Loss of Nup160 dysregulates Cdc42 in the podocytes of podocyte-specific Nup160 knockout mice.

IF 3.2 2区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Deying Liu, Jiaxin Li, Chan Xu, Yuanyuan Li, Xiaohan Chen, Feng Zhao, Huajuan Tong, Yonghui Yang, Xiaojian Qiu, Zihua Yu
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引用次数: 0

Abstract

Mutations in four genes encoding the outer ring complex of nuclear pore complexes (NPCs), NUP85, NUP107, NUP133 and NUP160, cause monogenic steroid-resistant nephrotic syndrome (SRNS). Knockout of NUP85, NUP107, or NUP133 in immortalized human podocytes activates CDC42, an important effector of SRNS pathogenesis. However, it is unknown whether or not loss of NUP160 dysregulates CDC42 in the podocytes. Here, we generated a podocyte-specific Nup160 knockout mouse model with double-fluorescent (mT/mG) Cre reporter genes using CRISPR/Cas9 and Cre/loxP technologies. We investigated nephrotic syndrome-associated phenotypes in the Nup160podo-/- mice, and performed single-cell transcriptomic and proteomic analysis of glomerular suspension cells and cultured primary podocytes, respectively. The Nup160podo-/- mice exhibited progressive proteinuria and fusion of podocyte foot processes. We found decreased Cdc42 protein and normal Cdc42 transcriptional level in the podocytes of the Nup160podo-/- mice using analysis of single-cell transcriptomes and proteomes. We subsequently observed that Cdc42 protein decreased in both kidney tissues and cultured primary podocytes of the Nup160podo-/- mice, although Cdc42 mRNA levels were elevated in the cultured primary podocytes of the Nup160podo-/- mice. We also found that Cdc42 activity was significantly reduced in the cultured primary podocytes of the Nup160podo-/- mice. In conclusion, loss of Nup160 dysregulated Cdc42 in the podocytes of the Nup160podo-/- mice with proteinuria and fusion of podocyte foot processes. Our findings suggest that the dysregulation of CDC42 may contribute to the pathogenesis of SRNS in patients with mutations in NUP160.

缺失Nup160会导致足细胞特异性Nup160敲除小鼠足细胞中的Cdc42失调。
编码核孔复合物外环复合物(NPCs)的四个基因NUP85、NUP107、NUP133和NUP160的突变可导致单基因类固醇耐药肾病综合征(SRNS)。敲除永生化人足细胞中的NUP85、NUP107或NUP133可激活CDC42,这是SRNS发病机制的重要效应因子。然而,目前尚不清楚NUP160的缺失是否会使足细胞中的CDC42失调。在这里,我们使用CRISPR/Cas9和Cre/loxP技术建立了具有双荧光(mT/mG) Cre报告基因的足细胞特异性Nup160敲除小鼠模型。我们研究了Nup160podo-/-小鼠的肾病综合征相关表型,并分别对肾小球悬浮细胞和培养的原代足细胞进行了单细胞转录组学和蛋白质组学分析。Nup160podo-/-小鼠表现出进行性蛋白尿和足细胞足突融合。通过单细胞转录组和蛋白质组分析,我们发现Nup160podo-/-小鼠足细胞中Cdc42蛋白水平降低,Cdc42转录水平正常。我们随后观察到,尽管在Nup160podo-/-小鼠培养的原代足细胞中Cdc42 mRNA水平升高,但在Nup160podo-/-小鼠的肾组织和培养的原代足细胞中Cdc42蛋白水平均下降。我们还发现,在Nup160podo-/-小鼠培养的原代足细胞中,Cdc42活性显著降低。总之,Nup160缺失导致Nup160podo-/-小鼠的足细胞Cdc42失调,伴有蛋白尿和足细胞足突融合。我们的研究结果表明,CDC42的失调可能与NUP160突变患者的SRNS发病机制有关。
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来源期刊
Human molecular genetics
Human molecular genetics 生物-生化与分子生物学
CiteScore
6.90
自引率
2.90%
发文量
294
审稿时长
2-4 weeks
期刊介绍: Human Molecular Genetics concentrates on full-length research papers covering a wide range of topics in all aspects of human molecular genetics. These include: the molecular basis of human genetic disease developmental genetics cancer genetics neurogenetics chromosome and genome structure and function therapy of genetic disease stem cells in human genetic disease and therapy, including the application of iPS cells genome-wide association studies mouse and other models of human diseases functional genomics computational genomics In addition, the journal also publishes research on other model systems for the analysis of genes, especially when there is an obvious relevance to human genetics.
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