Mechanopathology of biofilm-like Mycobacterium tuberculosis cords.

Details

Serval ID
serval:BIB_A264D4C42F48
Type
Article: article from journal or magazin.
Collection
Publications
Institution
Title
Mechanopathology of biofilm-like Mycobacterium tuberculosis cords.
Journal
Cell
Author(s)
Mishra R., Hannebelle M., Patil V.P., Dubois A., Garcia-Mouton C., Kirsch G.M., Jan M., Sharma K., Guex N., Sordet-Dessimoz J., Perez-Gil J., Prakash M., Knott G.W., Dhar N., McKinney J.D., Thacker V.V.
ISSN
1097-4172 (Electronic)
ISSN-L
0092-8674
Publication state
Published
Issued date
09/11/2023
Peer-reviewed
Oui
Volume
186
Number
23
Pages
5135-5150.e28
Language
english
Notes
Publication types: Journal Article ; Research Support, Non-U.S. Gov't
Publication Status: ppublish
Abstract
Mycobacterium tuberculosis (Mtb) cultured axenically without detergent forms biofilm-like cords, a clinical identifier of virulence. In lung-on-chip (LoC) and mouse models, cords in alveolar cells contribute to suppression of innate immune signaling via nuclear compression. Thereafter, extracellular cords cause contact-dependent phagocyte death but grow intercellularly between epithelial cells. The absence of these mechanopathological mechanisms explains the greater proportion of alveolar lesions with increased immune infiltration and dissemination defects in cording-deficient Mtb infections. Compression of Mtb lipid monolayers induces a phase transition that enables mechanical energy storage. Agent-based simulations demonstrate that the increased energy storage capacity is sufficient for the formation of cords that maintain structural integrity despite mechanical perturbation. Bacteria in cords remain translationally active despite antibiotic exposure and regrow rapidly upon cessation of treatment. This study provides a conceptual framework for the biophysics and function in tuberculosis infection and therapy of cord architectures independent of mechanisms ascribed to single bacteria.
Keywords
Animals, Mice, Biofilms, Lung/microbiology, Lung/pathology, Mycobacterium tuberculosis/physiology, Tuberculosis/microbiology, Tuberculosis/pathology, Virulence, Biomechanical Phenomena, Mycobacterium tuberculosis, agent-based model, antibiotic therapy, biofilms, cords, lung-on-chip, mechanobiology, mycomembrane, serial block scanning face electron microscopy
Pubmed
Open Access
Yes
Create date
30/10/2023 13:21
Last modification date
21/11/2023 8:09
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