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单原子离子影响细菌微室壳中基质的渗透。

Monatomic ions influence substrate permeation across bacterial microcompartment shells.

机构信息

Biosciences Division, Microbial and Biome Sciences Group, Los Alamos National Laboratory, Los Alamos, NM, USA.

Theoretical Division, Theoretical Biology and Biophysics Group, Los Alamos National Laboratory, Los Alamos, NM, USA.

出版信息

Sci Rep. 2023 Sep 21;13(1):15738. doi: 10.1038/s41598-023-42688-9.

Abstract

Bacterial microcompartments (BMCs) are protein organelles consisting of an inner enzymatic core encased within a selectively permeable shell. BMC shells are modular, tractable architectures that can be repurposed with new interior enzymes for biomanufacturing purposes. The permeability of BMC shells is function-specific and regulated by biophysical properties of the shell subunits, especially its pores. We hypothesized that ions may interact with pore residues in a manner that influences the substrate permeation process. In vitro activity comparisons between native and broken BMCs demonstrated that increasing NaCl negatively affects permeation rates. Molecular dynamics simulations of the dominant shell protein (BMC-H) revealed that chloride ions preferentially occupy the positive pore, hindering substrate permeation, while sodium cations remain excluded. Overall, these results demonstrate that shell properties influence ion permeability and leverages the integration of experimental and computational techniques to improve our understanding of BMC shells towards their repurposing for biotechnological applications.

摘要

细菌微隔间(BMC)是由内部酶核心被选择性渗透壳包裹而成的蛋白质细胞器。BMC 壳是模块化、可处理的架构,可以用新的内部酶重新用于生物制造目的。BMC 壳的渗透性是特定于功能的,并受壳亚基的物理特性调节,特别是其孔。我们假设离子可能以影响底物渗透过程的方式与孔残基相互作用。天然和破碎 BMC 之间的体外活性比较表明,增加 NaCl 会对渗透速率产生负面影响。主要壳蛋白(BMC-H)的分子动力学模拟表明,氯离子优先占据正孔,阻碍底物渗透,而钠离子则被排斥在外。总的来说,这些结果表明壳特性会影响离子渗透性,并利用实验和计算技术的整合来提高我们对 BMC 壳的理解,以促进其重新用于生物技术应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e0fc/10514305/57c0492ca594/41598_2023_42688_Fig1_HTML.jpg

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