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Updated: May 10, 2026

Super-resolution Imaging of the Bacterial Division Machinery
Published on: January 21, 2013
Mycobacterium tuberculosis FtsB and PerM interact via a C-terminal helix in FtsB to modulate cell division
João Ramalheira Ferreira1, Ruilan Xu1, Zach Hensel1
1ITQB NOVA, Universidade Nova de Lisboa, Avenida da República, Lisbon, Portugal.
Abstract:
Latent infection by Mycobacterium tuberculosis (Mtb) impedes effective tuberculosis therapy and eradication. The protein PerM is essential for chronic Mtb infections in mice and acts via the divisome protein FtsB to modulate cell division. Using transgenic co-expression in Escherichia coli, we studied the Mtb PerM-FtsB interaction in isolation from other Mtb proteins, engineering PerM to enhance expression in the E. coli membrane. Using fluorescence microscopy in E. coli, we observed that the previously reported PerM-dependent instability of Mtb FtsB required a segment of FtsB predicted to bind cell-division proteins FtsL and FtsQ. Furthermore, we found that the stability of membrane-localized PerM hinged on its interaction with a conserved, C-terminal helix in FtsB. We also observed that removing this helix disrupted PerM-FtsB interaction using single-molecule tracking. Molecular dynamics results supported the observation that FtsB stabilized PerM and suggested that interactions at the PerM-FtsB interface differ from our initial structure prediction in a way that is consistent with PerM sequence conservation. Although narrowly conserved, the PerM-FtsB interaction emerges as a potential therapeutic target for persistent infections by disrupting the regulation of cell division. Integrating protein structure prediction, molecular dynamics, and single-molecule microscopy, our approach is primed to screen potential inhibitors of the PerM-FtsB interaction and can be straightforwardly adapted to explore other putative interactions.IMPORTANCEOur research reveals significant insights into the dynamic interaction between the proteins PerM and FtsB within Mycobacterium tuberculosis, contributing to our understanding of bacterial cell division mechanisms crucial for infection persistence. By combining innovative fluorescence microscopy and molecular dynamics, we established that the stability of these proteins is interdependent; molecular dynamics placing PerM-FtsB in the context of the mycobacterial divisome shows how disrupting PerM-FtsB interactions can plausibly impact bacterial cell wall synthesis. These findings highlight the PerM-FtsB interface as a promising target for novel therapeutics aimed at combating persistent bacterial infections. Importantly, our approach can be adapted for similar studies in other bacterial systems, suggesting broad implications for microbial biology and antibiotic development.
Insights
Mycobacterium tuberculosis (Mtb) protein PerM stabilizes FtsB, crucial for bacterial cell division. Disrupting this PerM-FtsB interaction may offer new therapies against persistent Mtb infections.
Area of Science:
- Microbiology and Molecular Biology
- Bacterial Cell Division and Infection Persistence
Background:
- Latent Mycobacterium tuberculosis (Mtb) infection is a major hurdle in tuberculosis therapy and eradication.
- The Mtb protein PerM is essential for chronic infections, modulating bacterial cell division via the divisome protein FtsB.
Purpose of the Study:
- To investigate the isolated interaction between Mtb PerM and FtsB in Escherichia coli.
- To identify key structural elements and interaction dynamics governing PerM-FtsB stability and function.
- To explore the PerM-FtsB interface as a potential therapeutic target for persistent Mtb infections.
Main Methods:
- Transgenic co-expression of Mtb PerM and FtsB in Escherichia coli.
- Fluorescence microscopy and single-molecule tracking to observe protein interactions and stability.
- Molecular dynamics simulations to predict and validate interaction interfaces and mechanisms.
Main Results:
- PerM-dependent instability of FtsB requires a specific FtsB segment involved in binding FtsL and FtsQ.
- PerM stability is dependent on its interaction with a conserved C-terminal helix of FtsB.
- Molecular dynamics confirmed FtsB stabilizes PerM, with interface interactions differing from initial predictions but consistent with sequence conservation.
Conclusions:
- The PerM-FtsB interaction is interdependent and crucial for regulating Mtb cell division.
- Disrupting the PerM-FtsB interface presents a promising strategy for developing novel therapeutics against persistent Mtb.
- The integrated approach of microscopy, molecular dynamics, and structural prediction is adaptable for screening inhibitors and studying other bacterial interactions.
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