Suppr超能文献

脂质介导的生物分子凝聚物组装:机制、调控及治疗意义

Lipid-Mediated Assembly of Biomolecular Condensates: Mechanisms, Regulation, and Therapeutic Implications.

作者信息

Ma Shijie, Yang Zheng, Du Chang, Gan Binjie, Tang Tong

机构信息

Crop Research Institute, Anhui Academy of Agricultural Sciences, Hefei 230031, China.

Zhengzhou Research Base, State Key Laboratory of Cotton Bio-breeding and Integrated Utilization, School of Agricultural Sciences, Zhengzhou University, Zhengzhou 450001, China.

出版信息

Biology (Basel). 2025 Sep 10;14(9):1232. doi: 10.3390/biology14091232.

Abstract

Cellular organization relies on both membrane-bound organelles and membraneless biomolecular condensates formed through liquid-liquid phase separation. Recent discoveries reveal intricate coupling between lipid membrane organization and condensate assembly, reshaping our understanding of cellular compartmentalization. This review synthesizes multidisciplinary research using advanced techniques including super-resolution microscopy, fluorescence recovery after photobleaching, and in vitro reconstitution to examine lipid-condensate interactions. Lipid membranes serve as nucleation platforms that reduce critical concentrations for condensate formation by orders of magnitude through membrane anchoring and thermodynamic coupling, creating specialized microenvironments that substantially enhance enzymatic activities. Key regulatory mechanisms include phosphorylation-driven assembly and disassembly, membrane composition effects from cholesterol content and fatty acid saturation, and environmental factors such as calcium and pH. These interactions drive signal transduction through receptor clustering, membrane trafficking via organized domains, and stress responses through protective condensate formation. Dysregulation of lipid-condensate coupling, including aberrant phase transitions and membrane dysfunction, underlies metabolic disorders and neurodegenerative diseases. This coupling represents a fundamental organizing principle with significant therapeutic potential. Current challenges include developing quantitative methods for characterizing condensate dynamics in complex cellular environments and translating molecular mechanisms into clinical applications. Future progress requires interdisciplinary approaches combining advanced experimental techniques, computational modeling, and standardized protocols to advance both fundamental understanding and therapeutic innovations.

摘要

细胞组织依赖于膜结合细胞器和通过液-液相分离形成的无膜生物分子凝聚物。最近的发现揭示了脂质膜组织与凝聚物组装之间的复杂耦合,重塑了我们对细胞区室化的理解。本综述综合了多学科研究,运用超分辨率显微镜、光漂白后荧光恢复和体外重构等先进技术来研究脂质-凝聚物相互作用。脂质膜作为成核平台,通过膜锚定和热力学耦合将凝聚物形成的临界浓度降低几个数量级,创造出显著增强酶活性的特殊微环境。关键调控机制包括磷酸化驱动的组装和解聚、胆固醇含量和脂肪酸饱和度对膜组成的影响以及钙和pH等环境因素。这些相互作用通过受体聚集驱动信号转导,通过有组织的结构域进行膜运输,并通过保护性凝聚物形成引发应激反应。脂质-凝聚物耦合失调,包括异常相变和膜功能障碍,是代谢紊乱和神经退行性疾病的基础。这种耦合代表了一种具有重大治疗潜力的基本组织原则。当前的挑战包括开发定量方法来表征复杂细胞环境中凝聚物的动态变化,以及将分子机制转化为临床应用。未来的进展需要跨学科方法,结合先进的实验技术、计算建模和标准化方案,以推动基础理解和治疗创新。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验