Inhibition of oxidative stress by testosterone improves synaptic plasticity in senescence accelerated mice
JOURNAL OF TOXICOLOGY AND ENVIRONMENTAL HEALTH-PART A-CURRENT ISSUES
Authors: Wang, Lu; Pei, Juan-Hui; Jia, Jian-Xin; Wang, Jing; Song, Wei; Fang, Xin; Cai, Zhi-Ping; Huo, Dong-Sheng; Wang, He; Yang, Zhan-Jun
Abstract
It is well known that synaptic plasticity is associated with cognitive performance in Alzheimer's disease (AD). Testosterone (T) is known to exert protective effects on cognitive deficits in AD, but the underlying mechanisms of androgenic action on synaptic plasticity remain unclear. Thus, the aim of this study was to examine the protective mechanism attributed to T on synaptic plasticity in an AD senescence accelerated mouse prone 8 (SAMP8) model. The following parameters were measured: (1) number of intact pyramidal cells in hippocampal CA1 region (2) phosphorylated N-methyl-D-aspartate receptor-1 (p-NMDAR1) and (3) phosphorylated calmodulin-dependent protein kinase II (p-CaMKII). In addition, the content of whole brain malondialdehyde (MDA) as well as activities of superoxide dismutase (SOD) and glutathione peroxidase (GSH-Px) were determined. Treatment with T significantly elevated the number of intact pyramidal cells in hippocampal CA1 region and markedly increased hippocampal protein and mRNA expression levels of p-NMDAR1 and p-CaMK II. Further, T significantly decreased whole brain MDA levels accompanied by elevated activities of SOD and GSH-Px. Data suggest that the protective effects of T on synaptic plasticity in a mouse AD model may be associated with reduction of oxidant stress.
The CaMKII phosphorylation site Thr1604 in the Ca(V)1.2 channel is involved in pathological myocardial hypertrophy in rats
CHANNELS
Authors: Li, Jingyuan; Wang, Siqi; Zhang, Jie; Liu, Yan; Zheng, Xi; Ding, Fan; Sun, Xuefei; Zhao, Meimi; Hao, Liying
Abstract
Residue Thr1604 in the Ca(V)1.2 channel is a Ca2+/calmodulin dependent protein kinase II (CaMKII) phosphorylation site, and its phosphorylation status maintains the basic activity of the channel. However, the role of Ca(V)1.2 phosphorylation at Thr1604 in myocardial hypertrophy is incompletely understood. Isoproterenol (ISO) was used to induce cardiomyocyte hypertrophy, and autocamtide-2-related inhibitory peptide (AIP) was added as a treatment. Rats in a myocardial hypertrophy development model were subcutaneously injected with ISO for two or three weeks. The heart and left ventricle weights, each of which were normalized to the body weight and cross-sectional area of the myocardial cells, were used to describe the degree of hypertrophy. Protein expression levels were detected by western blotting. CaMKII-induced Ca(V)1.2 (Thr1604) phosphorylation (p-Ca(V)1.2) was assayed by coimmunoprecipitation. The results showed that CaMKII, HDAC, MEF2 C, and atrial natriuretic peptide (ANP) expression was increased in the ISO group and downregulated by AIP treatment in vitro. There was no difference in the expression of these proteins between the ISO 2-week group and the ISO 3-week group in vivo. Ca(V)1.2 channel expression did not change, but p-Ca(V)1.2 expression was increased after ISO stimulation and decreased by AIP. In the rat model, p-Ca(V)1.2 levels and CaMKII activity were much higher in the ISO 3-week group than in the ISO 2-week group. CaMKII-induced Ca(V)1.2 channel phosphorylation at residue Thr1604 may be one of the key features of myocardial hypertrophy and disease development.