醛脱氢酶2通过抑制CYP4A表达减轻肾损伤。

Hao Chen, Qianchao Hu, Zhongshan Lu, Jie Zhao, Anxiong Liu, Zhongzhong Liu, Jun Luo, Qifa Ye, Zibiao Zhong
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摘要

肾缺血再灌注损伤(IRI)是一种常见的临床综合征,但其潜在的发病机制在很大程度上仍不清楚。醛脱氢酶2 (ALDH2)是一种负责脂质醛解毒的酶,已被认为对IRI起保护作用。在我们的研究中,我们观察到Aldh2敲除的C57BL/6小鼠在IRI后出现了更严重的肾功能损害。其特征是肌酐和血尿素氮水平升高,以及细胞凋亡增加。蛋白质组学分析进一步显示,ALDH2缺乏显著破坏脂质代谢,导致促炎蛋白CYP4A及其代谢副产物20-HETE水平升高。这种代谢紊乱加剧了肾脏炎症并引发内质网应激。然而,我们发现给药CYP4A抑制剂HET0016可以改善这些影响。在机制上,我们发现IRI后,ALDH2易位到细胞核并与核受体辅抑制因子1 (NCOR1)相互作用以抑制Cyp4a的转录。ALDH2特异性地与NCOR1的n端结构域相互作用,NCOR1负责与E3连接酶SIAH2相互作用。这种相互作用抑制了NCOR1的蛋白酶体降解,最终稳定了NCOR1转录抑制复合物。综上所述,我们的研究揭示了ALDH2通过抑制Cyp4a转录抑制20-HETE合成来减轻肾IRI的作用。
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Aldehyde dehydrogenase 2 attenuates renal injury through inhibiting CYP4A expression.

Renal ischemia-reperfusion injury (IRI) is a prevalent clinical syndrome, yet its underlying pathogenesis remains largely unknown. Aldehyde dehydrogenase 2 (ALDH2), an enzyme responsible for detoxifying lipid aldehydes, has been suggested to play a protective role against IRI. In our study, we observed that Aldh2 knock-out C57BL/6 mice experienced more severe renal functional impairment following IRI. This was characterized by elevated levels of creatinine and blood urea nitrogen, as well as increased apoptosis. Proteomic analysis further revealed that ALDH2 deficiency significantly disrupted lipid metabolism, resulting in higher levels of the proinflammatory protein CYP4A and its metabolic byproduct, 20-HETE. This metabolic disruption exacerbated renal inflammation and triggered endoplasmic reticulum stress. However, we found that administration of the CYP4A inhibitor, HET0016, could ameliorate these effects. Mechanistically, we discovered that after IRI, ALDH2 translocates to the nucleus and interacts with nuclear receptor corepressor 1 (NCOR1) to repress Cyp4a transcription. ALDH2 specifically interacts with the N-terminal domain of NCOR1, which is responsible for its interaction with its E3 ligase SIAH2. This interaction inhibits the proteasome degradation of NCOR1, ultimately stabilizing the NCOR1 transcriptional repression complex. In summary, our research uncovers the role of ALDH2 in mitigating renal IRI by inhibiting 20-HETE synthesis through the transcriptional repression of Cyp4a.

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