拟南芥
生物
基因敲除
分生组织
增稠
突变体
细胞生物学
转录因子
螺旋
植物发育
表型
基因
生物化学
DNA结合蛋白
化学
高分子科学
作者
Hongbin Wei,Zhi Gang Song,Yurong Xie,Hsiu-Lien Cheng,Huiting Yan,Fei Sun,Huajie Liu,Jinxiong Shen,Laigeng Li,Xinhua He,Haiyang Wang,Keming Luo
出处
期刊:Current Biology
[Elsevier]
日期:2023-08-01
卷期号:33 (15): 3203-3214.e4
被引量:7
标识
DOI:10.1016/j.cub.2023.06.049
摘要
The plant vascular system is an elaborate network of conducting and supporting tissues that extends throughout the plant body, and its structure and function must be orchestrated with different environmental conditions. Under high temperature, plants display thin and lodging stems that may lead to decreased yield and quality of crops. However, the molecular mechanism underlying high-temperature-mediated regulation of vascular development is not known. Here, we show that Arabidopsis plants overexpressing the basic-helix-loop-helix (bHLH) transcription factor PHYTOCHROME INTERACTING FACTOR 4 (PIF4), a central regulator of high-temperature signaling, display fewer vascular bundles (VBs) and decreased secondary cell wall (SCW) thickening, mimicking the lodging inflorescence stems of high-temperature-grown wild-type plants. Rising temperature and elevated PIF4 expression reduced the expression of MIR166 and, concomitantly, elevated the expression of the downstream class III homeodomain leucine-zipper (HD-ZIP III) family gene HB15. Consistently, knockdown of miR166 and overexpression of HB15 led to inhibition of vascular development and SCW formation, whereas the hb15 mutant displayed the opposite phenotype in response to high temperature. Moreover, in vitro and in vivo assays verified that PIF4 binds to the promoters of several MIR166 genes and represses their expression. Our study establishes a direct functional link between PIF4 and the miR166-HB15 module in modulating vascular development and SCW thickening and consequently stem-lodging susceptibility at elevated temperatures.
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