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.

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.

Related Concept Videos

Satellite Stem Cells and Muscular Dystrophy01:21

Satellite Stem Cells and Muscular Dystrophy

Satellite stem cells or myosatellite cells are quiescent stem cells that Alexander Mauro first identified in 1961. These cells are located between the sarcolemma, the plasma membrane of muscle fibers, and the basal lamina, the connective tissue sheath covering it. These mononucleated cells are activated in response to muscle injury, can transform into myoblasts, and may form or repair muscle fibers. Myosatellite cells can provide additional myonuclei for muscle regeneration or return to a...
1.9K
Enlargement of the Plasma Membrane01:22

Enlargement of the Plasma Membrane

Cell division and enlargement are processes that require precise control. The control ensures that cell division cannot proceed unless the cell has grown to a specific size. A spherical, dividing cell requires an approximately 1.6X increase in its surface area to double its volume. The secretory pathway also has a significant role in cell membrane enlargement. Secretory vesicles that bud off from the Golgi apparatus and later fuse with the plasma membrane during exocytosis are a major source of...
1.9K
Overview of Exosomes01:36

Overview of Exosomes

Exosomes are stable, lipid bilayer-enclosed vesicles capable of crossing biological barriers. They can carry a wide range of molecules required for intercellular communication. Once exosomes are released from the cell where they originated, they enter a recipient cell through various pathways such as fusion, receptor-mediated endocytosis, macropinocytosis, and phagocytosis.
Stahl et al. discovered exosomes in 1983, but the exosomes were initially considered waste products released from the...
2.7K
Clot Retraction and Fibrinolysis01:16

Clot Retraction and Fibrinolysis

After a fibrin clot is formed, the next step is clot retraction, a vital process facilitated by platelet contractile proteins, such as actin and myosin. These proteins pull the fibrin strands closer together and condense the clot. This action reduces the size of the clot, creating a smaller, denser structure that effectively seals off the damaged vessel. Clot retraction consolidates the clot and helps with wound healing by bringing the edges of the damaged blood vessel closer together.
2.8K
Formation of the Platelet Plug01:22

Formation of the Platelet Plug

The platelet phase, the second stage of hemostasis, commences around 15-20 seconds after an injury. It follows and overlaps with the vascular phase, during which blood vessels constrict to minimize blood loss.
As the injured blood vessel contracts, endothelial cells undergo contraction, revealing collagen fibers in the basement membrane and underlying connective tissue. Furthermore, the plasma membrane of endothelial cells becomes adhesive, preparing the site for platelet adhesion. Platelets...
3.1K
Blood Studies for Cardiovascular System I: Cardiac Biomarkers01:20

Blood Studies for Cardiovascular System I: Cardiac Biomarkers

Cardiac biomarkers are enzymes, proteins, and hormones released into the blood when cardiac cells are injured. They are powerful tools for triaging.
The essential diagnostic tools for detecting myocardial necrosis and monitoring individuals suspected of having acute coronary syndrome (ACS) include:
Troponins
Troponins, particularly cardiac troponins I and T, are the most precise and sensitive markers of myocardial injury. They are detectable within 4-6 hours of myocardial injury and remain...
69