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Plasma Microvesicles May Contribute to Muscle Damage in the mdx Mouse Model of Duchenne Muscular Dystrophy
Cynthia Machado Cascabulho1, Samuel Iwao Maia Horita1,2, Daniela Gois Beghini1
1Laboratório de Inovações em Terapias, Ensino e Bioprodutos, Instituto Oswaldo Cruz, FIOCRUZ, Rio de Janeiro 21040-360, RJ, Brazil.
Abstract:
Extracellular vesicles (EVs) are cell-derived lipid-bound vesicles divided into apoptotic bodies, microvesicles (MVs), and exosomes based on their biogenesis, release pathway, size, content, and functions. EVs are intercellular mediators that significantly affect muscle diseases such as Duchenne muscular dystrophy (DMD). DMD is a fatal X-linked disorder caused by mutations in the dystrophin gene, leading to muscle degeneration. Mdx mice are the most commonly used model to study the disease, and in this study, we phenotypically characterized plasma MVs from mdx mice by flow cytometry. Furthermore, we assessed the ability of plasma MVs to modulate muscle inflammation, damage, and/or regeneration by intramuscular injection of MVs from mdx mice into mdx or DBA/2 mice as a control. In both mouse lineages, platelets and erythrocytes were the primary sources of MVs, and CD3+ CD4+ MVs were observed only in mdx mice. We also observed that plasma MVs from mdx mice induced muscle damage in mdx mice but not in DBA/2 mice, while plasma MVs from DBA/2 mice did not induce muscle damage in either mouse lineage. These results indicate that plasma MVs from mdx are potentially pathogenic. However, this condition also depends on the muscular tissue status, which must be responsive due to active inflammatory or regenerative responses.
Insights
Plasma microvesicles (MVs) from Duchenne muscular dystrophy (DMD) mice are pathogenic, causing muscle damage in affected mice. This suggests MVs may play a role in DMD progression, depending on muscle inflammation and regeneration status.
Area of Science:
- Biochemistry
- Cell Biology
- Immunology
Background:
- Extracellular vesicles (EVs) mediate intercellular communication and are implicated in various diseases.
- Duchenne muscular dystrophy (DMD) is a severe genetic muscle-wasting disorder.
- Mdx mice are a standard model for studying DMD.
Purpose of the Study:
- To phenotypically characterize plasma microvesicles (MVs) from mdx mice.
- To assess the pathogenic potential of plasma MVs from mdx mice in vivo.
- To investigate the influence of muscle tissue status on MV pathogenicity.
Main Methods:
- Flow cytometry was used to characterize plasma MVs from mdx mice.
- Plasma MVs from mdx or DBA/2 mice were injected intramuscularly into mdx or DBA/2 mice.
- Muscle damage, inflammation, and regeneration were assessed post-injection.
Main Results:
- Platelets and erythrocytes were identified as primary MV sources in both mdx and DBA/2 mice.
- Unique CD3+ CD4+ MVs were detected exclusively in mdx mice plasma.
- Plasma MVs from mdx mice induced muscle damage in mdx mice but not in DBA/2 mice.
- Plasma MVs from DBA/2 mice did not induce muscle damage in either mouse model.
Conclusions:
- Plasma MVs from mdx mice exhibit pathogenic properties, inducing muscle damage.
- The pathogenicity of mdx MVs is dependent on the recipient's muscle tissue status, specifically active inflammatory or regenerative responses.
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