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Updated: Jun 18, 2025

Immunometabolic Circuits in Infection for Advancing Host Directed Therapies
Published on: September 13, 2024
Anchorless Bacterial Moonlighting Metabolic Enzymes Modulate the Immune System and Contribute to Pathogenesis
Dongqi Liu1,2, Arun K Bhunia1,2,3
1Molecular Food Microbiology Laboratory, Department of Food Science, Purdue University, West Lafayette, Indiana 47907, United States.
Abstract:
Moonlighting proteins (MPs), characterized by their ability to perform multiple physiologically unrelated functions without alterations to their primary structures, represent a fascinating class of biomolecules with significant implications for host-pathogen interactions. This Review highlights the emerging importance of metabolic moonlighting proteins (MetMPs) in bacterial pathogenesis, focusing on their non-canonical secretion and unconventional surface anchoring mechanisms. Despite lacking typical signal peptides and anchoring motifs, MetMPs such as acetaldehyde alcohol dehydrogenase (AdhE) and glyceraldehyde-3-phosphate dehydrogenase (GAPDH) are secreted and localized to the bacterial surface under stress conditions, facilitating host colonization and immune evasion. The secretion of MetMPs, often observed during conditions such as resource scarcity or infection, suggests a complex regulation akin to the overexpression of heat shock proteins in response to environmental stresses. This Review proposes two potential pathways for MetMP secretion: membrane damage-induced permeability and co-transportation with traditionally secreted proteins, highlighting a remarkable bacterial adaptability. Biophysically, surface anchoring of MetMPs is driven by electrostatic interactions, bypassing the need for conventional anchoring sequences. This mechanism is exemplified by the interaction between the bifunctional enzyme AdhE (known as Listeria adhesion protein, LAP) and the internalin B (InlB) in Listeria monocytogenes, which is mediated by charged residues facilitating adhesion to host tissues. Furthermore, MetMPs play critical roles in iron homeostasis, immune modulation, and evasion, underscoring their multifaceted roles in bacterial pathogenicity. The intricate dynamics of MetMP secretion and anchoring underline the need for further research to unravel the molecular mechanisms underpinning these processes, offering potential new targets for therapeutic intervention against bacterial infections.
Insights
Metabolic moonlighting proteins (MetMPs) are secreted and surface-anchored via unconventional mechanisms, aiding bacterial pathogenesis and immune evasion. Understanding these processes offers novel therapeutic targets against bacterial infections.
Area of Science:
- Microbiology
- Biochemistry
- Molecular Biology
Background:
- Moonlighting proteins (MPs) perform multiple functions without structural changes, impacting host-pathogen interactions.
- Metabolic moonlighting proteins (MetMPs) are crucial in bacterial pathogenesis, exhibiting unique secretion and anchoring strategies.
- Bacterial stress conditions trigger non-canonical secretion and surface localization of MetMPs.
Purpose of the Study:
- To review the emerging importance of MetMPs in bacterial pathogenesis.
- To highlight unconventional secretion and surface anchoring mechanisms of MetMPs.
- To explore the implications of MetMP dynamics for therapeutic interventions.
Main Methods:
- Literature review focusing on bacterial pathogenesis and moonlighting proteins.
- Analysis of secretion pathways, including membrane damage and co-transport.
- Examination of biophysical mechanisms, such as electrostatic interactions for surface anchoring.
- Case studies including acetaldehyde alcohol dehydrogenase (AdhE) and glyceraldehyde-3-phosphate dehydrogenase (GAPDH).
Main Results:
- MetMPs are secreted and surface-localized under stress, lacking typical signal peptides.
- Potential secretion pathways involve membrane permeability or co-transport.
- Surface anchoring is mediated by electrostatic interactions, not conventional motifs.
- MetMPs contribute to host colonization, immune evasion, iron homeostasis, and modulation.
Conclusions:
- MetMPs play multifaceted roles in bacterial pathogenicity through unique secretion and anchoring.
- Bacterial adaptability in MetMP regulation is highlighted.
- Further research into MetMP mechanisms can reveal new therapeutic targets.
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