Thermomorphogenesis

Annual Review of Plant Biology
Jorge Casal, Sureshkumar Balasubramanian

Abstract

When exposed to warmer, nonstressful average temperatures, some plant organs grow and develop at a faster rate without affecting their final dimensions. Other plant organs show specific changes in morphology or development in a response termed thermomorphogenesis. Selected coding and noncoding RNA, chromatin features, alternative splicing variants, and signaling proteins change their abundance, localization, and/or intrinsic activity to mediate thermomorphogenesis. Temperature, light, and circadian clock cues are integrated to impinge on the level or signaling of hormones such as auxin, brassinosteroids, and gibberellins. The light receptor phytochrome B (phyB) is a temperature sensor, and the phyB-PHYTOCHROME-INTERACTING FACTOR 4 (PIF4)-auxin module is only one thread in a complex network that governs temperature sensitivity. Thermomorphogenesis offers an avenue to search for climate-smart plants to sustain crop and pasture productivity in the context of global climate change.

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Citations

May 10, 2019·Plant, Cell & Environment·Denise AricoMaria Agustina Mazzella
Nov 27, 2019·Proceedings of the National Academy of Sciences of the United States of America·Lennard C van der WoudeMartijn van Zanten
Jan 12, 2020·Plant, Cell & Environment·Sofía Romero-MontepaoneJorge J Casal
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Mar 12, 2021·Journal of Experimental Botany·Carlos Esteban HernandoJorge José Casal
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Mar 27, 2021·The Plant Journal : for Cell and Molecular Biology·Lennard van der WoudeMartijn van Zanten
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May 9, 2021·Journal of Integrative Plant Biology·Lin-Lin ZhangJian-Xiang Liu
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Apr 29, 2021·The New Phytologist·Sofía Romero-MontepaoneJorge J Casal

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Methods Mentioned

BETA
acetylation
transgenic
histone acetylation

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