Effects of Apelin on Left Ventricular-Arterial Coupling and Mechanical Efficiency in Rats with Ischemic Heart Failure.
Qiu-Fang OuyangTao YouJinjian GuoRong XuQuehui GuoJiqin LinHongjia ZhaoPublished in: Disease markers (2019)
Apelin plays important roles in cardiovascular homeostasis. However, its effects on the mechanoenergetics of heart failure (HF) are unavailable. We attempted to investigate the effects of apelin on the left ventricular-arterial coupling (VAC) and mechanical efficiency in rats with HF. HF was induced in rats by the ligation of the left coronary artery. The ischemic HF rats were treated with apelin or saline for 12 weeks. The sham-operated animals served as the control. The left ventricular (LV) afterload and the systolic and diastolic functions, as well as the mechanoenergetic indices were estimated from the pressure-volume loops. Myocardial fibrosis by Masson's trichrome staining, myocardial apoptosis by TUNEL, and collagen content in the aorta as well as media area in the aorta and the mesenteric arteries were determined. Our data indicated that HF rats manifested an increased arterial load (Ea), a declined systolic function (reduced ejection fraction, +dP/dtmax, end-systolic elastance, and stroke work), an abnormal diastolic function (elevated end-diastolic pressure, τ, and declined -dP/dtmax), and decreased mechanical efficiency. Apelin treatment improved those indices. Concomitantly, increased fibrosis in the LV myocardium and the aorta and enhanced apoptosis in the LV were partially restored by apelin treatment. A declined wall-to-lumen ratio in the mesenteric arteries of the untreated HF rats was further reduced in the apelin-treated group. We concluded that the rats with ischemic HF were characterized by deteriorated LV mechanoenergetics. Apelin improved mechanical efficiency, at least in part, due to the inhibiting cardiac fibrosis and apoptosis in the LV myocardium, reducing collagen deposition in the aorta and dilating the resistant artery.
Keyphrases
- left ventricular
- heart failure
- cardiac resynchronization therapy
- hypertrophic cardiomyopathy
- acute heart failure
- acute myocardial infarction
- mitral valve
- aortic stenosis
- left atrial
- coronary artery
- pulmonary artery
- oxidative stress
- blood pressure
- aortic valve
- cell death
- endoplasmic reticulum stress
- ischemia reperfusion injury
- acute coronary syndrome
- pulmonary arterial hypertension
- transcatheter aortic valve replacement
- machine learning
- blood brain barrier
- deep learning
- cerebral ischemia
- subarachnoid hemorrhage
- smoking cessation