Title | An exacerbated phosphate starvation response triggers Mycobacterium tuberculosis glycerol utilization at acidic pH. |
Publication Type | Journal Article |
Year of Publication | 2025 |
Authors | Healy C, Ehrt S, Gouzy A |
Journal | mBio |
Volume | 16 |
Issue | 1 |
Pagination | e0282524 |
Date Published | 2025 Jan 08 |
ISSN | 2150-7511 |
Keywords | Acids, Bacterial Proteins, Gene Expression Regulation, Bacterial, Glycerol, Humans, Hydrogen-Ion Concentration, Mycobacterium tuberculosis, Phosphates, Stress, Physiological, Virulence |
Abstract | The mechanisms controlling Mycobacterium tuberculosis (Mtb) replication and survival inside its human host remain ill-defined. Phagosome acidification and nutrient deprivation are common mechanisms used by macrophages to restrict the replication of intracellular bacteria. Mtb stops replicating at mildly acidic pH (pstA1, a gene coding for a subunit of the Pst-1 system, results in the overexpression of the Pi starvation regulator regX3, which is sufficient to restore Mtb growth in acid conditions. Our data further support the role of limited glycerol uptake and ROS-mediated glyceraldehyde-3-phosphate dehydrogenase (GAPDH) inhibition in causing Mtb acid growth arrest. This study reveals an unexpected role of the Pi starvation response in regulating acid growth arrest and highlights the intricacy of the mechanisms regulating redox homeostasis, acid stress response, and nutrient utilization in Mtb.IMPORTANCEDespite the availability of antibiotic treatment, M. tuberculosis (Mtb), the causative agent of tuberculosis (TB), remains a major infectious disease killer worldwide. A better understanding of the environments that Mtb faces during infection and the mechanisms Mtb employs to respond and adapt may help identify currently unexplored pathways and targets for the development of novel anti-TB drugs. Here, we demonstrate that Mtb growth in acid can be restored by the over-expression of the Pi starvation response regulator regX3. This work paves the way toward a better understanding of the mechanisms controlling Mtb growth at acidic pH and highlights the role of inorganic phosphate in this process. |
DOI | 10.1128/mbio.02825-24 |
Alternate Journal | mBio |
PubMed ID | 39611843 |
PubMed Central ID | PMC11708021 |
Grant List | P01 AI143575 / AI / NIAID NIH HHS / United States R21 AI168673 / AI / NIAID NIH HHS / United States P01AI143575 / / HHS | NIH | National Institute of Allergy and Infectious Diseases (NIAID) / 1R21AI168673-01A1 / / HHS | NIH | National Institute of Allergy and Infectious Diseases (NIAID) / |
Submitted by ljc4002 on August 21, 2025 - 1:58pm