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p53 upregulated by HIF-1 alpha promotes hypoxia-induced G2/M arrest and renal fibrosis in vitro and in vivo

机译:P53通过HIF-1α上调,促进体外和体外缺氧诱导的G2 / M脉冲和肾纤维化

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摘要

Hypoxia plays an important role in the genesis and progression of renal fibrosis. The underlying mechanisms, however, have not been sufficiently elucidated. We examined the role of p53 in hypoxia-induced renal fibrosis in cell culture (human and rat renal tubular epithelial cells) and a mouse unilateral ureteral obstruction (UUO) model. Cell cycle of tubular cells was determined by flow cytometry, and the expression of profibrogenic factors was determined by RT-PCR, immunohistochemistry, and western blotting. Chromatin immunoprecipitation and luciferase reporter experiments were performed to explore the effect of HIF-1 alpha on p53 expression. We showed that, in hypoxic tubular cells, p53 upregulation suppressed the expression of CDK1 and cyclins B1 and D1, leading to cell cycle (G2/M) arrest (or delay) and higher expression of TGF-beta, CTGF, collagens, and fibronectin. p53 suppression by siRNA or by a specific p53 inhibitor (PIF-alpha) triggered opposite effects preventing the G2/M arrest and profibrotic changes. In vivo experiments in the UUO model revealed similar antifibrotic results following intraperitoneal administration of PIF-alpha (2.2 mg/kg). Using gain-of-function, loss-of-function, and luciferase assays, we further identified an HRE3 region on the p53 promoter as the HIF-1 alpha-binding site. The HIF-1 alpha-HRE3 binding resulted in a sharp transcriptional activation of p53. Collectively, we show the presence of a hypoxia-activated, p53-responsive profibrogenic pathway in the kidney. During hypoxia, p53 upregulation induced by HIF-1 alpha suppresses cell cycle progression, leading to the accumulation of G2/M cells, and activates profibrotic TGF-beta and CTGF-mediated signaling pathways, causing extracellular matrix production and renal fibrosis.
机译:缺氧在肾纤维化的成因和进展中发挥着重要作用。然而,潜在的机制尚未充分阐明。我们研究了P53在细胞培养(人和大鼠肾小管上皮细胞)中缺氧诱导的肾纤维化的作用和小鼠单侧输尿管阻塞(UUO)模型。通过流式细胞术测定管状细胞的细胞周期,通过RT-PCR,免疫组化和Western印迹测定抗纤维发生因子的表达。进行染色质免疫沉淀和荧光素酶报告者实验以探讨HIF-1α对P53表达的影响。我们表明,在缺氧管状细胞中,P53上调抑制了CDK1和细胞周期蛋白B1和D1的表达,导致细胞周期(G2 / M)被捕获(或延迟)和TGF-β,CTGF,胶原和纤连蛋白的表达更高。通过siRNA或特异性P53抑制剂(PIF-α)抑制p53触发相反的效果,防止了G2 / M抑制和探测变化。在UUO模型中的体内实验揭示了PIF-α(2.2mg / kg)腹膜内施用后的类似抗纤维化效果。使用功能性,功能性丧失和荧光素酶测定,我们进一步鉴定了P53启动子的HRE3区域,作为HIF-1α结合位点。 HIF-1α-HRE3结合导致P53的尖锐转录激活。共同,我们显示出存在缺氧激活的p53响应性促进肺炎的存在。在缺氧期间,HIF-1α诱导的P53上调抑制细胞周期进展,导致G2 / M细胞的积累,并激活血压性TGF-β和CTGF介导的信号通路,导致细胞外基质产生和肾纤维化。

著录项

  • 来源
    《Journal of molecular cell biology》 |2019年第5期|共12页
  • 作者单位

    Fourth Mil Med Univ Xijing Hosp Dept Nephrol Xian 710032 Shaanxi Peoples R China;

    Fourth Mil Med Univ Xijing Hosp Dept Nephrol Xian 710032 Shaanxi Peoples R China;

    Fourth Mil Med Univ Xijing Hosp Dept Nephrol Xian 710032 Shaanxi Peoples R China;

    Fourth Mil Med Univ Xijing Hosp Dept Nephrol Xian 710032 Shaanxi Peoples R China;

    Fourth Mil Med Univ Xijing Hosp Dept Nephrol Xian 710032 Shaanxi Peoples R China;

    Fourth Mil Med Univ Xijing Hosp Dept Nephrol Xian 710032 Shaanxi Peoples R China;

    Fourth Mil Med Univ Xijing Hosp Dept Nephrol Xian 710032 Shaanxi Peoples R China;

    Fourth Mil Med Univ Xijing Hosp Dept Nephrol Xian 710032 Shaanxi Peoples R China;

    Fourth Mil Med Univ Xijing Hosp Dept Nephrol Xian 710032 Shaanxi Peoples R China;

    Fourth Mil Med Univ Xijing Hosp Dept Nephrol Xian 710032 Shaanxi Peoples R China;

    Navy Gen Hosp Dept Radiat Oncol Beijing 100048 Peoples R China;

    Mayo Clin Coll Med Dept Med Rochester MN 55905 USA;

    Fourth Mil Med Univ Xijing Hosp Dept Nephrol Xian 710032 Shaanxi Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 R393;
  • 关键词

    renal tubulointerstitial fibrosis; hypoxia; cell cycle (G2/M) arrest; p53; HIF-1 alpha; TGF-beta;

    机译:肾小管间隔纤维化;缺氧;细胞周期(G2 / m)捕获;P53;HIF-1α;TGF-BETA;

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