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Mycobacterium tuberculosis reprograms waves of phosphatidylinositol 3-phosphate on phagosomal organelles
1Department of Molecular Genetics and Microbiology, University of New Mexico School of Medicine, 915 Camino de Salud NE, Albuquerque, NM 8713, USA.
Abstract:
The potent human pathogen Mycobacterium tuberculosis persists in macrophages within a specialized, immature phagosome by interfering with the pathway of phagolysosome biogenesis. The molecular mechanisms underlying this process remain to be fully elucidated. Here, using four-dimensional microscopy, we detected on model phagosomes, which normally mature into phagolysosomes, the existence of cyclical waves of phosphatidylinositol 3-phosphate (PI3P), a membrane trafficking regulatory lipid essential for phagosomal acquisition of lysosomal characteristics. We show that mycobacteria interfere with the dynamics of PI3P on phagosomal organelles by altering the timing and characteristics of the PI3P waves on phagosomes. The default program of cyclical PI3P waves on model phagosomes is composed of an initial stage (phase I), represented by a strong PI3P burst occurring only upon the completion of phagosome formation, and a subsequent stage (phase II) of recurring PI3P waves on maturing phagosomes with the average periodicity of 20 min. Mycobacteria alter this program in two ways: (i) by inducing, in a cholesterol-dependent fashion, a neophase I* of premature PI3P production, coinciding with the process of mycobacterial entry into the macrophage, and (ii) by inhibiting the calmodulin-dependent phase II responsible for the acquisition of lysosomal characteristics. We conclude that the default pathway of phagosomal maturation into the phagolysosome includes temporally organized cyclical waves of PI3P on phagosomal membranes and that this process is targeted for reprogramming by mycobacteria as they prevent phagolysosome formation.
Insights
Mycobacterium tuberculosis disrupts phagolysosome formation by altering cyclical waves of phosphatidylinositol 3-phosphate (PI3P). This pathogen interferes with PI3P dynamics, preventing the maturation of phagosomes into lysosomes within macrophages.
Area of Science:
- Cell Biology
- Microbiology
- Immunology
Background:
- Mycobacterium tuberculosis (Mtb) evades host immunity by residing within macrophages.
- Mtb interferes with phagolysosome biogenesis, a key cellular defense mechanism.
- The precise molecular mechanisms of Mtb's interference are not fully understood.
Purpose of the Study:
- To elucidate the role of phosphatidylinositol 3-phosphate (PI3P) dynamics in phagolysosome maturation.
- To investigate how Mtb manipulates PI3P signaling to survive within macrophages.
- To identify the molecular targets of Mtb's interference with phagosomal maturation.
Main Methods:
- Utilized four-dimensional (4D) microscopy to observe phagosome maturation in real-time.
- Studied PI3P dynamics on model phagosomes and Mtb-infected phagosomes.
- Investigated the role of cholesterol and calmodulin in Mtb's manipulation of PI3P waves.
Main Results:
- Identified cyclical waves of PI3P as essential for normal phagolysosome maturation.
- Demonstrated that Mtb alters PI3P wave timing, inducing premature PI3P production (neophase I*).
- Showed that Mtb inhibits the calmodulin-dependent phase II of PI3P waves, crucial for lysosomal acquisition.
Conclusions:
- Phagolysosome maturation involves temporally regulated PI3P waves.
- Mtb actively reprograms these PI3P dynamics to prevent phagolysosome formation and ensure its survival.
- Targeting Mtb's manipulation of PI3P signaling may offer new therapeutic strategies.
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