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Directed Protein Packaging within Outer Membrane Vesicles from Escherichia coli: Design, Production and Purification
Published on: November 16, 2016
Linking the Salmonella enterica 1,2-Propanediol Utilization Bacterial Microcompartment Shell to the Enzymatic Core
Nolan W Kennedy1, Carolyn E Mills2, Charlotte H Abrahamson2
1Interdisciplinary Biological Sciences Program, Northwestern Universitygrid.16753.36, Evanston, Illinois, USA.
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. IMPORTANCE 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.
Insights
The bacterial microcompartment shell protein PduB links the enzyme core to the shell, separating shell assembly from enzyme encapsulation. This is crucial for understanding bacterial pathogen survival and engineering nanobioreactors.
Area of Science:
- Bacterial cell biology
- Protein-protein interactions
- Metabolic engineering
Background:
- Bacterial microcompartments (MCPs) are protein organelles essential for bacterial survival and colonization.
- Understanding MCP biogenesis is key for targeting pathogens and metabolic engineering.
- The mechanism of enzyme encapsulation within MCPs remains incompletely understood.
Purpose of the Study:
- To investigate the role of the shell protein PduB in linking the enzymatic core to the 1,2-propanediol utilization (Pdu) MCP shell in Salmonella.
- To elucidate the mechanism of PduB incorporation into the MCP shell.
- To determine if shell assembly and enzyme encapsulation are coupled processes.
Main Methods:
- Fluorescent reporters to track enzyme encapsulation.
- MCP purifications and transmission electron microscopy (TEM) to visualize MCP structure.
- Fluorescence microscopy to assess shell and core integrity.
- Site-directed mutagenesis to study PduB function.
- Bacterial growth assays and pathway modeling.
Main Results:
- PduB is essential for linking the Pdu enzyme core to the MCP shell.
- Shell assembly can occur independently of enzyme encapsulation, forming empty MCPs in PduB-deficient strains.
- PduB integrates into the shell via a conserved lysine-mediated hydrogen bonding mechanism.
- Enzyme concentration significantly impacts unencapsulated pathway performance.
Conclusions:
- Enzyme encapsulation and shell assembly are distinct processes in Pdu MCP biogenesis.
- PduB acts as a critical linker between the MCP shell and its enzymatic cargo.
- These findings advance the understanding of MCP formation and have implications for pathogen control and synthetic biology.
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