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生成经 CRISPR/Cas9 修饰的人类 iPSC 系,校正钙敏感受体 (CaSR) 基因外显子 6 中的杂合突变。

Generation of CRISPR/Cas9 modified human iPSC line with correction of heterozygous mutation in exon 6 of the CaSR gene.

机构信息

The Institute of Cytology, Russian Academy of Sciences, Saint-Petersburg, 194064, Russia.

Institute of Gene Biology, Russian Academy of Sciences, Moscow, 119334, Russia.

出版信息

Hum Cell. 2024 Oct 24;38(1):6. doi: 10.1007/s13577-024-01135-1.

Abstract

The calcium-sensing receptor (CaSR) gene encodes a cell membrane G protein-coupled receptor (GPCR) which has a key role in maintaining the extracellular Ca homeostasis. We aimed at correcting the compound heterozygous mutation in the 6th [c.1656delA, p.I554SfsX73] and 7th [c.2217 T > A, p.C739X] exons of the CASR gene which the original patient-derived iPSC line had. The mutation is associated with neonatal severe primary hyperparathyroidism of the patient. We generated and characterized a CRISP/Cas9-edited hiPSC line with the restored sequence in the sixth exon of the CASR gene, bearing only heterozygous mutation in the 7th exon. The results showed that the new genetically modified cell line has karyotype without abnormalities, typical hiPSCs morphology, characteristic expression of pluripotency markers, and ability to develop into three germ layers, and differentiates in chondrogenic, adipogenic, osteogenic directions. This new cell line will complement the existing pool of CaSR-mutated cell lines, a valuable resource for in-depth understanding of neonatal severe primary hyperparathyroidism. This will allow further exploration of the application of pharmacological drugs in the context of personalized medicine to correct Ca-homeostasis disorders.

摘要

钙敏感受体 (CaSR) 基因编码一种细胞表面 G 蛋白偶联受体 (GPCR),在维持细胞外钙稳态中起着关键作用。我们旨在纠正原始患者来源的 iPSC 系中第 6 个 [c.1656delA, p.I554SfsX73] 和第 7 个 [c.2217 T > A, p.C739X] 外显子中的复合杂合突变,该突变与患者的新生儿严重原发性甲状旁腺功能亢进有关。我们生成并表征了一个 CRISP/Cas9 编辑的 hiPSC 系,该系在 CASR 基因的第六个外显子中具有恢复的序列,仅在第七个外显子中具有杂合突变。结果表明,新的基因修饰细胞系具有正常核型、典型的 hiPSC 形态、多能性标志物的特征表达以及向三个胚层分化的能力,并能在软骨形成、脂肪形成和成骨方向分化。这个新的细胞系将补充现有的 CaSR 突变细胞系库,这是深入了解新生儿严重原发性甲状旁腺功能亢进的宝贵资源。这将允许进一步探索在个性化医学背景下使用药物纠正钙稳态紊乱的应用。

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