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Motor Protein Myo1c Is a Podocyte Protein That Facilitates the Transport of Slit Diaphragm Protein Neph1 to the Podocyte Membrane ▿

机译:运动蛋白Myo1c是一种足细胞蛋白,有助于将裂膜片蛋白Neph1转运至足细胞膜 ▿

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摘要

The podocyte proteins Neph1 and nephrin organize a signaling complex at the podocyte cell membrane that forms the structural framework for a functional glomerular filtration barrier. Mechanisms regulating the movement of these proteins to and from the membrane are currently unknown. This study identifies a novel interaction between Neph1 and the motor protein Myo1c, where Myo1c plays an active role in targeting Neph1 to the podocyte cell membrane. Using in vivo and in vitro experiments, we provide data supporting a direct interaction between Neph1 and Myo1c which is dynamic and actin dependent. Unlike wild-type Myo1c, the membrane localization of Neph1 was significantly reduced in podocytes expressing dominant negative Myo1c. In addition, Neph1 failed to localize at the podocyte cell membrane and cell junctions in Myo1c-depleted podocytes. We further demonstrate that similarly to Neph1, Myo1c also binds nephrin and reduces its localization at the podocyte cell membrane. A functional analysis of Myo1c knockdown cells showed defects in cell migration, as determined by a wound assay. In addition, the ability to form tight junctions was impaired in Myo1c knockdown cells, as determined by transepithelial electric resistance (TER) and bovine serum albumin (BSA) permeability assays. These results identify a novel Myo1c-dependent molecular mechanism that mediates the dynamic organization of Neph1 and nephrin at the slit diaphragm and is critical for podocyte function.
机译:足细胞蛋白Neph1和nephrin在足细胞细胞膜上组织了信号传导复合物,形成了功能性肾小球滤过屏障的结构框架。目前尚不清楚调节这些蛋白质往返于膜的运动的机制。这项研究确定了Neph1与运动蛋白Myo1c之间的新型相互作用,其中Myo1c在将Neph1靶向足细胞细胞膜方面发挥了积极作用。使用体内和体外实验,我们提供的数据支持Neph1和Myo1c之间的直接相互作用,该相互作用是动态的且依赖肌动蛋白。与野生型Myo1c不同,Neph1的膜定位在表达显性阴性Myo1c的足细胞中明显减少。此外,Neph1未能定位在足细胞细胞膜和Myo1c耗尽足细胞中的细胞连接处。我们进一步证明,与Neph1类似,Myo1c也结合nephrin并减少其在足细胞膜上的定位。 Myo1c组合式细胞的功能分析显示,通过伤口检测可以确定细胞迁移的缺陷。此外,通过跨上皮电阻(TER)和牛血清白蛋白(BSA)渗透性测定法测定,Myo1c敲低细胞中形成紧密连接的能力受到损害。这些结果确定了一种新颖的Myo1c依赖性分子机制,该机制介导了Neph1和nephrin在缝隙隔膜处的动态组织,并且对于足细胞功能至关重要。

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