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通过外壳蛋白 PduB 将肠炎沙门氏菌 1,2-丙二醇利用细菌微隔间外壳与酶核心连接起来。

Linking the Salmonella enterica 1,2-Propanediol Utilization Bacterial Microcompartment Shell to the Enzymatic Core via the Shell Protein PduB.

机构信息

Interdisciplinary Biological Sciences Program, Northwestern Universitygrid.16753.36, Evanston, Illinois, USA.

Department of Chemical and Biological Engineering, Northwestern Universitygrid.16753.36, Evanston, Illinois, USA.

出版信息

J Bacteriol. 2022 Sep 20;204(9):e0057621. doi: 10.1128/jb.00576-21. Epub 2022 May 16.

Abstract

Bacterial microcompartments (MCPs) are protein-based organelles that house the enzymatic machinery for metabolism of niche carbon sources, allowing enteric pathogens to outcompete native microbiota during host colonization. While much progress has been made toward understanding MCP biogenesis, questions still remain regarding the mechanism by which core MCP enzymes are enveloped within the MCP protein shell. Here, we explore the hypothesis that the shell protein PduB is responsible for linking the shell of the 1,2-propanediol utilization (Pdu) MCP from Salmonella enterica serovar Typhimurium LT2 to its enzymatic core. Using fluorescent reporters, we demonstrate that all members of the Pdu enzymatic core are encapsulated in Pdu MCPs. We also demonstrate that PduB is critical for linking the entire Pdu enzyme core to the MCP shell. Using MCP purifications, transmission electron microscopy, and fluorescence microscopy, we find that shell assembly can be decoupled from the enzymatic core, as apparently empty MCPs are formed in Salmonella strains lacking PduB. Mutagenesis studies reveal that PduB is incorporated into the Pdu MCP shell via a conserved, lysine-mediated hydrogen bonding mechanism. Finally, growth assays and system-level pathway modeling reveal that unencapsulated pathway performance is strongly impacted by enzyme concentration, highlighting the importance of minimizing polar effects when conducting these functional assays. Together, these results provide insight into the mechanism of enzyme encapsulation within Pdu MCPs and demonstrate that the process of enzyme encapsulation and shell assembly are separate processes in this system, a finding that will aid future efforts to understand MCP biogenesis. MCPs are unique, genetically encoded organelles used by many bacteria to survive in resource-limited environments. There is significant interest in understanding the biogenesis and function of these organelles, both as potential antibiotic targets in enteric pathogens and also as useful tools for overcoming metabolic engineering bottlenecks. However, the mechanism by which these organelles are formed natively is still not completely understood. Here, we provide evidence of a potential mechanism in S. enterica by which a single protein, PduB, links the MCP shell and metabolic core. This finding is critical for those seeking to disrupt MCPs during pathogenic infections or for those seeking to harness MCPs as nanobioreactors in industrial settings.

摘要

细菌微室(MCPs)是一种蛋白质基细胞器,其中包含代谢特殊碳源的酶机制,使肠道病原体能够在宿主定植期间与本地微生物群落竞争。虽然在理解 MCP 生物发生方面已经取得了很大进展,但关于核心 MCP 酶如何被包裹在 MCP 蛋白壳内的机制仍存在问题。在这里,我们探讨了一个假设,即壳蛋白 PduB 负责将来自鼠伤寒沙门氏菌 LT2 的 1,2-丙二醇利用(Pdu)MCP 的壳与酶核心连接起来。使用荧光报告物,我们证明了 Pdu 酶核心的所有成员都被包裹在 Pdu MCP 中。我们还证明 PduB 对于将整个 Pdu 酶核心连接到 MCP 壳至关重要。使用 MCP 纯化、透射电子显微镜和荧光显微镜,我们发现壳组装可以与酶核心分离,因为在缺乏 PduB 的沙门氏菌菌株中形成了明显空的 MCP。突变研究表明,PduB 通过保守的赖氨酸介导氢键机制被整合到 Pdu MCP 壳中。最后,生长测定和系统级途径建模揭示了未封装途径的性能受到酶浓度的强烈影响,这突出了在进行这些功能测定时最小化极性效应的重要性。总之,这些结果提供了对 Pdu MCP 中酶封装机制的深入了解,并表明在该系统中,酶封装和壳组装过程是独立的过程,这一发现将有助于未来理解 MCP 生物发生的努力。

MCPs 是许多细菌用于在资源有限的环境中生存的独特、基因编码的细胞器。人们对理解这些细胞器的生物发生和功能非常感兴趣,因为它们既是肠道病原体的潜在抗生素靶标,也是克服代谢工程瓶颈的有用工具。然而,这些细胞器自然形成的机制仍不完全清楚。在这里,我们提供了在 S. enterica 中一种潜在机制的证据,即单个蛋白 PduB 将 MCP 壳和代谢核心连接起来。这一发现对于那些试图在致病性感染期间破坏 MCPs 或试图利用 MCPs 作为工业环境中的纳米生物反应器的人来说是至关重要的。

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