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近端肾小管细胞中 Rab11a 阳性隔室分拣液相等膜货物。

Rab11a-positive compartments in proximal tubule cells sort fluid-phase and membrane cargo.

机构信息

Renal-Electrolyte Division, Department of Medicine, University of Pittsburgh, Pittsburgh, Pennsylvania; and.

出版信息

Am J Physiol Cell Physiol. 2014 Mar 1;306(5):C441-9. doi: 10.1152/ajpcell.00236.2013. Epub 2013 Oct 23.

Abstract

The proximal tubule (PT) reabsorbs the majority of sodium, bicarbonate, and chloride ions, phosphate, glucose, water, and plasma proteins from the glomerular filtrate. Despite the critical importance of endocytosis for PT cell (PTC) function, the organization of the endocytic pathway in these cells remains poorly understood. We have used immunofluorescence and live-cell imaging to dissect the itinerary of apically internalized fluid and membrane cargo in polarized primary cultures of PTCs isolated from mouse kidney cortex. Cells from the S1 segment could be distinguished from those from more distal PT segments by their robust uptake of albumin and comparatively low expression of γ-glutamyltranspeptidase. Rab11a in these cells is localized to variously sized spherical compartments that resemble the apical vacuoles observed by electron microscopy analysis of PTCs in vivo. These Rab11a-positive structures are highly dynamic and receive membrane and fluid-phase cargo. In contrast, fluid-phase cargoes are largely excluded from Rab11a-positive compartments in immortalized kidney cell lines. The unusual morphology and sorting capacity of Rab11a compartments in primary PTCs may reflect a unique specialization of these cells to accommodate the functional demands of handling a high endocytic load.

摘要

近端小管 (PT) 从肾小球滤液中重吸收大部分钠、碳酸氢盐和氯离子、磷酸盐、葡萄糖、水和血浆蛋白。尽管内吞作用对于 PT 细胞 (PTC) 的功能至关重要,但这些细胞中内吞途径的组织仍然知之甚少。我们使用免疫荧光和活细胞成像技术,从分离自小鼠肾皮质的 PTC 的极化原代培养物中剖析了腔内内化的流体和膜货物的行程。S1 段的细胞可以通过其对白蛋白的强烈摄取以及相对较低的 γ-谷氨酰转肽酶表达与来自更远端 PT 段的细胞区分开来。这些细胞中的 Rab11a 定位于各种大小的球形隔室,类似于体内电镜分析 PTC 观察到的顶空泡。这些 Rab11a 阳性结构高度动态,并接收膜和流体相货物。相比之下,在永生化肾细胞系中,流体相货物在很大程度上被排除在 Rab11a 阳性隔室之外。原代 PTC 中 Rab11a 隔室的异常形态和分选能力可能反映了这些细胞的独特专业化,以适应处理高内吞负荷的功能需求。

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