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Updated: Oct 23, 2025

Growth of Mycobacterium tuberculosis Biofilms
Published on: February 15, 2012
Distinct Persistence Fate of Mycobacterium tuberculosis in Various Types of Cells
Xi Chen1, Xiaojian Cao1, Yingying Lei1
1State Key Laboratory of Agricultural Microbiology, College of Veterinary Medicine, Huazhong Agricultural Universitygrid.35155.37, Wuhan, China.
Abstract:
Mycobacterium tuberculosis can invade different cells with distinct persistence fates because cells are equipped with different host restriction factors. However, the underlying mechanisms remain elusive. Here, we infected THP1 and Raw264.7 macrophages cell lines, A549 epithelial cell line, and hBMEC and bEnd.3 endothelial cell lines with M. tuberculosis and demonstrated that M. tuberculosis significantly inhibited lysosome acidification in THP1, hBMEC, A549, and Raw264.7 cells, while, in bEnd.3 cells, M. tuberculosis was mainly delivered into acidified phagolysosomes and auto-lysosomes. The systematic gene profile analysis of different cells and intracellular M. tuberculosis showed that the phagosome autophagy-pathway-related genes itgb3 and atg3 were highly expressed in bEnd.3 cells. Knockdown of these genes significantly increased the number of viable intracellular M. tuberculosis bacilli by altering phagosomal trafficking in bEnd.3 cells. Treatment with itgb3 agonist significantly decreased M. tuberculosis survival in vivo. These findings could facilitate the identification of anti-M. tuberculosis host genes and guide M. tuberculosis-resistant livestock breeding. IMPORTANCE As an intracellular pathogen, Mycobacterium tuberculosis could avoid host cell immune clearance using multiple strategies for its long-term survival. Understanding these processes could facilitate the development of new approaches to restrict intracellular M. tuberculosis survival. Here, we characterized the detailed molecular events occurring during intracellular trafficking of M. tuberculosis in macrophage, epithelial, and endothelial cell lines and found that ITGB3 facilitates M. tuberculosis clearance in endothelial cells through altering phagosomal trafficking. Meanwhile, the treatment with ITGB3 agonist could reduce bacterial load in vivo. Our results identified new anti-M. tuberculosis restriction factors and illuminated a new anti-M. tuberculosis defense mechanism.
Insights
Mycobacterium tuberculosis evades immune cells by altering lysosome function. The gene ITGB3 helps clear tuberculosis in endothelial cells, offering new strategies against this pathogen.
Area of Science:
- Immunology
- Cell Biology
- Microbiology
Background:
- Mycobacterium tuberculosis (M. tuberculosis) exhibits varied intracellular persistence due to host cell restriction factors, with mechanisms largely unknown.
- Understanding how M. tuberculosis interacts with different host cells is crucial for developing novel therapeutic strategies.
Purpose of the Study:
- To investigate the intracellular trafficking and host restriction mechanisms of M. tuberculosis in diverse cell types.
- To identify host factors that influence M. tuberculosis survival and clearance.
Main Methods:
- Infection of macrophage (THP1, Raw264.7), epithelial (A549), and endothelial (hBMEC, bEnd.3) cell lines with M. tuberculosis.
- Analysis of lysosome acidification, gene expression profiles (itgb3, atg3), and phagosomal trafficking.
- Gene knockdown and treatment with ITGB3 agonist in vitro and in vivo.
Main Results:
- M. tuberculosis inhibited lysosome acidification in most cell lines, except bEnd.3 cells where it entered acidified compartments.
- High expression of itgb3 and atg3 in bEnd.3 cells correlated with M. tuberculosis clearance.
- Knockdown of itgb3 or atg3 increased M. tuberculosis survival; ITGB3 agonist treatment reduced bacterial load in vivo.
Conclusions:
- ITGB3 plays a key role in restricting M. tuberculosis in endothelial cells by modulating phagosomal trafficking.
- ITGB3 represents a potential host-directed therapeutic target for tuberculosis treatment.
- Findings may aid in identifying anti-tuberculosis host genes and breeding resistant livestock.
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