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轻度肾缺血后近端肾小管刷状缘丧失与再生的机制

Mechanism of proximal tubule brush border loss and regeneration following mild renal ischemia.

作者信息

Venkatachalam M A, Jones D B, Rennke H G, Sandstrom D, Patel Y

出版信息

Lab Invest. 1981 Oct;45(4):355-65.

PMID:7300248
Abstract

Left kidneys of rats were made ischemic for 25 minutes and proximal tubule brush border alterations studied in the S1 and S2 segments. Scanning electron microscopy revealed that brush border microvilli became unstable, fused with one another, and were interiorized into proximal tubule cytoplasm soon after reflow of blood following ischemia. Rapid regeneration followed; scanning electron microscopy showed that regeneration occurred in a fashion whereby clusters of microvilli in flower-like configurations were extruded from the cell interior toward the surface. Such unique patterns of microvillus formation have not been reported before. Activity of the brush border enzymes, alkaline phosphatase and maltase, were not significantly depressed throughout the cycle of brush border loss and regeneration. Likewise, there were no alterations in the activity of beta-glucuronidase, a lysosomal enzyme. Alkaline phosphatase cytochemistry showed that microvillus membranes that were interiorized into the cell cytoplasm retained enzyme activity on their surfaces during the early period of brush border loss as well as during regeneration. These results strongly suggest that in reversibly injured proximal tubule cells regeneration of the brush border occurs primarily by a process of recycling of damaged, previously incorporated membrane. The nature of the initial membrane damage and the mechanism of recycling remain unknown.

摘要

将大鼠的左肾进行25分钟的缺血处理,并对S1和S2段近端小管刷状缘的改变进行研究。扫描电子显微镜显示,缺血后血液再灌注不久,刷状缘微绒毛变得不稳定,相互融合,并内化到近端小管细胞质中。随后迅速发生再生;扫描电子显微镜显示,再生以一种花状构型的微绒毛簇从细胞内部向表面挤出的方式发生。这种独特的微绒毛形成模式此前未见报道。在刷状缘丧失和再生的整个周期中,刷状缘酶碱性磷酸酶和麦芽糖酶的活性没有明显降低。同样,溶酶体酶β-葡萄糖醛酸酶的活性也没有改变。碱性磷酸酶细胞化学显示,内化到细胞质中的微绒毛膜在刷状缘丧失早期以及再生过程中,其表面仍保留酶活性。这些结果强烈表明,在可逆性损伤的近端小管细胞中,刷状缘的再生主要通过受损的、先前整合的膜的再循环过程发生。初始膜损伤的性质和再循环机制仍不清楚。

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