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Updated: Jan 29, 2026

Analyzing the Functions of Mast Cells In Vivo Using 'Mast Cell Knock-in' Mice
Published on: May 27, 2015
Mast cells promote pathology and susceptibility in tuberculosis
Ananya Gupta1,2, Vibha Taneja1, Javier Rangel-Moreno3
1Department of Microbiology, The University of Chicago, Chicago, United States.
Abstract:
Tuberculosis (TB), caused by the bacterium Mycobacterium tuberculosis (Mtb), infects approximately one-fourth of the world's population. We reported an increased accumulation of mast cells (MCs) in the lungs of macaques with active pulmonary TB (PTB), compared with those with latent TB infection (LTBI). MCs respond in vitro to Mtb exposure via degranulation and by inducing proinflammatory cytokines. In the current study, we demonstrate an increased production of chymase by MCs in granulomas of humans and macaques with PTB. Single-cell (sc) RNA sequencing analysis revealed distinct MC transcriptional programs between LTBI and PTB, with PTB-associated MCs enriched in interferon gamma, oxidative phosphorylation, and MYC signaling. In a mouse model, MC deficiency led to improved control of Mtb infection that coincided with reduced accumulation of lung myeloid cells and diminished lung inflammation at chronic stages of infection. Airway transfer of MCs into wild-type Mtb-infected mice showed increased neutrophils, decreased recruited macrophages, and elevated Mtb dissemination to the spleen. Together, these findings highlight MCs as active drivers of TB pathogenesis and potential targets for host-directed therapies for TB.
Insights
Mast cells (MCs) drive tuberculosis (TB) pathogenesis by promoting inflammation and bacterial spread. Reducing MCs in mouse models improved infection control, suggesting MCs as therapeutic targets for TB.
Area of Science:
- Immunology
- Microbiology
- Pathogenesis
Background:
- Tuberculosis (TB) affects a quarter of the global population.
- Mast cells (MCs) accumulate in active pulmonary TB (PTB) lungs.
- MCs respond to Mycobacterium tuberculosis (Mtb) with degranulation and cytokine release.
Purpose of the Study:
- Investigate the role of MCs in TB pathogenesis.
- Identify MC transcriptional differences between latent TB infection (LTBI) and PTB.
- Evaluate MCs as potential therapeutic targets for TB.
Main Methods:
- Analysis of MCs in human and macaque PTB granulomas.
- Single-cell RNA sequencing of MCs from LTBI and PTB subjects.
- MC deficiency and transfer studies in a mouse model of TB.
Main Results:
- Increased chymase production by MCs in PTB granulomas.
- Distinct MC transcriptional profiles in PTB, enriched in interferon gamma, oxidative phosphorylation, and MYC signaling.
- MC deficiency improved Mtb control in mice, reducing lung inflammation and myeloid cell accumulation.
Conclusions:
- MCs are active drivers of TB pathogenesis.
- MCs influence immune cell recruitment and bacterial dissemination.
- Targeting MCs offers a potential host-directed therapy strategy for TB.
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