nitrophenols and 4-phenylbutyric-acid

nitrophenols has been researched along with 4-phenylbutyric-acid* in 1 studies

Other Studies

1 other study(ies) available for nitrophenols and 4-phenylbutyric-acid

ArticleYear
Involvement of Senescence and Mitochondrial Fission in Endothelial Cell Pro-Inflammatory Phenotype Induced by Angiotensin II.
    International journal of molecular sciences, 2020, Apr-28, Volume: 21, Issue:9

    Angiotensin II (AngII) has a crucial role in cardiovascular pathologies, including endothelial inflammation and premature vascular aging. However, the precise molecular mechanism underlying aging-related endothelial inflammation induced by AngII remains elusive. Here, we have tested a hypothesis in cultured rat aortic endothelial cells (ECs) that the removal of AngII-induced senescent cells, preservation of proteostasis, or inhibition of mitochondrial fission attenuates the pro-inflammatory EC phenotype. AngII stimulation in ECs resulted in cellular senescence assessed by senescence-associated β galactosidase activity. The number of β galactosidase-positive ECs induced by AngII was attenuated by treatment with a senolytic drug ABT737 or the chemical chaperone 4-phenylbutyrate. Monocyte adhesion assay revealed that the pro-inflammatory phenotype in ECs induced by AngII was alleviated by these treatments. AngII stimulation also increased mitochondrial fission in ECs, which was mitigated by mitochondrial division inhibitor-1. Pretreatment with mitochondrial division inhibitor-1 attenuated AngII-induced senescence and monocyte adhesion in ECs. These findings suggest that mitochondrial fission and endoplasmic reticulum stress have causative roles in endothelial senescence-associated inflammatory phenotype induced by AngII exposure, thus providing potential therapeutic targets in age-related cardiovascular diseases.

    Topics: Angiotensin II; Animals; Biphenyl Compounds; Cell Adhesion; Cells, Cultured; Cellular Senescence; Endoplasmic Reticulum Stress; Endothelial Cells; Humans; Mitochondria; Mitochondrial Dynamics; Monocytes; Nitrophenols; Phenotype; Phenylbutyrates; Piperazines; Proteostasis; Rats; Sulfonamides; THP-1 Cells

2020