Multifaceted roles of Arabidopsis heat shock factor binding protein in plant growth, development, and heat shock response

IF 4.5 2区 生物学 Q2 ENVIRONMENTAL SCIENCES Environmental and Experimental Botany Pub Date : 2024-07-04 DOI:10.1016/j.envexpbot.2024.105878
Ya-Chen Huang , Chin-Cheng Liu , Yi-Jie Li , Chi-Min Liao , Sandeep Vivek , Guan-Lin Chuo , Chih-Yen Tseng , Zhi-Qing Wu , Tomoo Shimada , Noriyuki Suetsugu , Masamitsu Wada , Chin-Mei Lee , Tsung-Luo Jinn
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Abstract

Heat shock factor-binding protein (HSBP) is a 10 kDa protein in plants and animals and consists exclusively of a coiled-coil domain. During the recovery phase following a heat shock response, HSBP relocates from the cytoplasm to the nucleus in Arabidopsis (Arabidopsis thaliana), where it interacts with heat shock factors (HSFs). Here, we found that 16 out of the 19 functional known HSFs can interact with HSBP. Besides, our results indicate that HSBP negatively regulates HSF gene expression during normal growth conditions and recovery from heat shock. Expanding our understanding of HSBP's physiological functions during regular growth, co-immunoprecipitation and mass spectrometry analysis identified 16 coiled-coil domain-containing proteins co-immunoprecipitated with HSBP. These proteins encompass HSP70s, all components of the MAIGO2 complex, COP1-interactive protein1 (CIP1), CIP1-like protein, kinesin-like protein for actin-based chloroplast movement1 and 2 (KAC1/2), and HSBP itself. By examining mutant plants lacking HSBP and its interacting proteins, we elucidated their functional relationships. Our findings underscore the indispensability of the HSBP coiled-coil heptad repeat for interacting with its partners and its crucial role in growth, development, and the heat shock response. In addition to its involvement in heat shock response, Arabidopsis HSBP, a discreet small regulatory protein, exerts multiple regulatory functions in hypocotyl elongation, flowering time, chloroplast photo-relocation, and seed development.

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拟南芥热休克因子结合蛋白在植物生长、发育和热休克反应中的多方面作用
热休克因子结合蛋白(HSBP)是植物和动物体内的一种 10 kDa 蛋白,完全由一个线圈结构域组成。在热休克反应后的恢复阶段,HSBP 会从拟南芥(Arabidopsis thaliana)的细胞质转移到细胞核中,并在那里与热休克因子(HSFs)相互作用。在这里,我们发现在 19 个已知的功能性 HSFs 中,有 16 个能与 HSBP 相互作用。此外,我们的研究结果表明,在正常生长条件下和从热休克中恢复时,HSBP 负向调节 HSF 基因的表达。为了进一步了解 HSBP 在正常生长过程中的生理功能,我们通过共免疫沉淀和质谱分析发现了 16 个与 HSBP 共免疫沉淀的含线圈结构域的蛋白。这些蛋白包括 HSP70s、MAIGO2 复合物的所有成分、COP1 交互蛋白 1(CIP1)、CIP1 样蛋白、叶绿体运动驱动蛋白样蛋白 1 和 2(KAC1/2)以及 HSBP 本身。通过研究缺乏 HSBP 及其互作蛋白的突变植株,我们阐明了它们之间的功能关系。我们的研究结果强调了 HSBP 盘卷七联重复与其伙伴相互作用的不可或缺性,以及它在生长、发育和热休克反应中的关键作用。除了参与热休克反应外,拟南芥 HSBP 作为一种独立的小调控蛋白,还在下胚轴伸长、花期、叶绿体光定位和种子发育中发挥多种调控功能。
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来源期刊
Environmental and Experimental Botany
Environmental and Experimental Botany 环境科学-环境科学
CiteScore
9.30
自引率
5.30%
发文量
342
审稿时长
26 days
期刊介绍: Environmental and Experimental Botany (EEB) publishes research papers on the physical, chemical, biological, molecular mechanisms and processes involved in the responses of plants to their environment. In addition to research papers, the journal includes review articles. Submission is in agreement with the Editors-in-Chief. The Journal also publishes special issues which are built by invited guest editors and are related to the main themes of EEB. The areas covered by the Journal include: (1) Responses of plants to heavy metals and pollutants (2) Plant/water interactions (salinity, drought, flooding) (3) Responses of plants to radiations ranging from UV-B to infrared (4) Plant/atmosphere relations (ozone, CO2 , temperature) (5) Global change impacts on plant ecophysiology (6) Biotic interactions involving environmental factors.
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