Ren Qiunan, Li Linge, Liu Lei, Li Juan, Shi Chaowei, Sun Yujie, Yao Xuebiao, Hou Zhonghuai, Xiang ShengQi
MOE Key Laboratory for Cellular Dynamics, School of Life Sciences, University of Science and Technology of China, Hefei, China.
Hefei National Research Center for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei, China.
Nat Chem Biol. 2025 Jan 10. doi: 10.1038/s41589-024-01806-y.
Heat shock factor 1 (HSF1) is the critical orchestrator of cell responses to heat shock, and its dysfunction is linked to various diseases. HSF1 undergoes phase separation upon heat shock, and its activity is regulated by post-translational modifications (PTMs). The molecular details underlying HSF1 phase separation, temperature sensing and PTM regulation remain poorly understood. Here, we discovered that HSF1 exhibits temperature-dependent phase separation with a lower critical solution temperature behavior, providing a new conceptual mechanism accounting for HSF1 activation. We revealed the residue-level molecular details of the interactions driving the phase separation of wild-type HSF1 and its distinct PTM patterns at various temperatures. The mapped interfaces were validated experimentally and accounted for the reported HSF1 functions. Importantly, the molecular grammar of temperature-dependent HSF1 phase separation is species specific and physiologically relevant. These findings delineate a chemical code that integrates accurate phase separation with physiological body temperature control in animals.
热休克因子1(HSF1)是细胞对热休克反应的关键协调者,其功能障碍与多种疾病相关。热休克时HSF1会发生相分离,其活性受翻译后修饰(PTM)调控。HSF1相分离、温度感应和PTM调控背后的分子细节仍知之甚少。在此,我们发现HSF1表现出具有较低临界溶解温度行为的温度依赖性相分离,这为HSF1激活提供了一种新的概念机制。我们揭示了驱动野生型HSF1相分离的相互作用的残基水平分子细节及其在不同温度下独特的PTM模式。绘制的界面通过实验得到验证,并解释了已报道的HSF1功能。重要的是,温度依赖性HSF1相分离的分子规则具有物种特异性且与生理相关。这些发现描绘了一种化学编码,该编码将精确的相分离与动物的生理体温控制整合在一起。