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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.
Abstract:
Oxidative stress, caused by the over production of oxidants or inactivity of antioxidants, can modulate the redox state of several target proteins such as tyrosine kinases, mitogen-activated protein kinases and tyrosine phosphatases. c-Src is one such non-receptor tyrosine kinase which activates NADPH oxidases (Noxs) in response to various growth factors and shear stress. Interaction between c-Src and Noxs is influenced by cell type and primary messengers such as angiotensin II, which binds to G-protein coupled receptor and activates the intracellular signaling cascade. c-Src stimulated activation of Noxs results in elevated release of intracellular and extracellular reactive oxygen species (ROS). These ROS species disturb vascular homeostasis and cause cardiac hypertrophy, coronary artery disease, atherosclerosis and hypertension. Interaction between c-Src and ROS in the pathobiology of cardiac fibrosis is hypothesized to be influenced by cell type and stimuli. c-Src and ROS have a bidirectional relationship, thus increased ROS levels due to c-Src mediated activation of Noxs can further activate c-Src by promoting the oxidation and sulfenylation of critical cysteine residues. This review highlights the role of c-Src and ROS in mediating downstream signaling pathways underlying cardiovascular diseases. Furthermore, due to the central role of c-Src in activation of various signaling proteins involved in differentiation, migration, proliferation, and cytoskeletal reorganization of vascular cells, it is presented as therapeutic target for treating cardiovascular diseases except cardiac fibrosis.
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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