Polycystin-2-dependent transcriptome reveals early response of autosomal dominant polycystic kidney disease.

IF 2.5 4区 生物学 Q3 CELL BIOLOGY
Physiological genomics Pub Date : 2023-11-01 Epub Date: 2023-09-18 DOI:10.1152/physiolgenomics.00040.2023
Hyun Jun Jung, Eryn E Dixon, Richard Coleman, Terry Watnick, Jeremy F Reiter, Patricia Outeda, Valeriu Cebotaru, Owen M Woodward, Paul A Welling
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引用次数: 0

Abstract

Autosomal dominant polycystic kidney disease (ADPKD) is caused by mutations in polycystin genes, Pkd1 and Pkd2, but the underlying pathogenic mechanisms are poorly understood. To identify genes and pathways that operate downstream of polycystin-2 (PC2), a comprehensive gene expression database was created, cataloging changes in the transcriptome immediately following PC2 protein depletion. To explore cyst initiation processes, an immortalized mouse inner medullary collecting duct line was developed with the ability to knock out the Pkd2 gene conditionally. Genome-wide transcriptome profiling was performed using RNA sequencing in the cells immediately after PC2 was depleted and compared with isogenic control cells. Differentially expressed genes were identified, and a bioinformatic analysis pipeline was implemented. Altered expression of candidate cystogenic genes was validated in Pkd2 knockout mice. The expression of nearly 900 genes changed upon PC2 depletion. Differentially expressed genes were enriched for genes encoding components of the primary cilia, the canonical Wnt pathway, and MAPK signaling. Among the PC2-dependent ciliary genes, the transcription factor Glis3 was significantly downregulated. MAPK signaling formed a key node at the epicenter of PC2-dependent signaling networks. Activation of Wnt and MAPK signaling, concomitant with the downregulation of Glis3, was corroborated in Pkd2 knockout mice. The data identify a PC2 cilia-to-nucleus signaling axis and dysregulation of the Gli-similar subfamily of transcription factors as a potential initiator of cyst formation in ADPKD. The catalog of PC2-regulated genes should provide a valuable resource for future ADPKD research and new opportunities for drug development.NEW & NOTEWORTHY Autosomal dominant polycystic kidney disease (ADPKD) is the most common inherited kidney disease. Mutations in polycystin genes cause the disease, but the underlying mechanisms of cystogenesis are unknown. To help fill this knowledge gap, we created an inducible cell model of ADPKD and assembled a catalog of genes that respond in immediate proximity to polycystin-2 depletion using transcriptomic profiling. The catalog unveils a ciliary signaling-to-nucleus axis proximal to polycystin-2 dysfunction, highlighting Glis, Wnt, and MAPK signaling.

多囊蛋白2依赖性转录组揭示常染色体显性遗传性多囊肾病的早期反应。
常染色体显性多囊肾病(ADPKD)是由多囊蛋白基因Pkd1和Pkd2的突变引起的,但其潜在的致病机制尚不清楚。为了识别多囊蛋白-2(PC2)下游的基因和途径,创建了一个全面的基因表达数据库,对PC2蛋白缺失后转录组的变化进行编目。为了探索囊肿的发生过程,开发了一种能够有条件地敲除Pkd2基因的永生化小鼠骨髓内集合管系。在PC2耗尽后立即在细胞中使用RNA测序进行全基因组转录组分析,并与同基因对照细胞进行比较。鉴定了差异表达的基因,并实现了生物信息学分析管道。在Pkd2敲除小鼠中验证了候选膀胱生成基因表达的改变。PC2缺失后,近900个基因的表达发生了变化。差异表达的基因富集了编码初级纤毛、典型Wnt途径和MAPK信号传导成分的基因。在PC2依赖性纤毛基因中,转录因子Glis3显著下调。MAPK信令在依赖PC2的信令网络的中心形成了一个关键节点。Wnt和MAPK信号传导的激活,伴随着Glis3的下调,在Pkd2敲除小鼠中得到了证实。数据表明,PC2纤毛至细胞核的信号轴和Gli相似转录因子亚家族的失调是ADPKD囊肿形成的潜在引发因素。PC2调控基因的目录应该为未来的ADPKD研究和药物开发提供宝贵的资源。NEW&NOTEWORTHY常染色体显性多囊肾病(ADPKD)是最常见的遗传性肾病。多囊蛋白基因的突变导致了这种疾病,但膀胱发生的潜在机制尚不清楚。为了填补这一知识空白,我们创建了一个ADPKD的诱导型细胞模型,并使用转录组分析组装了一个对多囊蛋白-2耗竭有直接反应的基因目录。该目录揭示了在多囊蛋白2功能障碍附近向核轴发出的纤毛信号,突出了Glis、Wnt和MAPK信号。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Physiological genomics
Physiological genomics 生物-生理学
CiteScore
6.10
自引率
0.00%
发文量
46
审稿时长
4-8 weeks
期刊介绍: The Physiological Genomics publishes original papers, reviews and rapid reports in a wide area of research focused on uncovering the links between genes and physiology at all levels of biological organization. Articles on topics ranging from single genes to the whole genome and their links to the physiology of humans, any model organism, organ, tissue or cell are welcome. Areas of interest include complex polygenic traits preferably of importance to human health and gene-function relationships of disease processes. Specifically, the Journal has dedicated Sections focused on genome-wide association studies (GWAS) to function, cardiovascular, renal, metabolic and neurological systems, exercise physiology, pharmacogenomics, clinical, translational and genomics for precision medicine, comparative and statistical genomics and databases. For further details on research themes covered within these Sections, please refer to the descriptions given under each Section.
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