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紧密连接蛋白1(ZO-1)和紧密连接蛋白2(ZO-2)差异表达对足细胞结构和功能的影响。

Effects of the differential expression of ZO-1 and ZO-2 on podocyte structure and function.

作者信息

Itoh Masahiko, Nakadate Kazuhiko, Matsusaka Taiji, Hunziker Walter, Sugimoto Hiroyuki

机构信息

Department of Biochemistry, School of Medicine, Dokkyo Medical University, Mibu-machi, Japan.

Department of Basic Biology, Educational and Research Center for Pharmacy, Meiji Pharmaceutical University, Tokyo, Japan.

出版信息

Genes Cells. 2018 Jul;23(7):546-556. doi: 10.1111/gtc.12598. Epub 2018 May 29.

Abstract

Glomerular podocytes in the kidney originate from columnar epithelial cells possessing tight junctions. During podocyte differentiation, tight junctions are replaced by slit diaphragms, which are formed between foot processes and function as a blood filtration barrier. Although the expression of most tight junction components is suppressed during podocyte differentiation, several components, including ZO-1 and ZO-2, are consistently expressed. We recently showed that podocyte-specific deletion of ZO-1 gene impaired slit diaphragm formation, leading to proteinuria and glomerular sclerosis. Here, we address the relevance of ZO-2, whose sequence is highly similar to ZO-1, in the maintenance of the structure and function of podocytes. In glomerular development, the spatiotemporal expression of ZO-2 was similar to that of ZO-1 until the capillary loop stage. Subsequently, the distribution patterns of ZO-1 and ZO-2 diverged at the maturation stage, when slit diaphragms are formed. This divergence could partly rely on the ability of ZO-2 to interact with the slit diaphragm membrane proteins. Podocyte-specific deletion of the ZO-2 gene did not cause overt defects; however, double knockout of ZO-1 and ZO-2 genes accelerated the defects observed in ZO-1 knockout mice. These results suggest that ZO-2 plays supportive roles in the ZO-1-dependent regulation of podocyte filtration barrier.

摘要

肾脏中的肾小球足细胞起源于具有紧密连接的柱状上皮细胞。在足细胞分化过程中,紧密连接被裂孔隔膜取代,裂孔隔膜在足突之间形成并作为血液滤过屏障发挥作用。尽管在足细胞分化过程中大多数紧密连接成分的表达受到抑制,但包括ZO-1和ZO-2在内的几种成分持续表达。我们最近发现,足细胞特异性缺失ZO-1基因会损害裂孔隔膜的形成,导致蛋白尿和肾小球硬化。在此,我们探讨与ZO-1序列高度相似的ZO-2在维持足细胞结构和功能中的相关性。在肾小球发育过程中,直到毛细血管袢阶段,ZO-2的时空表达与ZO-1相似。随后,在裂孔隔膜形成的成熟阶段,ZO-1和ZO-2的分布模式出现分歧。这种分歧可能部分依赖于ZO-2与裂孔隔膜膜蛋白相互作用的能力。足细胞特异性缺失ZO-2基因并未导致明显缺陷;然而,ZO-1和ZO-2基因的双敲除加速了在ZO-1敲除小鼠中观察到的缺陷。这些结果表明,ZO-2在ZO-1依赖的足细胞滤过屏障调节中起支持作用。

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