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Published on: March 23, 2014
Modulation of the Response to Mycobacterium leprae and Pathogenesis of Leprosy
Natasha Cabral1, Vilma de Figueiredo1, Mariana Gandini1
1Laboratory of Cellular Microbiology, Oswaldo Cruz Institute, Oswaldo Cruz Foundation (FIOCRUZ), Rio de Janeiro, Brazil.
Abstract:
The initial infection by the obligate intracellular bacillus Mycobacterium leprae evolves to leprosy in a small subset of the infected individuals. Transmission is believed to occur mainly by exposure to bacilli present in aerosols expelled by infected individuals with high bacillary load. Mycobacterium leprae-specific DNA has been detected in the blood of asymptomatic household contacts of leprosy patients years before active disease onset, suggesting that, following infection, the bacterium reaches the lymphatic drainage and the blood of at least some individuals. The lower temperature and availability of protected microenvironments may provide the initial conditions for the survival of the bacillus in the airways and skin. A subset of skin-resident macrophages and the Schwann cells of peripheral nerves, two M. leprae permissive cells, may protect M. leprae from effector cells in the initial phase of the infection. The interaction of M. leprae with these cells induces metabolic changes, including the formation of lipid droplets, that are associated with macrophage M2 phenotype and the production of mediators that facilitate the differentiation of specific T cells for M. leprae-expressed antigens to a memory regulatory phenotype. Here, we discuss the possible initials steps of M. leprae infection that may lead to active disease onset, mainly focusing on events prior to the manifestation of the established clinical forms of leprosy. We hypothesize that the progressive differentiation of T cells to the Tregs phenotype inhibits effector function against the bacillus, allowing an increase in the bacillary load and evolution of the infection to active disease. Epigenetic and metabolic mechanisms described in other chronic inflammatory diseases are evaluated for potential application to the understanding of leprosy pathogenesis. A potential role for post-exposure prophylaxis of leprosy in reducing M. leprae-induced anti-inflammatory mediators and, in consequence, Treg/T effector ratios is proposed.
Insights
Leprosy begins with Mycobacterium leprae infection, often undetected. Early immune responses may promote bacterial growth, leading to disease progression.
Area of Science:
- Immunology
- Infectious Diseases
- Microbiology
Background:
- Leprosy is caused by Mycobacterium leprae, an obligate intracellular bacillus.
- Infection occurs via aerosols from individuals with high bacillary loads.
- M. leprae DNA is found in asymptomatic contacts years before disease onset.
Purpose of the Study:
- To explore the initial steps of M. leprae infection leading to leprosy.
- To understand events preceding clinical leprosy manifestation.
- To hypothesize mechanisms driving infection progression.
Main Methods:
- Review of M. leprae infection dynamics.
- Analysis of host-pathogen interactions.
- Evaluation of epigenetic and metabolic mechanisms.
Main Results:
- M. leprae may survive in airways and skin due to temperature and microenvironments.
- Macrophages and Schwann cells may initially protect M. leprae.
- M. leprae interaction induces metabolic changes and T cell differentiation towards a regulatory phenotype.
Conclusions:
- Progressive T cell differentiation to Tregs may inhibit effector functions, allowing bacterial proliferation.
- Epigenetic and metabolic factors may influence leprosy pathogenesis.
- Post-exposure prophylaxis could potentially reduce M. leprae-induced inflammation and Treg/T effector imbalance.
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