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Leprosy piRnome: exploring new possibilities for an old disease
Pablo Pinto1,2, Moisés Batista da Silva3, Fabiano Cordeiro Moreira2
1Human and Medical Genetics Laboratory, Institute of Biological Sciences (ICB), UFPA, Belém, 66075110, Brazil.
Abstract:
Leprosy, which is caused by the human pathogen Mycobacterium leprae, causes nerve damage, deformity and disability in over 200,000 people every year. Because of the long doubling time of M. leprae (13 days) and the delayed onset of detectable symptoms, which is estimated to be approximately 3-7 years after infection, there is always a large percentage of subclinically infected individuals in the population who will eventually develop the disease, mainly in endemic countries. piRNAs comprise the largest group of small noncoding RNAs found in humans, and they are distinct from microRNAs (miRNAs) and small interfering RNAs (siRNAs). piRNAs function in transposon silencing, epigenetic regulation, and germline development. The functional role of piRNAs and their associated PIWI proteins have started to emerge in the development of human cancers and viral infections, but their relevance to bacterial diseases has not been investigated. The present study reports the piRNome of human skin, revealing that all but one of the piRNAs examined are downregulated in leprosy skin lesions. Considering that one of the best characterized functions of piRNAs in humans is posttranscriptional mRNA silencing, their functions are similar to what we have described for miRNAs, including acting on apoptosis, M. leprae recognition and engulfment, Schwann cell (SC) demyelination, epithelial-mesenchymal transition (EMT), loss of sensation and neuropathic pain. In addition to new findings on leprosy physiopathology, the discovery of relevant piRNAs involved in disease processes in human skin may provide new clues for therapeutic targets, specifically to control nerve damage, a prominent feature of leprosy that has no currently available pharmaceutical treatment.
Insights
The study found that piwi-interacting RNAs (piRNAs) are downregulated in leprosy skin lesions. This discovery may lead to new therapeutic targets for nerve damage, a common leprosy symptom.
Area of Science:
- Molecular Biology
- Genomics
- Immunology
Background:
- Leprosy, caused by Mycobacterium leprae, leads to significant nerve damage and disability annually.
- Subclinical infections are common due to long incubation periods, complicating disease control.
- Piwi-interacting RNAs (piRNAs) are crucial for gene regulation but their role in bacterial infections is unexplored.
Purpose of the Study:
- To investigate the piwi-interacting RNA profile in human leprosy skin lesions.
- To explore the potential role of piRNAs in leprosy pathogenesis and nerve damage.
- To identify novel therapeutic targets for leprosy, particularly for nerve damage.
Main Methods:
- Analysis of the piwi-interacting RNAome (piRNome) in human skin samples from leprosy patients.
- Comparison of piRNA expression levels in lesional skin versus healthy controls.
- Correlation of piRNA dysregulation with disease manifestations like nerve damage.
Main Results:
- The study identified a distinct piRNome in human skin.
- All but one examined piRNA were found to be downregulated in leprosy skin lesions.
- Dysregulated piRNAs are implicated in processes such as apoptosis, M. leprae recognition, and Schwann cell demyelination.
Conclusions:
- Piwi-interacting RNAs play a significant role in the pathogenesis of leprosy.
- Downregulation of piRNAs in leprosy skin lesions suggests their involvement in disease progression and nerve damage.
- These findings offer potential for developing novel piRNA-based therapeutic strategies for leprosy.
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