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Updated: Apr 20, 2026

The Multifaceted Benefits of Protein Co-expression in Escherichia coli
Published on: February 5, 2015
An overview of protein moonlighting in bacterial infection
1*Department of Microbial Diseases, UCL-Eastman Dental Institute, University College London, London WC1X 8LD, U.K.
Abstract:
We are rapidly returning to a world in which bacterial infections are a major health issue. Pathogenic bacteria are able to colonize and cause pathology due to the possession of virulence factors such as adhesins, invasins, evasins and toxins. These are generally specifically evolved proteins with selective actions. It is, therefore, surprising that most human bacterial pathogens employ moonlighting proteins as virulence factors. Currently, >90 bacterial species employ one or more moonlighting protein families to aid colonization and induce disease. These organisms employ 90 moonlighting bacterial protein families and these include enzymes of the glycolytic pathway, tricarboxylic acid (TCA) cycle, hexosemonophosphate shunt, glyoxylate cycle and a range of other metabolic enzymes, proteases, transporters and, also, molecular chaperones and protein-folding catalysts. These proteins have homologues in eukaryotes and only a proportion of the moonlighting proteins employed are solely bacterial in origin. Bacterial moonlighting proteins can be divided into those with single moonlighting functions and those with multiple additional biological actions. These proteins contribute significantly to the population of virulence factors employed by bacteria and some are obvious therapeutic targets. Where examined, bacterial moonlighting proteins bind to target ligands with high affinity. A major puzzle is the evolutionary mechanism(s) responsible for bacterial protein moonlighting and a growing number of highly homologous bacterial moonlighting proteins exhibit widely different moonlighting actions, suggesting a lack in our understanding of the mechanism of evolution of protein active sites.
Insights
Bacterial pathogens often use moonlighting proteins, which have multiple roles, to cause disease. Understanding these versatile virulence factors is crucial for developing new treatments against bacterial infections.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Bacterial infections pose a growing global health threat.
- Pathogenic bacteria utilize virulence factors like toxins and adhesins to cause disease.
- Surprisingly, many bacteria employ moonlighting proteins, with multiple functions, as key virulence factors.
Purpose of the Study:
- To highlight the significant role of moonlighting proteins in bacterial pathogenesis.
- To discuss the diversity of moonlighting proteins used by bacteria, including metabolic enzymes and chaperones.
- To explore the evolutionary origins and therapeutic potential of bacterial moonlighting proteins.
Main Methods:
- Review and synthesis of existing literature on bacterial moonlighting proteins.
- Categorization of moonlighting proteins based on their functions and origins.
- Analysis of the evolutionary implications and potential as drug targets.
Main Results:
- >90 bacterial species utilize approximately 90 moonlighting protein families for colonization and disease.
- These proteins include metabolic enzymes (glycolytic, TCA cycle), proteases, transporters, and chaperones.
- Many moonlighting proteins have eukaryotic homologs, and some exhibit high-affinity ligand binding.
Conclusions:
- Moonlighting proteins are essential virulence factors for a wide range of bacterial pathogens.
- Their diverse functions and presence in essential pathways present unique therapeutic opportunities.
- The evolution of protein moonlighting remains a significant area for future research.
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