Patient-iPSC-Derived Kidney Organoids Show Functional Validation of a Ciliopathic Renal Phenotype and Reveal Underlying Pathogenetic Mechanisms

诱导多能干细胞 纤毛 生物 纤毛形成 囊性肾病变 遗传学 先证者 外显子组测序 肾结核 突变 表型 基因 胚胎干细胞
作者
Thomas A. Forbes,Sara E. Howden,Kynan T. Lawlor,Belinda Phipson,Jovana Maksimovic,Lorna J. Hale,Sean B. Wilson,Catherine Quinlan,Gladys Ho,Katherine Holman,Bruce Bennetts,Joanna Crawford,Peter Trnka,Alicia Oshlack,Chirag Patel,Andrew Mallett,Cas Simons,Melissa H. Little
出处
期刊:American Journal of Human Genetics [Elsevier]
卷期号:102 (5): 816-831 被引量:164
标识
DOI:10.1016/j.ajhg.2018.03.014
摘要

Despite the increasing diagnostic rate of genomic sequencing, the genetic basis of more than 50% of heritable kidney disease remains unresolved. Kidney organoids differentiated from induced pluripotent stem cells (iPSCs) of individuals affected by inherited renal disease represent a potential, but unvalidated, platform for the functional validation of novel gene variants and investigation of underlying pathogenetic mechanisms. In this study, trio whole-exome sequencing of a prospectively identified nephronophthisis (NPHP) proband and her parents identified compound-heterozygous variants in IFT140, a gene previously associated with NPHP-related ciliopathies. IFT140 plays a key role in retrograde intraflagellar transport, but the precise downstream cellular mechanisms responsible for disease presentation remain unknown. A one-step reprogramming and gene-editing protocol was used to derive both uncorrected proband iPSCs and isogenic gene-corrected iPSCs, which were differentiated to kidney organoids. Proband organoid tubules demonstrated shortened, club-shaped primary cilia, whereas gene correction rescued this phenotype. Differential expression analysis of epithelial cells isolated from organoids suggested downregulation of genes associated with apicobasal polarity, cell-cell junctions, and dynein motor assembly in proband epithelial cells. Matrigel cyst cultures confirmed a polarization defect in proband versus gene-corrected renal epithelium. As such, this study represents a "proof of concept" for using proband-derived iPSCs to model renal disease and illustrates dysfunctional cellular pathways beyond the primary cilium in the setting of IFT140 mutations, which are established for other NPHP genotypes.
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