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DNA Fingerprinting of Mycobacterium leprae Strains Using Variable Number Tandem Repeat VNTR - Fragment Length Analysis FLA
Published on: July 15, 2011
Mitochondrial variants of complex I genes associated with leprosy clinical subtypes
Felipe Gouvea de Souza1, Caio S Silva1, Gilderlanio S de Araújo1
1Laboratório de Genética Humana e Médica, Instituto de Ciências Biológicas, Universidade Federal do Pará, Belém, PA, 66075-110, Brazil.
Abstract:
Leprosy is a chronic bacterial infection mainly caused by Mycobacterium leprae that primarily affects skin and peripheral nerves. Due to its ability to absorb carbon from the host cell, the bacillus became dependent on energy production, mainly through oxidative phosphorylation. In fact, variations in genes of Complex I of oxidative phosphorylation encoded by mtDNA have been associated with several diseases in humans, including bacterial infections, which are possible influencers in the host response to leprosy. Here, we investigated the presence of variants in the mtDNA genes encoding Complex I regarding leprosy, as well as the analysis of their pathogenicity in the studied cohort. We found an association of 74 mitochondrial variants with either of the polar forms, Pole T (Borderline Tuberculoid) or Pole L (Borderline Lepromatous and Lepromatous) of leprosy. Notably, six variants were exclusively found in both clinical poles of leprosy, including m.4158A>G and m.4248T>C in MT-ND1, m.13650C>A, m.13674T>C, m.12705C>T and m.13263A>G in MT-ND5, of which there are no previous reports in the global literature. Our observations reveal a substantial number of mutations among different groups of leprosy, highlighting a diverse range of consequences associated with mutations in genes across these groups. Furthermore, we suggest that the six specific variants exclusively identified in the case group could potentially play a crucial role in leprosy susceptibility and its clinical differentiation. These variants are believed to contribute to the instability and dysregulation of oxidative phosphorylation during the infection, further emphasizing their significance.
Insights
Mitochondrial DNA variants in Complex I are linked to leprosy. Six novel variants exclusively found in leprosy patients may influence disease susceptibility and clinical presentation.
Area of Science:
- Genetics
- Infectious Diseases
- Mitochondrial Biology
Background:
- Leprosy, a chronic infection by Mycobacterium leprae, impacts skin and nerves.
- Host response to leprosy may involve mitochondrial DNA (mtDNA) variations, particularly in Complex I genes crucial for energy production.
Purpose of the Study:
- To investigate mtDNA variants in Complex I genes associated with leprosy.
- To analyze the pathogenicity of these variants in a leprosy cohort.
Main Methods:
- Analysis of mitochondrial variants in Complex I genes.
- Association study with leprosy clinical forms (Pole T, Pole L).
Main Results:
- Identified 74 mitochondrial variants associated with leprosy poles.
- Discovered six novel variants exclusively in leprosy patients (e.g., m.4158A>G in MT-ND1, m.13650C>A in MT-ND5).
Conclusions:
- Leprosy is associated with a significant number of mtDNA mutations.
- The six novel variants may play a role in leprosy susceptibility and clinical differentiation.
- These variants could destabilize oxidative phosphorylation during infection.
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