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昼夜节律钟通过远程通讯控制根毛伸长。

Circadian Clock Controls Root Hair Elongation through Long-Distance Communication.

机构信息

Graduate School of Science and Technology, Nara Institute of Science and Technology, Ikoma, 630-0192 Japan.

Quantitative Biology Research Group, Exploratory Research Center on Life and Living Systems (ExCELLS), National Institutes of Natural Sciences, Okazaki, 444-8787 Japan.

出版信息

Plant Cell Physiol. 2023 Dec 6;64(11):1289-1300. doi: 10.1093/pcp/pcad076.

DOI:10.1093/pcp/pcad076
PMID:37552691
Abstract

Plants adapt to periodic environmental changes, such as day and night, by using circadian clocks. Cell division and elongation are primary steps to adjust plant development according to their environments. In Arabidopsis, hypocotyl elongation has been studied as a representative model to understand how the circadian clock regulates cell elongation. However, it remains unknown whether similar phenomena exist in other organs, such as roots, where circadian clocks regulate physiological responses. Here, we show that root hair elongation is controlled by both light and the circadian clock. By developing machine-learning models to automatically analyze the images of root hairs, we found that genes encoding major components of the central oscillator, such as TIMING OF CAB EXPRESSION1 (TOC1) or CIRCADIAN CLOCK ASSOCIATED1 (CCA1), regulate the rhythmicity of root hair length. The partial illumination of light to either shoots or roots suggested that light received in shoots is mainly responsible for the generation of root hair rhythmicity. Furthermore, grafting experiments between wild-type (WT) and toc1 plants demonstrated that TOC1 in shoots is responsible for the generation of root hair rhythmicity. Our results illustrate the combinational effects of long-distance signaling and the circadian clock on the regulation of root hair length.

摘要

植物通过生物钟来适应周期性的环境变化,如昼夜变化。细胞分裂和伸长是根据环境调整植物发育的主要步骤。在拟南芥中,已将下胚轴伸长作为一个代表性模型来研究生物钟如何调节细胞伸长。然而,生物钟是否调节其他器官(如根部)的生理反应,尚不清楚。在这里,我们表明根毛伸长受光和生物钟的双重控制。通过开发机器学习模型来自动分析根毛的图像,我们发现编码中央振荡器主要组成部分的基因,如 TIMING OF CAB EXPRESSION1 (TOC1) 或 CIRCADIAN CLOCK ASSOCIATED1 (CCA1),调节根毛长度的节律性。对茎或根的局部光照表明,茎部接收到的光主要负责根毛节律性的产生。此外,野生型(WT)和 toc1 植物之间的嫁接实验表明,茎部的 TOC1 负责根毛节律性的产生。我们的结果说明了长距离信号和生物钟对根毛长度调节的组合效应。

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bioRxiv. 2025 Jul 16:2025.06.12.659411. doi: 10.1101/2025.06.12.659411.
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Diurnal Rhythmicity in the Rhizosphere Microbiome-Mechanistic Insights and Significance for Rhizosphere Function.根际微生物组的昼夜节律性——对根际功能的机制性见解及意义
Plant Cell Environ. 2025 Mar;48(3):2040-2052. doi: 10.1111/pce.15283. Epub 2024 Nov 18.