Allelic Dissection of Pkd1 3′-UTR Architecture Uncovers Regulatory Elements Affecting ADPKD Progression

包装D1 常染色体显性多囊肾病 生物 等位基因 表型 遗传学 多囊肾病 体内 外显子 小RNA 基因敲除 移码突变 多囊肾 肾结核 计算生物学 结构变异 细胞生物学 非翻译区 HEK 293细胞 基因 序列分析 分子生物学 外囊肿 癌症研究
作者
Mauricio Ostrosky-Frid,Jesus A. Alvarez,Arvind Somasundaram,Patricia Cobo-Stark,Ronak Lakhia,Vishal Patel
出处
期刊:Journal of The American Society of Nephrology [American Society of Nephrology]
卷期号:36 (10S)
标识
DOI:10.1681/asn.20255d5yjg5w
摘要

Background: The 3′-untranslated region (3′-UTR) of mRNA plays a central role in regulating transcript stability and translation efficiency, yet the cis-regulatory logic underlying these functions remains poorly understood. Autosomal dominant polycystic kidney disease (ADPKD), a monogenic disorder driven primarily by heterozygous loss-of-function mutations in PKD1, provides a clinically relevant model to investigate these mechanisms. We previously identified a miR-17 binding motif within the PKD1 3′-UTR that suppresses translation. Here, we leverage PKD1 and ADPKD as model systems to interrogate the structural and sequence determinants of 3′–UTR–mediated regulation in vivo and uncover targetable elements for therapeutic PKD1 upregulation. Methods: We performed in-cell and in-vitro SHAPE (Selective 2’-Hydroxyl Acylation analyzed by Primer Extension) analysis of the PKD1 3’-UTR to determine the secondary structures and RNA-binding protein (RBP) interaction sites. Using CRISPR-Cas9, we engineered an in vivo allelic series in a mouse ADPKD model to disrupt microRNA motifs, loop-forming regions, or predicted RBP-binding elements within the Pkd1 3’-UTR. We generated and characterized 20 independent founder mouse lines. Phenotypic evaluation included kidney-to-body weight ratio, histology, serum creatinine, blood urea nitrogen levels, and survival analysis. Results: We made four key observations. First, SHAPE analysis revealed extensive double-strand secondary structure in the PKD1 3′-UTR and identified stem-loops harboring miRNA and other motifs that are accessible to RBPs. Second, deletion or base-editing of either the miR-17 or miR-200 motifs stabilized Pkd1 mRNA, reduced disease progression, and prevented mortality in monoallelic Pkd1-mutant mice. Third, deletion of 3’-UTR regions that minimized the secondary structure also alleviated disease. Finally, combined deletion of both miRNA motifs, or larger deletions affecting miRNA sites and 3’-UTR structure, had an additive effect, completely preventing disease onset. Conclusion: Eliminating miRNA motifs or altering Pkd1 3′-UTR structure alleviates ADPKD, with effects that appear summative. We uncover broader principles of 3′-UTR biology with potential implications for endogenous PKD1 gene therapy for ADPKD. Funding: NIDDK Support, Other U.S. Government Support

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