Role of c-Src and reactive oxygen species in cardiovascular diseases

Misbah Hussain1, Wajiha Ikram2, Usama Ikram3

  • 1Department of Biotechnology, University of Sargodha, Sargodha, 40120, Pakistan. misbah.hussain@uos.edu.pk.

Insights

Oxidative stress, mediated by c-Src and reactive oxygen species (ROS), contributes to cardiovascular diseases. Targeting c-Src offers potential therapeutic benefits for vascular conditions, excluding cardiac fibrosis.

Area of Science:

  • Cardiovascular Biology
  • Cell Signaling
  • Oxidative Stress Research

Background:

  • Oxidative stress disrupts cellular redox balance, impacting key signaling proteins like tyrosine kinases.
  • c-Src, a non-receptor tyrosine kinase, activates NADPH oxidases (Noxs), leading to reactive oxygen species (ROS) production.
  • ROS accumulation contributes to cardiovascular pathologies including hypertension and atherosclerosis.

Purpose of the Study:

  • To review the intricate relationship between c-Src and ROS in cardiovascular disease pathogenesis.
  • To explore the role of this interaction in mediating downstream signaling pathways.
  • To evaluate c-Src as a potential therapeutic target for cardiovascular diseases.

Main Methods:

  • Literature review focusing on the molecular mechanisms linking c-Src, Noxs, and ROS.
  • Analysis of signaling cascades influenced by c-Src and ROS in vascular cells.
  • Examination of the bidirectional relationship between c-Src and ROS.

Main Results:

  • c-Src activation of Noxs elevates ROS, disturbing vascular homeostasis and promoting cardiovascular diseases.
  • A positive feedback loop exists where ROS can further activate c-Src through cysteine oxidation.
  • c-Src plays a critical role in vascular cell differentiation, migration, proliferation, and cytoskeletal reorganization.

Conclusions:

  • The c-Src/ROS axis is a significant contributor to cardiovascular disease development.
  • c-Src is a promising therapeutic target for various cardiovascular conditions, with the exception of cardiac fibrosis.
  • Understanding this pathway is crucial for developing novel treatment strategies.

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