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Published on: September 29, 2017
Novel Insights and Current Evidence for Mechanisms of Atherosclerosis: Mitochondrial Dynamics as a Potential
Dan Li1, Shengjie Yang1, Yanwei Xing1
1Guang'an Men Hospital, China Academy of Chinese Medical Sciences, Beijing, China.
Insights
Mitochondrial dynamics are crucial in cardiovascular disease (CVD) and atherosclerosis. Dysfunctional mitochondria, indicated by altered dynamics, contribute to inflammation and tissue damage, suggesting new therapeutic targets.
Area of Science:
- Cardiovascular biology
- Mitochondrial biology
- Immunology
Background:
- Cardiovascular disease (CVD), primarily driven by atherosclerosis, is a leading global cause of mortality.
- Mitochondria play vital roles in cellular processes, including energy production, calcium homeostasis, and inflammation.
- Mitochondrial homeostasis is regulated by fusion and fission dynamics, which are disrupted under stress.
Purpose of the Study:
- To explore the role of mitochondrial dynamics in the pathogenesis of atherosclerosis and CVD.
- To investigate the mechanisms linking mitochondrial dysfunction, inflammation, and disease progression.
- To identify mitochondrial dynamics as a potential therapeutic target for atherosclerosis.
Main Methods:
- Review of existing literature on mitochondrial dynamics, atherosclerosis, and CVD.
- Analysis of cellular stress responses affecting mitochondria, including ROS production and membrane potential.
- Examination of signaling pathways involving mitochondrial DNA (mtDNA), TLR9, NF-κB, and NLRP3 inflammasomes.
Main Results:
- Stress conditions disrupt mitochondrial dynamics, leading to increased ROS, imbalanced calcium, and mPTP opening.
- Released mtDNA activates TLR9, triggering NF-κB and NLRP3 inflammasome pathways, promoting inflammation and tissue damage.
- Mitochondrial dysfunction exacerbates NLRP3 activation via ROS, amplifying damage; mtDNA defects cause oxidative stress.
Conclusions:
- Mitochondrial dynamics are closely linked to CVD risk factors like obesity, diabetes, and aging.
- Mitochondrial dysfunction significantly contributes to atherosclerosis development and progression.
- Targeting mitochondrial dynamics offers a promising therapeutic strategy for atherosclerosis and CVD treatment.
Abstract:
Cardiovascular disease (CVD) is the main cause of death worldwide. Atherosclerosis is the underlying pathological basis of CVD. Mitochondrial homeostasis is maintained through the dynamic processes of fusion and fission. Mitochondria are involved in many cellular processes, such as steroid biosynthesis, calcium homeostasis, immune cell activation, redox signaling, apoptosis, and inflammation, among others. Under stress conditions, mitochondrial dynamics, mitochondrial cristae remodeling, and mitochondrial ROS (mitoROS) production increase, mitochondrial membrane potential (MMP) decreases, calcium homeostasis is imbalanced, and mitochondrial permeability transition pore open (mPTP) and release of mitochondrial DNA (mtDNA) are activated. mtDNA recognized by TLR9 can lead to NF-κB pathway activation and pro-inflammatory factor expression. At the same time, TLR9 can also activate NLRP3 inflammasomes and release interleukin, an event that eventually leads to tissue damage and inflammatory responses. In addition, mitochondrial dysfunction may amplify the activation of NLRP3 through the production of mitochondrial ROS, which together aggravate accumulating mitochondrial damage. In addition, mtDNA defects or gene mutation can lead to mitochondrial oxidative stress. Finally, obesity, diabetes, hypertension and aging are risk factors for the progression of CVD, which are closely related to mitochondrial dynamics. Mitochondrial dynamics may represent a new target in the treatment of atherosclerosis. Antioxidants, mitochondrial inhibitors, and various new therapies to correct mitochondrial dysfunction represent a few directions for future research on therapeutic intervention and amelioration of atherosclerosis.
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