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Mycobacterial surface-mediated mechanical priming initiates spacious to compact phagosome switching for egress.

Created on 26 Jul 2026

Authors

Jayesh Bhausaheb Aher, Aniruddha Nagarajan, Jahnavi Bommidi, Debraj Koiri, Jafarulla Shaikh, Sandeep Choubey, Varadharajan Sundaramurthy, Mohammed Saleem

Published in

iScience. Volume 29. Issue 8. Pages 116745. Aug 21, 2026. Epub Jul 17, 2026.

Abstract

Mycobacterium tuberculosis (Mtb) establishes intracellular niches by remodeling host membranes into either spacious or compact phagosomes, yet how direct bacterial contact within these distinct compartments facilitates bacterial egress remains unknown. Using fixed cell imaging, reconstituted phagosome-like vesicles, and numerical simulations, we uncover that mycobacterial load-mediated contact determines phagosome fate by driving membrane-bending, lipid-wrapping, and phase-separation. Low-to-moderate bacterial loads promote membrane vesiculation and formation of compact phagosome-like structures, whereas high bacterial loads generate scaffold-like architectures that prime membranes for rupture by increasing deformability and inducing lipid demixing. Notably, direct bacterial contact further potentiates the membrane-disrupting activity of the virulence factor ESAT-6, synergistically compromising phagosomal integrity. We propose that mycobacteria actively control the dynamic balance between spacious and compact phagosomes by modulating host membrane mechanics through the membrane-to-contact area ratio and proximity to the lipid demixing threshold. Together, these findings identify a biophysical switch underlying pathogen-driven membrane remodeling and intracellular survival and escape.

PMID:
42502383
Bibliographic data and abstract were imported from PubMed on 26 Jul 2026.

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