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Cell Biology of Intracellular Adaptation of Mycobacterium leprae in the Peripheral Nervous System
Samuel Hess1, Anura Rambukkana1,2
1Medical Research Council (MRC) Centre for Regenerative Medicine.
Abstract:
The mammalian nervous system is invaded by a number of intracellular bacterial pathogens which can establish and progress infection in susceptible individuals. Subsequent clinical manifestation is apparent with the impairment of the functional units of the nervous system, i.e., the neurons and the supporting glial cells that produce myelin sheaths around axons and provide trophic support to axons and neurons. Most of these neurotrophic bacteria display unique features, have coevolved with the functional sophistication of the nervous system cells, and have adapted remarkably to manipulate neural cell functions for their own advantage. Understanding how these bacterial pathogens establish intracellular adaptation by hijacking endogenous pathways in the nervous system, initiating myelin damage and axonal degeneration, and interfering with myelin maintenance provides new knowledge not only for developing strategies to combat neurodegenerative conditions induced by these pathogens but also for gaining novel insights into cellular and molecular pathways that regulate nervous system functions. Since the pathways hijacked by bacterial pathogens may also be associated with other neurodegenerative diseases, it is anticipated that detailing the mechanisms of bacterial manipulation of neural systems may shed light on common mechanisms, particularly of early disease events. This chapter details a classic example of neurodegeneration, that caused by Mycobacterium leprae, which primarily infects glial cells of the peripheral nervous system (Schwann cells), and how it targets and adapts intracellularly by reprogramming Schwann cells to stem cells/progenitor cells. We also discuss implications of this host cell reprogramming by leprosy bacilli as a model in a wider context.
Insights
Certain bacteria invade the nervous system, causing neurodegeneration by hijacking neural cell functions. Understanding these pathogens, like Mycobacterium leprae, offers insights into neurodegenerative diseases and nervous system regulation.
Area of Science:
- Neuroscience
- Infectious Diseases
- Cellular Biology
Background:
- Intracellular bacterial pathogens can infect the mammalian nervous system, leading to neurodegeneration.
- These bacteria manipulate neural cell functions, including neurons and glial cells, for their own advantage.
- Pathways hijacked by these pathogens may be implicated in other neurodegenerative diseases.
Purpose of the Study:
- To understand how bacterial pathogens adapt intracellularly within the nervous system.
- To investigate the mechanisms of myelin damage and axonal degeneration induced by neurotrophic bacteria.
- To explore the reprogramming of glial cells by bacteria as a model for neurodegeneration.
Main Methods:
- Review of existing literature on bacterial neuroinvasion and neurodegeneration.
- Detailed examination of *Mycobacterium leprae* infection of Schwann cells.
- Analysis of host cell reprogramming mechanisms.
Main Results:
- *Mycobacterium leprae* infects peripheral nervous system glial cells (Schwann cells).
- The bacterium reprograms Schwann cells into stem cell-like progenitor cells.
- This reprogramming represents a novel mechanism of bacterial adaptation and neurodegeneration.
Conclusions:
- Studying bacterial manipulation of neural systems provides insights into neurodegenerative disease mechanisms.
- The reprogramming of Schwann cells by *Mycobacterium leprae* serves as a model for understanding host-pathogen interactions.
- Understanding these processes can inform strategies against pathogen-induced neurodegeneration and reveal insights into nervous system regulation.
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