An Adaptable Physiological Model of Endocytic Megalin Trafficking in Opossum Kidney Cells and Mouse Kidney Proximal Tubule.

IF 5.1 Q2 CELL BIOLOGY Function (Oxford, England) Pub Date : 2022-09-07 eCollection Date: 2022-01-01 DOI:10.1093/function/zqac046
Katherine E Shipman, Kimberly R Long, Isabella A Cowan, Youssef Rbaibi, Catherine J Baty, Ora A Weisz
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Abstract

The cells that comprise the proximal tubule (PT) are specialized for high-capacity apical endocytosis necessary to maintain a protein-free urine. Filtered proteins are reclaimed via receptor-mediated endocytosis facilitated by the multiligand receptors megalin and cubilin. Despite the importance of this pathway, we lack a detailed understanding of megalin trafficking kinetics and how they are regulated. Here, we utilized biochemical and quantitative imaging methods in a highly differentiated model of opossum kidney (OK) cells and in mouse kidney in vivo to develop mathematical models of megalin traffic. A preliminary model based on biochemically quantified kinetic parameters was refined by colocalization of megalin with individual apical endocytic compartment markers. Our model predicts that megalin is rapidly internalized, resulting in primarily intracellular distribution of the receptor at steady state. Moreover, our data show that early endosomes mature rapidly in PT cells and suggest that Rab11 is the primary mediator of apical recycling of megalin from maturing endocytic compartments. Apical recycling represents the rate-limiting component of endocytic traffic, suggesting that this step has the largest impact in determining the endocytic capacity of PT cells. Adaptation of our model to the S1 segment of mouse PT using colocalization data obtained in kidney sections confirms basic aspects of our model and suggests that our OK cell model largely recapitulates in vivo membrane trafficking kinetics. We provide a downloadable application that can be used to adapt our working parameters to further study how endocytic capacity of PT cells may be altered under normal and disease conditions.

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负鼠肾细胞和小鼠肾近曲小管中内吞性巨球蛋白运输的适应性生理模型
组成近端肾小管(PT)的细胞专门从事维持无蛋白质尿液所需的高容量顶端内吞作用。过滤后的蛋白质通过多配体受体megalin和cubilin促进的受体介导的内吞作用被回收。尽管这一途径非常重要,但我们对megalin 的转运动力学及其调控方式缺乏详细了解。在这里,我们利用生化和定量成像方法,在高度分化的负鼠肾脏(OK)细胞模型和体内小鼠肾脏中建立了巨球蛋白运输的数学模型。基于生化定量动力学参数的初步模型通过巨球蛋白与单个顶端内细胞区室标记物的共定位得到了完善。我们的模型预测巨球蛋白会迅速内化,从而导致受体在稳态时主要分布在细胞内。此外,我们的数据还显示,早期内体在 PT 细胞中迅速成熟,并表明 Rab11 是megalin 从成熟的内细胞区室顶端循环的主要媒介。顶端再循环代表了内吞交通的限速成分,表明这一步骤对决定 PT 细胞的内吞能力影响最大。利用在肾脏切片中获得的共聚焦数据将我们的模型调整到小鼠PT的S1段,证实了我们模型的基本方面,并表明我们的OK细胞模型在很大程度上再现了体内膜运输动力学。我们提供了一个可下载的应用程序,可用于调整我们的工作参数,以进一步研究 PT 细胞的内吞能力如何在正常和疾病条件下发生改变。
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