx Alter Hypocotyl Phototropism in Arabidopsis. Stone, B. B., Stowe-Evans, E. L., Harper, R. M., Celaya, R. B., Ljung, K., Sandberg, G., & Liscum, E. Molecular Plant, 1(1): 129–144. January 2008.
Disruptions in AUX1-Dependent Auxin Influx Alter Hypocotyl Phototropism in Arabidopsis [link]Paper   doi   link   bibtex  
Inhibited polar auxin transport results in aberrant embryo development in Norway spruce. Larsson, E., Sitbon, F., Ljung, K., & Von Arnold, S. New Phytologist, 177(2): 356–366. January 2008.
Inhibited polar auxin transport results in aberrant embryo development in Norway spruce [link]Paper   doi   link   bibtex  
Rapid Synthesis of Auxin via a New Tryptophan-Dependent Pathway Is Required for Shade Avoidance in Plants. Tao, Y., Ferrer, J., Ljung, K., Pojer, F., Hong, F., Long, J. A., Li, L., Moreno, J. E., Bowman, M. E., Ivans, L. J., Cheng, Y., Lim, J., Zhao, Y., Ballaré, C. L., Sandberg, G., Noel, J. P., & Chory, J. Cell, 133(1): 164–176. April 2008.
Rapid Synthesis of Auxin via a New Tryptophan-Dependent Pathway Is Required for Shade Avoidance in Plants [link]Paper   doi   link   bibtex  
Requirement of B2-Type Cyclin-Dependent Kinases for Meristem Integrity in Arabidopsis thaliana. Andersen, S. U., Buechel, S., Zhao, Z., Ljung, K., Novák, O., Busch, W., Schuster, C., & Lohmann, J. U. The Plant Cell, 20(1): 88–100. February 2008.
Requirement of B2-Type <i>Cyclin-Dependent Kinases</i> for Meristem Integrity in <i>Arabidopsis thaliana</i> [link]Paper   doi   link   bibtex   abstract  
The auxin influx carrier LAX3 promotes lateral root emergence. Swarup, K., Benková, E., Swarup, R., Casimiro, I., Péret, B., Yang, Y., Parry, G., Nielsen, E., De Smet, I., Vanneste, S., Levesque, M. P., Carrier, D., James, N., Calvo, V., Ljung, K., Kramer, E., Roberts, R., Graham, N., Marillonnet, S., Patel, K., Jones, J. D., Taylor, C. G., Schachtman, D. P., May, S., Sandberg, G., Benfey, P., Friml, J., Kerr, I., Beeckman, T., Laplaze, L., & Bennett, M. J. Nature Cell Biology, 10(8): 946–954. August 2008.
The auxin influx carrier LAX3 promotes lateral root emergence [link]Paper   doi   link   bibtex  
  2007 (3)
Ethylene Regulates Root Growth through Effects on Auxin Biosynthesis and Transport-Dependent Auxin Distribution. Růžička, K., Ljung, K., Vanneste, S., Podhorská, R., Beeckman, T., Friml, J., & Benková, E. The Plant Cell, 19(7): 2197–2212. August 2007.
Ethylene Regulates Root Growth through Effects on Auxin Biosynthesis and Transport-Dependent Auxin Distribution [link]Paper   doi   link   bibtex   abstract  
Ethylene Upregulates Auxin Biosynthesis in Arabidopsis Seedlings to Enhance Inhibition of Root Cell Elongation. Swarup, R., Perry, P., Hagenbeek, D., Van Der Straeten, D., Beemster, G. T., Sandberg, G., Bhalerao, R. P., Ljung, K., & Bennett, M. J. The Plant Cell, 19(7): 2186–2196. August 2007.
Ethylene Upregulates Auxin Biosynthesis in <i>Arabidopsis</i> Seedlings to Enhance Inhibition of Root Cell Elongation [link]Paper   doi   link   bibtex   abstract  
Ubiquitin Lysine 63 Chain–Forming Ligases Regulate Apical Dominance in Arabidopsis. Yin, X., Volk, S., Ljung, K., Mehlmer, N., Dolezal, K., Ditengou, F., Hanano, S., Davis, S. J., Schmelzer, E., Sandberg, G., Teige, M., Palme, K., Pickart, C., & Bachmair, A. The Plant Cell, 19(6): 1898–1911. July 2007.
Ubiquitin Lysine 63 Chain–Forming Ligases Regulate Apical Dominance in <i>Arabidopsis</i> [link]Paper   doi   link   bibtex   abstract  
  2006 (3)
A gradient of auxin and auxin-dependent transcription precedes tropic growth responses. Esmon, C. A., Tinsley, A. G., Ljung, K., Sandberg, G., Hearne, L. B., & Liscum, E. Proceedings of the National Academy of Sciences, 103(1): 236–241. January 2006.
A gradient of auxin and auxin-dependent transcription precedes tropic growth responses [link]Paper   doi   link   bibtex   abstract  
Computer simulations reveal properties of the cell-cell signaling network at the shoot apex in Arabidopsis. Reuille, P. B. d., Bohn-Courseau, I., Ljung, K., Morin, H., Carraro, N., Godin, C., & Traas, J. Proceedings of the National Academy of Sciences, 103(5): 1627–1632. January 2006.
Computer simulations reveal properties of the cell-cell signaling network at the shoot apex in Arabidopsis [link]Paper   doi   link   bibtex   abstract  
Vectorial Information for Arabidopsis Planar Polarity Is Mediated by Combined AUX1, EIN2, and GNOM Activity. Fischer, U., Ikeda, Y., Ljung, K., Serralbo, O., Singh, M., Heidstra, R., Palme, K., Scheres, B., & Grebe, M. Current Biology, 16(21): 2143–2149. November 2006.
Vectorial Information for Arabidopsis Planar Polarity Is Mediated by Combined AUX1, EIN2, and GNOM Activity [link]Paper   doi   link   bibtex   abstract  
  2005 (4)
Auxin and Light Control of Adventitious Rooting in Arabidopsis Require ARGONAUTE1. Sorin, C., Bussell, J. D., Camus, I., Ljung, K., Kowalczyk, M., Geiss, G., McKhann, H., Garcion, C., Vaucheret, H., Sandberg, G., & Bellini, C. The Plant Cell, 17(5): 1343–1359. May 2005.
Auxin and Light Control of Adventitious Rooting in Arabidopsis Require ARGONAUTE1 [link]Paper   doi   link   bibtex   abstract   1 download  
Cell cycle progression in the pericycle is not sufficient for SOLITARY ROOT/IAA14-mediated lateral root initiation in Arabidopsis thaliana. Vanneste, S., De Rybel, B., Beemster, G. T. S., Ljung, K., De Smet, I., Van Isterdael, G., Naudts, M., Iida, R., Gruissem, W., Tasaka, M., Inze, D., Fukaki, H., & Beeckman, T. Plant Cell, 17(11): 3035–3050. November 2005. Place: Rockville WOS:000232991700017
doi   link   bibtex   abstract  
Maintenance of Embryonic Auxin Distribution for Apical-Basal Patterning by PIN-FORMED–Dependent Auxin Transport in Arabidopsis. Weijers, D., Sauer, M., Meurette, O., Friml, J., Ljung, K., Sandberg, G., Hooykaas, P., & Offringa, R. The Plant Cell, 17(9): 2517–2526. September 2005.
Maintenance of Embryonic Auxin Distribution for Apical-Basal Patterning by PIN-FORMED–Dependent Auxin Transport in Arabidopsis [link]Paper   doi   link   bibtex   abstract  
Sites and Regulation of Auxin Biosynthesis in Arabidopsis Roots. Ljung, K., Hull, A. K., Celenza, J., Yamada, M., Estelle, M., Normanly, J., & Sandberg, G. The Plant Cell, 17(4): 1090–1104. April 2005.
Sites and Regulation of Auxin Biosynthesis in Arabidopsis Roots [link]Paper   doi   link   bibtex   abstract  
  2004 (2)
A Family of Auxin-Conjugate Hydrolases That Contributes to Free Indole-3-Acetic Acid Levels during Arabidopsis Germination. Rampey, R. A., LeClere, S., Kowalczyk, M., Ljung, K., Sandberg, G., & Bartel, B. Plant Physiology, 135(2): 978–988. June 2004.
A Family of Auxin-Conjugate Hydrolases That Contributes to Free Indole-3-Acetic Acid Levels during Arabidopsis Germination [link]Paper   doi   link   bibtex   abstract  
A PINOID-Dependent Binary Switch in Apical-Basal PIN Polar Targeting Directs Auxin Efflux. Friml, J., Yang, X., Michniewicz, M., Weijers, D., Quint, A., Tietz, O., Benjamins, R., Ouwerkerk, P. B. F., Ljung, K., Sandberg, G., Hooykaas, P. J. J., Palme, K., & Offringa, R. Science, 306(5697): 862–865. October 2004.
A PINOID-Dependent Binary Switch in Apical-Basal PIN Polar Targeting Directs Auxin Efflux [link]Paper   doi   link   bibtex   1 download  
  2002 (5)
AtPIN4 Mediates Sink-Driven Auxin Gradients and Root Patterning in Arabidopsis. Friml, J., Benková, E., Blilou, I., Wisniewska, J., Hamann, T., Ljung, K., Woody, S., Sandberg, G., Scheres, B., Jürgens, G., & Palme, K. Cell, 108(5): 661–673. March 2002.
AtPIN4 Mediates Sink-Driven Auxin Gradients and Root Patterning in Arabidopsis [link]Paper   doi   link   bibtex   abstract  
Biosynthesis, conjugation, catabolism and homeostasis of indole-3-acetic acid in Arabidopsis thaliana. Ljung, K., Hull, A. K., Kowalczyk, M., Marchant, A., Celenza, J., Cohen, J. D., & Sandberg, G. Plant Molecular Biology, 49(3): 249–272. June 2002.
Biosynthesis, conjugation, catabolism and homeostasis of indole-3-acetic acid in Arabidopsis thaliana [link]Paper   doi   link   bibtex  
Cell Polarity Signaling in Arabidopsis Involves a BFA-Sensitive Auxin Influx Pathway. Grebe, M., Friml, J., Swarup, R., Ljung, K., Sandberg, G., Terlou, M., Palme, K., Bennett, M. J., & Scheres, B. Current Biology, 12(4): 329–334. February 2002.
Cell Polarity Signaling in Arabidopsis Involves a BFA-Sensitive Auxin Influx Pathway [link]Paper   doi   link   bibtex   abstract  
FLOOZY of petunia is a flavin mono-oxygenase-like protein required for the specification of leaf and flower architecture. Tobeña-Santamaria, R., Bliek, M., Ljung, K., Sandberg, G., Mol, J. N. M., Souer, E., & Koes, R. Genes & Development, 16(6): 753–763. March 2002. Company: Cold Spring Harbor Laboratory Press Distributor: Cold Spring Harbor Laboratory Press Institution: Cold Spring Harbor Laboratory Press Label: Cold Spring Harbor Laboratory Press
FLOOZY of petunia is a flavin mono-oxygenase-like protein required for the specification of leaf and flower architecture [link]Paper   doi   link   bibtex   abstract  
Shoot-derived auxin is essential for early lateral root emergence in Arabidopsis seedlings. Bhalerao, R. P., Eklöf, J., Ljung, K., Marchant, A., Bennett, M., & Sandberg, G. The Plant Journal, 29(3): 325–332. 2002. _eprint: https://onlinelibrary.wiley.com/doi/pdf/10.1046/j.0960-7412.2001.01217.x
Shoot-derived auxin is essential for early lateral root emergence in Arabidopsis seedlings [link]Paper   doi   link   bibtex   abstract   1 download  
  2001 (4)
Control of axillary bud initiation and shoot architecture in Arabidopsis through the SUPERSHOOT gene. Tantikanjana, T., Yong, J. W. H., Letham, D. S., Griffith, M., Hussain, M., Ljung, K., Sandberg, G., & Sundaresan, V. Genes & Development, 15(12): 1577–1588. June 2001. Company: Cold Spring Harbor Laboratory Press Distributor: Cold Spring Harbor Laboratory Press Institution: Cold Spring Harbor Laboratory Press Label: Cold Spring Harbor Laboratory Press
Control of axillary bud initiation and shoot architecture in Arabidopsis through the SUPERSHOOT gene [link]Paper   doi   link   bibtex   abstract  
Developmental Regulation of Indole-3-Acetic Acid Turnover in Scots Pine Seedlings1. Ljung, K., Östin, A., Lioussanne, L., & Sandberg, G. Plant Physiology, 125(1): 464–475. January 2001.
Developmental Regulation of Indole-3-Acetic Acid Turnover in Scots Pine Seedlings1 [link]Paper   doi   link   bibtex   abstract  
Localization of the auxin permease AUX1 suggests two functionally distinct hormone transport pathways operate in the Arabidopsis root apex. Swarup, R., Friml, J., Marchant, A., Ljung, K., Sandberg, G., Palme, K., & Bennett, M. Genes & Development, 15(20): 2648. October 2001.
Localization of the auxin permease AUX1 suggests two functionally distinct hormone transport pathways operate in the Arabidopsis root apex [link]Paper   doi   link   bibtex   abstract  
Sites and homeostatic control of auxin biosynthesis in Arabidopsis during vegetative growth. Ljung, K., Bhalerao, R. P., & Sandberg, G. The Plant Journal, 28(4): 465–474. 2001. _eprint: https://onlinelibrary.wiley.com/doi/pdf/10.1046/j.1365-313X.2001.01173.x
Sites and homeostatic control of auxin biosynthesis in Arabidopsis during vegetative growth [link]Paper   doi   link   bibtex   abstract  
  2000 (1)
The SUR2 gene of Arabidopsis thaliana encodes the cytochrome P450 CYP83B1, a modulator of auxin homeostasis. Barlier, I., Kowalczyk, M., Marchant, A., Ljung, K., Bhalerao, R., Bennett, M., Sandberg, G., & Bellini, C. Proceedings of the National Academy of Sciences, 97(26): 14819–14824. December 2000.
The SUR2 gene of Arabidopsis thaliana encodes the cytochrome P450 CYP83B1, a modulator of auxin homeostasis [link]Paper   doi   link   bibtex   abstract  
  1999 (1)
Auxin-induced K+ channel expression represents an essential step in coleoptile growth and gravitropism. Philippar, K., Fuchs, I., Lüthen, H., Hoth, S., Bauer, C. S., Haga, K., Thiel, G., Ljung, K., Sandberg, G., Böttger, M., Becker, D., & Hedrich, R. Proceedings of the National Academy of Sciences, 96(21): 12186–12191. October 1999.
Auxin-induced K+ channel expression represents an essential step in coleoptile growth and gravitropism [link]Paper   doi   link   bibtex   abstract