4.8 Article

Decoding the stoichiometric composition and organisation of bacterial metabolosomes

Journal

NATURE COMMUNICATIONS
Volume 11, Issue 1, Pages -

Publisher

NATURE RESEARCH
DOI: 10.1038/s41467-020-15888-4

Keywords

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Funding

  1. Royal Society [UF120411, URF\R\180030, RGF\EA\180233, RGF\EA\181061, IE131399]
  2. Biotechnology and Biological Sciences Research Council (BBSRC) [BB/M024202/1, BB/R003890/1]
  3. Wellcome Trust [106914/Z/15/Z]
  4. China Scholarship Council
  5. BBSRC [BB/M024202/1, BB/R003890/1] Funding Source: UKRI
  6. Royal Society [UF120411] Funding Source: Royal Society

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Some enteric bacteria including Salmonella have evolved the propanediol-utilising microcompartment (Pdu MCP), a specialised proteinaceous organelle that is essential for 1,2-propanediol degradation and enteric pathogenesis. Pdu MCPs are a family of bacterial microcompartments that are self-assembled from hundreds of proteins within the bacterial cytosol. Here, we seek a comprehensive understanding of the stoichiometric composition and organisation of Pdu MCPs. We obtain accurate stoichiometry of shell proteins and internal enzymes of the natural Pdu MCP by QconCAT-driven quantitative mass spectrometry. Genetic deletion of the major shell protein and absolute quantification reveal the stoichiometric and structural remodelling of metabolically functional Pdu MCPs. Decoding the precise protein stoichiometry allows us to develop an organisational model of the Pdu metabolosome. The structural insights into the Pdu MCP are critical for both delineating the general principles underlying bacterial organelle formation, structural robustness and function, and repurposing natural microcompartments using synthetic biology for biotechnological applications. Enteric pathogens such as Salmonella depend on propanediol-utilising microcompartments (Pdu MCP), which self-assemble from cytosolic proteins. Using mass spectrometry-based absolute quantification, the authors here define the protein stoichiometry and propose an organizational model of a Salmonella Pdu MCP.

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