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Published on: November 10, 2023
Cardiac diastolic dysfunction by cigarette smoking is associated with mitochondrial integrity in the heart
Lily Slotabec1,2, Hao Wang1, Blaise Seale1
1Department of Physiology and Biophysics, Mississippi Center for Heart Research, University of Mississippi Medical Center, Jackson, Mississippi, USA.
Insights
Chronic cigarette smoking impairs heart diastolic function and mitochondrial integrity by reducing SIRT1 levels. This study reveals a key mechanism linking smoking to cardiovascular disease, highlighting the need for smoking cessation interventions.
Area of Science:
- Cardiovascular Science
- Mitochondrial Biology
- Molecular Cardiology
Background:
- Cigarette smoking is a leading cause of cardiovascular disease and heart failure.
- Sirtuin 1 (SIRT1) is a metabolic regulator crucial for cardiovascular and mitochondrial function under stress.
- Understanding the mechanisms linking smoking to heart dysfunction is vital.
Purpose of the Study:
- To investigate the hypothesis that chronic cigarette smoking leads to cardiovascular dysfunction via reduced SIRT1 levels.
- To examine the effects of long-term cigarette smoke exposure on cardiac function, mitochondrial integrity, and SIRT1 levels in mice.
- To compare findings in mice with human chronic smokers.
Main Methods:
- Mice were exposed to cigarette smoke for 16 weeks.
- Cardiac diastolic and electrical function were assessed using echocardiography and electrocardiography.
- Mitochondrial function was evaluated using a mitochondrial stress test.
- SIRT1 levels and cardiac fibrosis were measured in mouse and human heart samples.
Main Results:
- Cigarette smoke exposure impaired cardiac diastolic function (increased E/e') and electrical function (increased PR, decreased QTc intervals).
- Mitochondrial function was significantly compromised in smokers.
- SIRT1 levels were significantly decreased in the left ventricles of both smoking mice and human smokers.
- Diastolic dysfunction in mice was not associated with increased fibrosis, but human smokers showed increased fibrosis.
Conclusions:
- Decreased SIRT1 levels are associated with cigarette smoking-induced cardiovascular dysfunction.
- Compromised mitochondrial integrity plays a critical role in the development of heart failure in smokers.
- These findings elucidate a key molecular mechanism linking smoking to heart disease.
Abstract:
Cigarette smoking behaviors are harmful and cause one out of ten deaths due to cardiovascular disease. As population sizes grow and number of cigarette smokers increases, it is vital that we understand the mechanisms leading to heart failure in cigarette smokers. We have reported that metabolic regulation of a histone deacetylase, SIRT1, modulates cardiovascular and mitochondrial function under stress. Given this conclusion, we hypothesized that chronic cigarette smoking led to cardiovascular dysfunction via a reduction SIRT1. Mice were randomly organized into smoking or nonsmoking groups, and the smoking group received cigarette smoke exposure for 16 weeks. Following 16-week exposure, diastolic function of the heart was impaired in the smoking group as compared to sham, indicated by a significant increase in E/e'. The electrical function of the heart was also impaired in the smoking group compared to the sham group, indicated by increased PR interval and decreased QTc interval. This diastolic dysfunction was not accompanied by increased fibrosis in mouse hearts, although samples from human chronic smokers indicated increased fibrosis compared to their nonsmoker counterparts. As well as diastolic dysfunction, mitochondria from the 16-week smoking group showed significantly impaired function, evidenced by significant decreases in all parameters measured by the mitochondrial stress test. We further found biochemical evidence of a significantly decreased level of SIRT1 in left ventricles of both mouse and human smoking groups compared to nonsmoking counterparts. Data from this study indicate that decreased SIRT1 levels by cigarette smoking are associated with diastolic dysfunction caused by compromised mitochondrial integrity.
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