National Biopesticide Engineering Technology Research Center, Hubei Biopesticide Engineering Research Center, Hubei Academy of Agricultural Sciences, Biopesticide Branch of Hubei Innovation Centre of Agricultural Science and Technology, Wuhan 430064, PR China.
State Key Laboratory of Biocatalysis and Enzyme Engineering, School of Life Sciences, Hubei University, Wuhan 430062, PR China.
ACS Biomater Sci Eng. 2023 Jul 10;9(7):3778-3795. doi: 10.1021/acsbiomaterials.1c00018. Epub 2021 Apr 19.
The dearth of knowledge on the diverse structures and functions in bacterial collagen-like proteins is in stark contrast to the deep grasp of structures and functions in mammalian collagen, the ubiquitous triple-helical scleroprotein that plays a central role in tissue architecture, extracellular matrix organization, and signal transduction. To fill and highlight existing gaps due to the general paucity of data on bacterial CLPs, we comprehensively reviewed the latest insight into their functional and structural diversity from multiple perspectives of biology, computational simulations, and materials engineering. The origins and discovery of bacterial CLPs were explored. Their genetic distribution and molecular architecture were analyzed, and their structural and functional diversity in various bacterial genera was examined. The principal roles of computational techniques in understanding bacterial CLPs' structural stability, mechanical properties, and biological functions were also considered. This review serves to drive further interest and development of bacterial CLPs, not only for addressing fundamental biological problems in collagen but also for engineering novel biomaterials. Hence, both biology and materials communities will greatly benefit from intensified research into the diverse structures and functions in bacterial collagen-like proteins.
细菌胶原样蛋白的结构和功能多样性知之甚少,而对哺乳动物胶原(普遍存在的三螺旋细胞外基质蛋白)的结构和功能却有深入的了解,它在组织架构、细胞外基质组织和信号转导中起着核心作用。为了填补和突出由于细菌 CLPs 数据普遍缺乏而导致的现有空白,我们从生物学、计算模拟和材料工程的多个角度全面回顾了它们在功能和结构多样性方面的最新见解。本文探讨了细菌 CLPs 的起源和发现,分析了它们的遗传分布和分子结构,并研究了它们在各种细菌属中的结构和功能多样性。还考虑了计算技术在理解细菌 CLPs 结构稳定性、机械性能和生物学功能方面的主要作用。这篇综述旨在推动对细菌 CLPs 的进一步研究和开发,不仅是为了解决胶原中的基本生物学问题,也是为了设计新型生物材料。因此,生物学和材料科学界都将从对细菌胶原样蛋白的多样性结构和功能的深入研究中受益匪浅。