Search results
Results: 12
Number of items: 12
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Li, C., Dong, L., Durairaj, J., Guan, J. C., Yoshimura, M., Quinodoz, P., Horber, R., Gaus, K., Li, J., Setotaw, Y. B., Qi, J., De Groote, H., Wang, Y., Thiombiano, B., Floková, K., Walmsley, A., Charnikhova, T. V., Chojnacka, A., Correia de Lemos, S., ... Bouwmeester, H. J. (2023). Maize resistance to witchweed through changes in strigolactone biosynthesis. Science, 379(6627), 94-99. https://doi.org/10.1126/science.abq4775 -
Wang, Y., Durairaj, J., Suárez Duran, H. G., van Velzen, R., Flokova, K., Liao, C.-Y., Chojnacka, A., MacFarlane, S., Schranz, M. E., Medema, M. H., van Dijk, A. D. J., Dong, L., & Bouwmeester, H. J. (2022). Data underlying the publication: The tomato cytochrome P450 CYP712G1 catalyzes the double oxidation of orobanchol en route to the rhizosphere signaling strigolactone, solanacol [Data set]. 4TU.ResearchData. https://doi.org/10.4121/14891094
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Wang, Y., Durairaj, J., Suárez Duran, H. G., van Velzen, R., Flokova, K., Liao, C.-Y., Chojnacka, A., MacFarlane, S., Schranz, M. E., Medema, M. H., van Dijk, A. D. J., Dong, L., & Bouwmeester, H. J. (2022). The tomato cytochrome P450 CYP712G1 catalyzes the double oxidation of orobanchol en route to the rhizosphere signaling strigolactone, solanacol. New Phytologist, 235(5), 1884-1899. https://doi.org/10.1111/nph.18272 -
Kim, B., Westerhuis, J. A., Smilde, A. K., Floková, K., Suleiman, A. K. A., Kuramae, E. E., Bouwmeester, H. J., & Zancarini, A. (2022). Effect of strigolactones on recruitment of the rice root-associated microbiome. FEMS Microbiology Ecology, 98(2), Article fiac010. https://doi.org/10.1093/femsec/fiac010 -
Kim, B., Westerhuis, J. A., Smilde, A. K., Floková, K., Suleiman, A. K. A., Kuramae, E., Zancarini, A., & Bouwmeester, H. (2021, March 15). 16S and ITS sequencing data from rice plants [Data set]. Zenodo. https://doi.org/10.5281/zenodo.4604914
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Melandri, G., AbdElgawad, H., Floková, K., Jamar, D. C., Asard, H., Beemster, G. T. S., Ruyter-Spira, C., & Bouwmeester, H. J. (2021). Drought tolerance in selected aerobic and upland rice varieties is driven by different metabolic and antioxidative responses. Planta, 254(1), Article 13. https://doi.org/10.1007/s00425-021-03659-4 -
Guerrieri, A., Floková, K., Vlaar, L. E., Schilder, M. L., Kramer, G., Chojnacka, A., van Dijk, Y. R., Bouwmeester, H. J., & Dong, L. (2021). UPLC-MS/MS analysis and biological activity of the potato cyst nematode hatching stimulant, solanoeclepin A, in the root exudate of Solanum spp. Planta, 254(6), Article 112. https://doi.org/10.1007/s00425-021-03766-2 -
Xu, X., Jibran, R., Wang, Y., Dong, L., Flokova, K., Esfandiari, A., McLachlan, A. R. G., Heiser, A., Sutherland-Smith, A. J., Brummell, D. A., Bouwmeester, H. J., Dijkwel, P. P., & Hunter, D. A. (2021). Strigolactones regulate sepal senescence in Arabidopsis. Journal of Experimental Botany, 72(15), 5462–5477. https://doi.org/10.1093/jxb/erab199 -
Flokova, K., Shimels, M., Andreo Jimenez, B., Bardaro, N., Strnad, M., Novak, O., & Bouwmeester, H. J. (2020). An improved strategy to analyse strigolactones in complex sample matrices using UHPLC-MS/MS. Methodology, 16, Article 125. https://doi.org/10.1186/s13007-020-00669-3 -
Müller, L. M., Flokova, K., Schnabel, E., Sun, X., Fei, Z., Frugoli, J., Bouwmeester, H. J., & Harrison, M. J. (2019). A CLE-SUNN module regulates strigolactone content and fungal colonization in arbuscular mycorrhiza. Nature Plants, 5(9), 933-939. https://doi.org/10.1038/s41477-019-0501-1
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