Cardiac-specific overexpression of metallothionein attenuates L-NAME-induced myocardial contractile anomalies and apoptosis.
Lifang YangJipeng MaYing TanQijun ZhengMaolong DongWei GuoLize XiongJian YangJun RenPublished in: Journal of cellular and molecular medicine (2019)
Hypertension contributes to the high cardiac morbidity and mortality. Although oxidative stress plays an essential role in hypertensive heart diseases, the mechanism remains elusive. Transgenic mice with cardiac overexpression of metallothionein, a heavy metal-binding scavenger, were challenged with NG -nitro-L-arginine methyl ester (L-NAME) for 14 days prior to measurement of myocardial contractile and intracellular Ca2+ anomalies as well as cell signalling mechanisms using Western blot and immunofluorescence analysis. L-NAME challenge elicited hypertension, macrophage infiltration, oxidative stress, inflammation and cardiac dysfunction manifested as increased proinflammatory macrophage marker F4/80, interleukin-1β (IL-1β), intracellular O 2 - production, LV end systolic and diastolic diameters as well as depressed fractional shortening. L-NAME treatment reduced mitochondrial membrane potential (MMP), impaired cardiomyocyte contractile and intracellular Ca2+ properties as evidenced by suppressed peak shortening, maximal velocity of shortening/relengthening, rise in intracellular Ca2+ , along with elevated baseline and peak intracellular Ca2+ . These unfavourable mechanical changes and decreased MMP (except blood pressure and macrophage infiltration) were alleviated by overexpression of metallothionein. Furthermore, the apoptosis markers including BAD, Bax, Caspase 9, Caspase 12 and cleaved Caspase 3 were up-regulated while the anti-apoptotic marker Bcl-2 was decreased by L-NAME treatment. Metallothionein transgene reversed L-NAME-induced changes in Bax, Bcl-2, BAD phosphorylation, Caspase 9, Caspase 12 and cleaved Caspase 3. Our results suggest that metallothionein protects against L-NAME-induced myocardial contractile anomalies in part through inhibition of apoptosis.
Keyphrases
- oxidative stress
- induced apoptosis
- blood pressure
- left ventricular
- diabetic rats
- cell death
- endoplasmic reticulum stress
- cell cycle arrest
- ischemia reperfusion injury
- skeletal muscle
- dna damage
- heart failure
- hypertensive patients
- reactive oxygen species
- heart rate
- transcription factor
- heavy metals
- cell proliferation
- adipose tissue
- protein kinase
- nitric oxide
- smooth muscle
- heat shock
- stem cells
- weight loss
- blood glucose
- atrial fibrillation
- bone marrow
- drug induced
- health risk
- ejection fraction
- combination therapy
- angiotensin ii
- body composition
- single cell