Aging increases vulnerability to stress-induced depression via upregulation of NADPH oxidase in mice
COMMUNICATIONS BIOLOGY
Authors: Lee, Jung-Eun; Kwon, Hye-Jin; Choi, Juli; Seo, Ji-Seon; Han, Pyung-Lim
Abstract
Brain aging proceeds with cellular and molecular changes in the limbic system. Aging-dependent changes might affect emotion and stress coping, yet the underlying mechanisms remain unclear. Here, we show aged (18-month-old) mice exhibit upregulation of NADPH oxidase and oxidative stress in the hippocampus, which mirrors the changes in young (2-month-old) mice subjected to chronic stress. Aged mice that lack p47phox, a key subunit of NADPH oxidase, do not show increased oxidative stress. Aged mice exhibit depression-like behavior following weak stress that does not produce depressive behavior in young mice. Aged mice have reduced expression of the epigenetic factor SUV39H1 and its upstream regulator p-AMPK, and increased expression of Ppp2ca in the hippocampus-changes that occur in young mice exposed to chronic stress. SUV39H1 mediates stress- and aging-induced sustained upregulation of p47phox and oxidative stress. These results suggest that aging increases susceptibility to stress by upregulating NADPH oxidase in the hippocampus. Jung-Eun Lee et al. show that aged mice have increased oxidative stress and NADPH activity in the hippocampus which is associated with increased susceptibility to stress. Upregulation of NADPH oxidase, due to sustained p47phox expression, was caused by a decrease in SUV39H1 levels, highlighting an important mechanism regulating aging-induced stress susceptibility.
PP2A negatively regulates the hypertrophic response by dephosphorylating HDAC2 S394 in the heart
EXPERIMENTAL AND MOLECULAR MEDICINE
Authors: Yoon, Somy; Kook, Taewon; Min, Hyun-Ki; Kwon, Duk-Hwa; Cho, Young Kuk; Kim, Mira; Shin, Sera; Joung, Hosouk; Jeong, Seung Hoon; Lee, Sumin; Kang, Gaeun; Park, Yunchul; Kim, Yong Sook; Ahn, Youngkeun; McMullen, Julie R.; Gergs, Ulrich; Neumann, Joachim; Kim, Kyung Keun; Kim, Jungchul; Nam, Kwang-Il; Kim, Young-Kook; Kook, Hyun; Eom, Gwang Hyeon
Abstract
Cardiac hypertrophy occurs in response to increased hemodynamic demand and can progress to heart failure. Identifying the key regulators of this process is clinically important. Though it is thought that the phosphorylation of histone deacetylase (HDAC) 2 plays a crucial role in the development of pathological cardiac hypertrophy, the detailed mechanism by which this occurs remains unclear. Here, we performed immunoprecipitation and peptide pull-down assays to characterize the functional complex of HDAC2. Protein phosphatase (PP) 2 A was confirmed as a binding partner of HDAC2. PPP2CA, the catalytic subunit of PP2A, bound to HDAC2 and prevented its phosphorylation. Transient overexpression of PPP2CA specifically regulated both the phosphorylation of HDAC2 S394 and hypertrophyassociated HDAC2 activation. HDAC2 S394 phosphorylation was increased in a dose-dependent manner by PP2A inhibitors. Hypertrophic stresses, such as phenylephrine in vitro or pressure overload in vivo, caused PPP2CA to dissociate from HDAC2. Forced expression of PPP2CA negatively regulated the hypertrophic response, but PP2A inhibitors provoked hypertrophy. Adenoviral delivery of a phosphomimic HDAC2 mutant, adenovirus HDAC2 S394E, successfully blocked the anti-hypertrophic effect of adenovirus-PPP2CA, implicating HDAC2 S394 phosphorylation as a critical event for the anti-hypertrophic response. PPP2CA transgenic mice were protected against isoproterenolinduced cardiac hypertrophy and subsequent cardiac fibrosis, whereas simultaneous expression of HDAC2 S394E in the heart did induce hypertrophy. Taken together, our results suggest that PP2A is a critical regulator of HDAC2 activity and pathological cardiac hypertrophy and is a promising target for future therapeutic interventions.