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.

PubMed

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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