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Cell surface receptor kinase FERONIA linked to nutrient sensor TORC1 signaling controls root hair growth at low temperature in Arabidopsis thaliana

Pacheco, J. M.; Song, L.; Gabarain, V. B.; Peralta, J. M.; Lehuede, T. U.; Ibeas, M. A.; Zhu, S.; Shen, Y.; Yu, F.; Estevez, J. M.

2022-01-12 plant biology
10.1101/2022.01.10.475584 bioRxiv
Show abstract

Root hairs (RH) are excellent model systems for studying cell size and polarity since they elongate several hundred-fold their original size. Their tip growth is determined both by intrinsic and environmental signals. Although nutrient availability and temperature are key factors for a sustained plant growth, the molecular mechanisms underlying their sensing and downstream signaling pathways remain unclear. Here, we identified that low temperature (10{degrees}C) triggers a strong RH elongation response involving the cell surface receptor kinase FERONIA (FER) and the nutrient sensing TOR Complex 1 (TORC). In this study, we found that FER is required to perceive limited nutrient availability caused by low temperature. FER interacts with and activates TORC downstream components to trigger RH growth. In addition, the small GTPase Rho-related protein from plants 2 (ROP2) is also involved in this RH growth response linking FER and TOR. We also found that limited nitrogen nutrient availability can mimic the RH growth response at 10{degrees}C in a NRT1.1-dependent manner. These results uncover a molecular mechanism by which a central hub composed by FER-ROP2-TORC is involved in the control of RH elongation under low temperature and nitrogen deficiency.

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