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本文引用的文献

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Epithelial innate immunity mediates tubular cell senescence after kidney injury.上皮细胞固有免疫介导肾损伤后肾小管细胞衰老。
JCI Insight. 2019 Jan 24;4(2):e125490. doi: 10.1172/jci.insight.125490.
2
Ectopic Phosphorylated Creb Marks Dedifferentiated Proximal Tubules in Cystic Kidney Disease.异位磷酸化的Creb标记多囊肾病中去分化的近端小管。
Am J Pathol. 2018 Jan;188(1):84-94. doi: 10.1016/j.ajpath.2017.09.015. Epub 2017 Oct 26.
3
Renal cystic disease and associated ciliopathies.肾囊性疾病及相关纤毛病
Curr Opin Obstet Gynecol. 2017 Apr;29(2):85-94. doi: 10.1097/GCO.0000000000000348.
4
SLIT2/ROBO2 signaling pathway inhibits nonmuscle myosin IIA activity and destabilizes kidney podocyte adhesion.SLIT2/ROBO2 信号通路抑制非肌肉肌球蛋白 IIA 的活性并破坏肾脏足细胞的黏附。
JCI Insight. 2016 Nov 17;1(19):e86934. doi: 10.1172/jci.insight.86934.
5
ZO-1 interactions with F-actin and occludin direct epithelial polarization and single lumen specification in 3D culture.紧密连接蛋白1(ZO-1)与丝状肌动蛋白(F-actin)和闭合蛋白(occludin)的相互作用引导上皮细胞在三维培养中的极化和单腔形成。
J Cell Sci. 2017 Jan 1;130(1):243-259. doi: 10.1242/jcs.188185. Epub 2016 Oct 21.
6
Does Renal Repair Recapitulate Kidney Development?肾脏修复会重现肾脏发育过程吗?
J Am Soc Nephrol. 2017 Jan;28(1):34-46. doi: 10.1681/ASN.2016070748. Epub 2016 Oct 26.
7
Sox9-Positive Progenitor Cells Play a Key Role in Renal Tubule Epithelial Regeneration in Mice.Sox9阳性祖细胞在小鼠肾小管上皮再生中起关键作用。
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Mouse Crumbs3 sustains epithelial tissue morphogenesis in vivo.小鼠Crumbs3在体内维持上皮组织形态发生。
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Nephron organoids derived from human pluripotent stem cells model kidney development and injury.源自人类多能干细胞的肾单位类器官可模拟肾脏发育和损伤。
Nat Biotechnol. 2015 Nov;33(11):1193-200. doi: 10.1038/nbt.3392.
10
Sox9 Activation Highlights a Cellular Pathway of Renal Repair in the Acutely Injured Mammalian Kidney.Sox9 激活凸显了急性肾损伤哺乳动物肾脏修复的细胞途径。
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Robo2-Baiap2 整合信号的破坏导致囊性疾病。

Disruption of Robo2-Baiap2 integrated signaling drives cystic disease.

机构信息

Department of Nephrology, Chinese PLA General Hospital, Medical School of Chinese PLA, Chinese PLA Institute of Nephrology, State Key Laboratory of Kidney Diseases, National Clinical Research Center for Kidney Diseases, Beijing, China.

Department of Internal Medicine, Department of Biochemistry and Molecular Biology, University of Kansas Medical Center, Kansas City, Kansas, USA.

出版信息

JCI Insight. 2019 Sep 19;4(18):127602. doi: 10.1172/jci.insight.127602.

DOI:10.1172/jci.insight.127602
PMID:31534052
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6795383/
Abstract

Hereditary renal cystic diseases are characterized by defects in primary cilia of renal tubular epithelial cells and abnormality of tubular epithelium, which ultimately result in the development of renal cysts. However, the mechanism leading from abnormality of the tubular epithelium to cystogenesis is not well understood. In this report, we demonstrate a critical role for Robo2 in regulating epithelial development, including ciliogenesis, polarization, and differentiation. We found that Robo2 deficiency results in cystic kidneys, and the cyst cells showed defective cilia and polarity defects in tubular epithelium. The cyst cells, less than terminally differentiated, continue to proliferate. We further established that Robo2 works with p53 as well as polarity and ciliary proteins (Par3, PKCς, ZO-2, and Claudin-2) to regulate these processes. Robo2 binds to Baiap2 (also known as IRSp53) through the IRSp53/MIM homology domain in renal epithelial cells. This binding allows Robo2 to phosphorylate MDM2 at Ser166 via Baiap2 and maintain p53 homeostasis. Disruption of the Robo2-Baiap2 complex causes MDM2 to be subjected to dephosphorylation, leading to a high level of active p53, and initiated p53-mediated cellular senescence via p21 and decreased the expression of ZO-1, ZO-2, PKCς, Par3, and Claudin-2 proteins, resulting in defects in epithelial development, including ciliogenesis, polarization, and differentiation. Importantly, double knockout of Robo2 and p53 rescued all the epithelial defects in kidneys compared with those in Robo2-knockout kidneys. Taken together, the present results demonstrate that Robo2 deficiency causes renal cystic disease, which is largely dependent on defective Robo2-Baiap2 integrated signaling in kidneys.

摘要

遗传性肾囊性疾病的特征是肾脏管状上皮细胞的初级纤毛缺陷和管状上皮异常,最终导致肾囊肿的发展。然而,从管状上皮异常到囊形成的机制尚不清楚。在本报告中,我们证明了 Robo2 在调节上皮细胞发育(包括纤毛发生、极化和分化)方面的关键作用。我们发现 Robo2 缺陷导致囊性肾脏,并且囊细胞显示出纤毛缺陷和管状上皮的极性缺陷。未终末分化的囊细胞继续增殖。我们进一步确定 Robo2 与 p53 以及极性和纤毛蛋白(Par3、PKCς、ZO-2 和 Claudin-2)一起作用来调节这些过程。Robo2 通过肾脏上皮细胞中的 IRSp53/MIM 同源结构域与 Baiap2 结合。这种结合允许 Robo2 通过 Baiap2 磷酸化 MDM2 的 Ser166 并维持 p53 稳态。Robo2-Baiap2 复合物的破坏导致 MDM2 去磷酸化,导致高水平的活性 p53,并通过 p21 引发 p53 介导的细胞衰老,降低 ZO-1、ZO-2、PKCς、Par3 和 Claudin-2 蛋白的表达,导致上皮细胞发育缺陷,包括纤毛发生、极化和分化。重要的是,与 Robo2 敲除肾脏相比,Robo2 和 p53 的双敲除挽救了肾脏中所有的上皮缺陷。总之,本研究结果表明,Robo2 缺陷导致肾囊性疾病,这在很大程度上依赖于肾脏中缺陷的 Robo2-Baiap2 整合信号。