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Published on: September 18, 2017
Mitochondria and Calcium Homeostasis: Cisd2 as a Big Player in Cardiac Ageing
Chi-Hsiao Yeh1,2,3, Yi-Ju Chou4, Cheng-Heng Kao5
1Department of Thoracic and Cardiovascular Surgery, Chang Gung Memorial Hospital, Linko 333, Taiwan.
Insights
As people age, heart function declines. This review highlights how mitochondrial dysfunction drives cardiac aging and identifies Cisd2 as a key gene to promote healthy aging and delay heart disease.
Area of Science:
- Cardiology
- Gerontology
- Molecular Biology
Background:
- Global population aging increases cardiac disease burden and healthcare costs.
- Molecular mechanisms of cardiac aging and age-related dysfunction remain incompletely understood.
- Cardiac disease is a leading cause of mortality in aging populations.
Purpose of the Study:
- To review current literature on molecular mechanisms driving cardiac aging.
- To discuss the role of mitochondria-related dysfunction in cardiac aging.
- To highlight Cisd2 as a potential therapeutic target for promoting healthy cardiac aging.
Main Methods:
- Literature review of recent publications on cardiac aging.
- Analysis of molecular pathways involved in age-related cardiac dysfunction.
- Discussion of the role of Cisd2 in regulating cardiac aging and metabolism.
Main Results:
- Cardiac aging is characterized by mitochondrial dysfunction, including disrupted mitochondria-associated membranes (MAM), dysregulated energy metabolism, impaired calcium handling, and altered mitochondria-lysosomal crosstalk.
- The expression of the pro-longevity gene Cisd2 decreases during cardiac aging.
- Elevated Cisd2 levels delay cardiac aging and improve age-related cardiac dysfunction by regulating energy metabolism and metabolic flexibility.
Conclusions:
- Mitochondrial dysfunction is a key driver of cardiac aging.
- Cisd2 plays a crucial role in maintaining cardiac health during aging.
- Cisd2 represents a promising therapeutic target for interventions aimed at promoting healthy cardiac aging and mitigating age-related cardiac diseases.
Abstract:
The ageing of human populations has become a problem throughout the world. In this context, increasing the healthy lifespan of individuals has become an important target for medical research and governments. Cardiac disease remains the leading cause of morbidity and mortality in ageing populations and results in significant increases in healthcare costs. Although clinical and basic research have revealed many novel insights into the pathways that drive heart failure, the molecular mechanisms underlying cardiac ageing and age-related cardiac dysfunction are still not fully understood. In this review we summarize the most updated publications and discuss the central components that drive cardiac ageing. The following characters of mitochondria-related dysfunction have been identified during cardiac ageing: (a) disruption of the integrity of mitochondria-associated membrane (MAM) contact sites; (b) dysregulation of energy metabolism and dynamic flexibility; (c) dyshomeostasis of Ca2+ control; (d) disturbance to mitochondria-lysosomal crosstalk. Furthermore, Cisd2, a pro-longevity gene, is known to be mainly located in the endoplasmic reticulum (ER), mitochondria, and MAM. The expression level of Cisd2 decreases during cardiac ageing. Remarkably, a high level of Cisd2 delays cardiac ageing and ameliorates age-related cardiac dysfunction; this occurs by maintaining correct regulation of energy metabolism and allowing dynamic control of metabolic flexibility. Together, our previous studies and new evidence provided here highlight Cisd2 as a novel target for developing therapies to promote healthy ageing.
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