Recent Insights into the Structure and Function of Mycobacterial Membrane Proteins Facilitated by Cryo-EM
Ameya D Bendre1, Peter J Peters2, Janesh Kumar3
1Laboratory of Membrane Protein Biology, National Centre for Cell Science, NCCS Complex, S. P. Pune University Campus, Ganeshkhind, Pune, Maharashtra, 411007, India.
Abstract:
Mycobacterium tuberculosis (Mtb) is one of the deadliest pathogens encountered by humanity. Over the decades, its characteristic membrane organization and composition have been understood. However, there is still limited structural information and mechanistic understanding of the constituent membrane proteins critical for drug discovery pipelines. Recent advances in single-particle cryo-electron microscopy and cryo-electron tomography have provided the much-needed impetus towards structure determination of several vital Mtb membrane proteins whose structures were inaccessible via X-ray crystallography and NMR. Important insights into membrane composition and organization have been gained via a combination of electron tomography and biochemical and biophysical assays. In addition, till the time of writing this review, 75 new structures of various Mtb proteins have been reported via single-particle cryo-EM. The information obtained from these structures has improved our understanding of the mechanisms of action of these proteins and the physiological pathways they are associated with. These structures have opened avenues for structure-based drug design and vaccine discovery programs that might help achieve global-TB control. This review describes the structural features of selected membrane proteins (type VII secretion systems, Rv1819c, Arabinosyltransferase, Fatty Acid Synthase, F-type ATP synthase, respiratory supercomplex, ClpP1P2 protease, ClpB disaggregase and SAM riboswitch), their involvement in physiological pathways, and possible use as a drug target. Tuberculosis is a deadly disease caused by Mycobacterium tuberculosis. The Cryo-EM and tomography have simplified the understanding of the mycobacterial membrane organization. Some proteins are located in the plasma membrane; some span the entire envelope, while some, like MspA, are located in the mycomembrane. Cryo-EM has made the study of such membrane proteins feasible.
Insights
Structural insights into Mycobacterium tuberculosis membrane proteins using cryo-electron microscopy are crucial for developing new tuberculosis treatments and vaccines. These advanced techniques reveal vital protein structures for drug discovery.
Area of Science:
- Structural biology
- Microbiology
- Biochemistry
Background:
- Mycobacterium tuberculosis (Mtb) membrane protein structures are key to understanding its pathogenicity.
- Limited structural and mechanistic data exist for Mtb membrane proteins, hindering drug discovery.
- Recent technological advances are enabling the study of these previously inaccessible structures.
Purpose of the Study:
- To review structural features of critical Mtb membrane proteins.
- To highlight the role of these proteins in physiological pathways.
- To explore their potential as drug targets for global tuberculosis control.
Main Methods:
- Single-particle cryo-electron microscopy (cryo-EM) for high-resolution structure determination.
- Cryo-electron tomography for visualizing membrane organization.
- Biochemical and biophysical assays for functional insights.
Main Results:
- Over 75 new Mtb protein structures have been determined using cryo-EM.
- Cryo-EM and tomography have elucidated mycobacterial membrane organization and protein localization.
- Structural data improve understanding of protein function and drug targets.
Conclusions:
- Cryo-EM and tomography provide unprecedented structural insights into Mtb membrane proteins.
- These structures are vital for advancing structure-based drug design and vaccine development.
- Targeting Mtb membrane proteins offers promising strategies for global TB control.
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