Clock-regulated Coactivators Selectively Control Gene Expression in Response to Different Temperature Stress Conditions in
Overview
Authors
Affiliations
Plants respond to severe temperature changes by inducing the expression of numerous genes whose products enhance stress tolerance and responses. Dehydration-responsive element (DRE)-binding protein 1/C-repeat binding factor (DREB1/CBF) transcription factors act as master switches in cold-inducible gene expression. Since genes are rapidly and strongly induced by cold stress, the elucidation of the molecular mechanisms of expression is vital for the recognition of the initial responses to cold stress in plants. A previous study indicated that the circadian clock-related MYB-like transcription factors REVEILLE4/LHY-CCA1-Like1 (RVE4/LCL1) and RVE8/LCL5 directly activate expression under cold stress conditions. These RVEs function in the regulation of circadian clock-related gene expression under normal temperature conditions. They also activate the expression of HSF-independent heat-inducible genes under high-temperature conditions. Thus, there are thought to be specific regulatory mechanisms whereby the target genes of these transcription factors are switched when temperature changes are sensed. We revealed that NIGHT LIGHT-INDUCIBLE AND CLOCK-REGULATED (LNK) proteins act as coactivators of RVEs in cold and heat stress responses in addition to regulating circadian-regulated genes at normal temperatures. We found that among the four LNKs, LNK1 and LNK2 function under normal and high-temperature conditions, and LNK3 and LNK4 function under cold conditions. Thus, these LNK proteins play important roles in inducing specific genes under different temperature conditions. Furthermore, LNK3 and LNK4 are specifically phosphorylated under cold conditions, suggesting that phosphorylation is involved in their activation.
Circadian gating: concepts, processes, and opportunities.
Paajanen P, Kimmey J, Dodd A Philos Trans R Soc Lond B Biol Sci. 2025; 380(1918):20230346.
PMID: 39842478 PMC: 11753883. DOI: 10.1098/rstb.2023.0346.
Wu Q, Jiao X, Liu D, Sun M, Tong W, Ruan X Front Plant Sci. 2024; 15:1420431.
PMID: 39670271 PMC: 11634587. DOI: 10.3389/fpls.2024.1420431.
Understanding cold stress response mechanisms in plants: an overview.
Qian Z, He L, Li F Front Plant Sci. 2024; 15:1443317.
PMID: 39568458 PMC: 11576170. DOI: 10.3389/fpls.2024.1443317.
Computational Reconstruction of the Transcription Factor Regulatory Network Induced by Auxin in L.
Omelyanchuk N, Lavrekha V, Bogomolov A, Dolgikh V, Sidorenko A, Zemlyanskaya E Plants (Basel). 2024; 13(14).
PMID: 39065433 PMC: 11280061. DOI: 10.3390/plants13141905.
Steichen S, Deshpande A, Mosey M, Loob J, Douchi D, Knoshaug E Nat Commun. 2024; 15(1):4842.
PMID: 38844786 PMC: 11156908. DOI: 10.1038/s41467-024-49090-7.