机构:[1]Univ Calif Los Angeles, David Geffen Sch Med, Div Mol Med & Cardiol, Dept Anesthesiol & Med,Cardiovasc Res Labs, 650 Charles E Young Dr, Los Angeles, CA 90095 USA;[2]Capital Med Univ, Beijing Anzhen Hosp, Beijing Collaborat Innovat Ctr Cardiovasc Dis, Beijing Inst Heart Lung & Blood Vessel Dis,Key La, Beijing 100029, Peoples R China临床科室心脏内科中心首都医科大学附属安贞医院
Oxidative stress plays an important role in the formation of abdominal aortic aneurysm (AAA), and we have recently established a causal role of uncoupled eNOS in this severe human disease. We have also shown that activation of NADPH oxidase (NOX) lies upstream of uncoupled eNOS. Therefore, identification of the specific NOX isoforms that are required for eNOS uncoupling and AAA formation would ultimately lead to novel therapies for AAA. In the present study, we used the Ang II infused hph-1 mice to examine the roles of NOX isoforms in the development of AAA. We generated double mutants of hph-1-NOX1, hph-1-NOX2, hph-1p47phox, and hph-1-NOX4. After two weeks of Ang II infusion, the incidence rate of AAA substantially dropped from 76.5% in Ang II infused hph-1 mice (n= 34) to 11.1%, 15.0%, 9.5% and 0% in hph-1-NOX1 (n= 27), hph-1NOX2 (n= 40), hph-1-p47phox (n= 21), and hph-1-NOX4 (n= 33) double mutant mice, respectively. The size of abdominal aortas of the four double mutant mice, determined by ultrasound analyses, was significantly smaller than the hph-1 mice. Aortic nitric oxide and H4B bioavailabilities were markedly improved in the double mutants, while superoxide production and eNOS uncoupling activity were substantially diminished. These effects seemed attributed to an endothelial specific restoration of dihydrofolate reductase expression and activity, deficiency of which has been shown to induce eNOS uncoupling and AAA formation in both Ang IIinfused hph-1 and apoE null animals. In addition, over-expression of human NOX4 N129S or T555S mutant newly identified in aneurysm patients increased hydrogen peroxide production, further implicating a relationship between NOX and human aneurysm. Taken together, these data indicate that NOX isoforms 1, 2 or 4 lies upstream of dihydrofolate reductase deficiency and eNOS uncoupling to induce AAA formation. These findings may promote development of novel therapeutics for the treatment of the disease by inhibiting NOX signaling.
基金:
National Institute of Health National Heart, Lung and Blood Institute (NHLBI)United States Department of Health & Human ServicesNational Institutes of Health (NIH) - USANIH National Heart Lung & Blood Institute (NHLBI) [HL088975, HL108701, HL119968]; American Heart Association Established Investigator Award (EIA) [12EIA8990025]; AHA Postdoctoral Fellowship Award [14POST20380966, HL077440]
第一作者机构:[1]Univ Calif Los Angeles, David Geffen Sch Med, Div Mol Med & Cardiol, Dept Anesthesiol & Med,Cardiovasc Res Labs, 650 Charles E Young Dr, Los Angeles, CA 90095 USA;
通讯作者:
通讯机构:[1]Univ Calif Los Angeles, David Geffen Sch Med, Div Mol Med & Cardiol, Dept Anesthesiol & Med,Cardiovasc Res Labs, 650 Charles E Young Dr, Los Angeles, CA 90095 USA;
推荐引用方式(GB/T 7714):
Siu Kin Lung,Li Qiang,Zhang Yixuan,et al.NOX isoforms in the development of abdominal aortic aneurysm[J].REDOX BIOLOGY.2017,11:118-125.doi:10.1016/j.redox.2016.11.002.
APA:
Siu, Kin Lung,Li, Qiang,Zhang, Yixuan,Guo, Jun,Youn, Ji Youn...&Cai, Hua.(2017).NOX isoforms in the development of abdominal aortic aneurysm.REDOX BIOLOGY,11,
MLA:
Siu, Kin Lung,et al."NOX isoforms in the development of abdominal aortic aneurysm".REDOX BIOLOGY 11.(2017):118-125