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肾上皮细胞对一水草酸钙晶体的黏附、内化及代谢

Adhesion, internalization and metabolism of calcium oxalate monohydrate crystals by renal epithelial cells.

作者信息

Lieske J C, Norris R, Swift H, Toback F G

机构信息

Department of Medicine, University of Chicago, Illinois, USA.

出版信息

Kidney Int. 1997 Nov;52(5):1291-301. doi: 10.1038/ki.1997.454.

Abstract

The interaction between crystals that nucleate in the nephron lumen and tubular cells could be an important determinant of renal calcification. Kidney epithelial cells in monolayer culture (BSC-1 line), used to model the tubule, rapidly bound and internalized crystals of calcium oxalate monohydrate (COM), the most common constituent of renal stones. Transmission and scanning electron microscopy, enzyme histochemistry, and kinetic analysis of [14C]-labeled crystals were used to study the interaction between renal cells and COM crystals. Electron microscopy revealed that adherent crystals on the apical cell surface can serve as sites for aggregation of additional crystals. Enhanced binding of exogenous crystals to plasma membrane domains overlying internalized crystals was observed for at least 24 hours after the initial cell-crystal interaction. Following internalization, crystals appeared to dissolve within lysosomal inclusion bodies during the ensuing five to seven weeks. Over this time, many cells still containing crystals clustered together in the monolayer. These observations suggest that adhesion and internalization can promote crystal retention in the nephron, whereas intracellular dissolution of crystals may serve as an important, hitherto unrecognized defense against pathologic renal calcification.

摘要

肾单位管腔中形成的晶体与肾小管细胞之间的相互作用可能是肾钙化的一个重要决定因素。用于模拟肾小管的单层培养肾上皮细胞(BSC - 1系)能快速结合并内化一水合草酸钙(COM)晶体,这是肾结石最常见的成分。利用透射和扫描电子显微镜、酶组织化学以及对[14C]标记晶体的动力学分析来研究肾细胞与COM晶体之间的相互作用。电子显微镜显示,顶端细胞表面的附着晶体可作为额外晶体聚集的位点。在最初的细胞 - 晶体相互作用后至少24小时内,观察到外源晶体与覆盖内化晶体的质膜区域的结合增强。内化后,在随后的五到七周内,晶体似乎在溶酶体包涵体内溶解。在此期间,许多仍含有晶体的细胞在单层中聚集在一起。这些观察结果表明,粘附和内化可促进晶体在肾单位中的滞留,而晶体的细胞内溶解可能是一种重要的、迄今未被认识的针对病理性肾钙化的防御机制。

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