Yusuf Anas, Usman Abdurrahman, Isah Murtala Bindawa, Dang Mei, Zhang Xiaoying
Chinese-German Joint Institute for Natural Product Research, Shaanxi International Cooperation Demonstration Base, Shaanxi University of Technology, Hanzhong, Shaanxi 723000, China.
Chinese-German Joint Institute for Natural Product Research, Shaanxi International Cooperation Demonstration Base, Shaanxi University of Technology, Hanzhong, Shaanxi 723000, China; Department of Biochemistry, Umaru Musa Yar'adua University Katsina, Nigeria.
Microbiol Res. 2025 Mar;292:128026. doi: 10.1016/j.micres.2024.128026. Epub 2024 Dec 17.
Liquid-liquid phase separation (LLPS) is a universal mechanism essential for maintaining cellular integrity and function in microorganisms, facilitating the organization of biomolecules into dynamic compartments. Although extensively studied in mammalian cells, research on LLPS formation and regulation in microorganisms remains limited. This review integrates insights from diverse studies exploring LLPS across microorganisms. We discuss the role of intrinsic disorders in microbial proteins and their relationship with environmental adaptation. Additionally, we examine how microorganisms utilize LLPS to sense changes in environmental parameters, such as temperature, pH, and nutrient levels, enabling them to respond to stresses and regulate cellular processes, such as cell division, protein synthesis, and metabolic flux. We highlight that LLPS is a promising target for synthetic biology and therapeutic intervention against pathogenic microorganisms. We also explore the research landscape of LLPS in microorganisms and address challenges associated with the techniques used in LLPS research. Further research is needed to focus on the detailed molecular regulatory mechanisms of condensates, biotechnological and synthetic biology applications, facilitating improved manipulation of microorganisms, and the identification of novel therapeutic targets.
液-液相分离(LLPS)是一种普遍存在的机制,对于维持微生物的细胞完整性和功能至关重要,它有助于将生物分子组织成动态区室。尽管在哺乳动物细胞中已得到广泛研究,但关于微生物中LLPS的形成和调控的研究仍然有限。这篇综述整合了来自不同研究的见解,这些研究探索了微生物中的LLPS。我们讨论了内在无序在微生物蛋白质中的作用及其与环境适应性的关系。此外,我们研究了微生物如何利用LLPS来感知环境参数的变化,如温度、pH值和营养水平,使它们能够应对压力并调节细胞过程,如细胞分裂、蛋白质合成和代谢通量。我们强调LLPS是合成生物学和针对病原微生物的治疗干预的一个有前景的靶点。我们还探讨了微生物中LLPS的研究现状,并解决了与LLPS研究中使用的技术相关的挑战。需要进一步的研究聚焦于凝聚物的详细分子调控机制、生物技术和合成生物学应用,以促进对微生物的更好操控,并确定新的治疗靶点。