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The PduL Phosphotransacylase Is Used To Recycle Coenzyme A within the Pdu Microcompartment
Yu Liu1, Julien Jorda2, Todd O Yeates3
1Roy J. Carver Department of Biochemistry, Biophysics, and Molecular Biology, Iowa State University, Ames, Iowa, USA.
Unlabelled:
In Salmonella enterica, 1,2-propanediol (1,2-PD) utilization (Pdu) is mediated by a bacterial microcompartment (MCP). The Pdu MCP consists of a multiprotein shell that encapsulates enzymes and cofactors for 1,2-PD catabolism, and its role is to sequester a reactive intermediate (propionaldehyde) to minimize cellular toxicity and DNA damage. For the Pdu MCP to function, the enzymes encapsulated within must be provided with a steady supply of substrates and cofactors. In the present study, Western blotting assays were used to demonstrate that the PduL phosphotransacylase is a component of the Pdu MCP. We also show that the N-terminal 20-residue-long peptide of PduL is necessary and sufficient for targeting PduL and enhanced green fluorescent protein (eGFP) to the lumen of the Pdu MCP. We present the results of genetic tests that indicate that PduL plays a role in the recycling of coenzyme A internally within the Pdu MCP. However, the results indicate that some coenzyme A recycling occurs externally to the Pdu MCP. Hence, our results support a model in which a steady supply of coenzyme A is provided to MCP lumen enzymes by internal recycling by PduL as well as by the movement of coenzyme A across the shell by an unknown mechanism. These studies expand our understanding of the Pdu MCP, which has been linked to enteric pathogenesis and which provides a possible basis for the development of intracellular bioreactors for use in biotechnology.
Importance:
Bacterial MCPs are widespread organelles that play important roles in pathogenesis and global carbon fixation. Here we show that the PduL phosphotransacylase is a component of the Pdu MCP. We also show that PduL plays a key role in cofactor homeostasis by recycling coenzyme A internally within the Pdu MCP. Further, we identify a potential N-terminal targeting sequence using a bioinformatic approach and show that this short sequence extension is necessary and sufficient for directing PduL as well as heterologous proteins to the lumen of the Pdu MCP. These findings expand our general understanding of bacterial MCP assembly and cofactor homeostasis.
Insights
The PduL enzyme is part of the Salmonella Pdu microcompartment, essential for 1,2-propanediol metabolism. Its N-terminal peptide targets proteins to the microcompartment and aids in recycling coenzyme A for cellular processes.
Area of Science:
- Microbiology
- Biochemistry
- Cell Biology
Background:
- Bacterial microcompartments (MCPs) are protein shells encapsulating enzymes for specific metabolic pathways.
- The Pdu MCP in Salmonella enterica facilitates 1,2-propanediol utilization by sequestering toxic intermediates.
- Efficient function of MCPs requires a steady supply of substrates and cofactors to encapsulated enzymes.
Purpose of the Study:
- To investigate the role of PduL phosphotransacylase in the Pdu MCP.
- To identify the mechanism of PduL targeting to the MCP lumen.
- To elucidate the involvement of PduL in cofactor homeostasis within the Pdu MCP.
Main Methods:
- Western blotting to confirm PduL as a Pdu MCP component.
- Genetic analysis to determine the function of PduL's N-terminal peptide.
- Bioinformatic analysis to predict protein targeting sequences.
Main Results:
- PduL phosphotransacylase is confirmed as a component of the Pdu MCP.
- A 20-residue N-terminal peptide of PduL is necessary and sufficient for targeting proteins to the MCP lumen.
- PduL plays a role in internal coenzyme A recycling within the Pdu MCP, contributing to cofactor homeostasis.
Conclusions:
- PduL is a key enzyme for cofactor recycling within the Pdu MCP.
- The N-terminal peptide of PduL acts as a targeting signal for MCP lumen localization.
- These findings enhance understanding of MCP assembly, cofactor management, and potential biotechnological applications.
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