Identification of a familial cleidocranial dysplasia with a novel RUNX2 mutation and establishment of patient-derived induced pluripotent stem cells

被引:0
作者
Atsuko Hamada
Hanae Mukasa
Yuki Taguchi
Eri Akagi
Fumitaka Obayashi
Sachiko Yamasaki
Taku Kanda
Koichi Koizumi
Shigeaki Toratani
Tetsuji Okamoto
机构
[1] Graduate Institute of Biomedical and Health Science,Department of Molecular Oral Medicine and Maxillofacial Surgery, Division of Applied Life Science
[2] Hiroshima University,Department of Molecular Oral Medicine and Maxillofacial Surgery, Graduate School of Biomedical and Health Science
[3] Hiroshima University,School of Medical Sciences
[4] The University of East Asia,undefined
[5] Mukasa Dental Clinic,undefined
来源
Odontology | 2022年 / 110卷
关键词
RUNX2; Mutation; Dysplasia; Cleidocranial; iPSC;
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暂无
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学科分类号
摘要
Cleidocranial dysplasia (CCD) is an autosomal dominant hereditary disease associated with the gene RUNX2. Disease-specific induced pluripotent stem cells (iPSCs) have emerged as a useful resource to further study human hereditary diseases such as CCD. In this study, we identified a novel CCD-specific RUNX2 mutation and established iPSCs with this mutation. Biopsies were obtained from familial CCD patients and mutation analyses were performed through Sanger sequencing and next generation sequencing. CCD-specific human iPSCs (CCD-hiPSCs) were established and maintained under completely defined serum, feeder, and integration-free condition using a non-integrating replication-defective Sendai virus vector. We identified the novel mutation RUNX2_c.371C>G and successfully established CCD-hiPSCs. The CCD-hiPSCs inherited the same mutation, possessed pluripotency, and showed the ability to differentiate the three germ layers. We concluded that RUNX2_c.371C>G was likely pathogenic because our results, derived from next generation sequencing, are supported by actual clinical evidence, familial tracing, and genetic data. Thus, we concluded that hiPSCs with a novel CCD-specific RUNX2 mutation are viable as a resource for future studies on CCD.
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页码:444 / 451
页数:7
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  • [21] Shimizu Y(1999)CBFA1 mutation analysis and functional correlation with phenotypic variability in cleidocranial dysplasia Hum Mol Genet 8 2311-264
  • [22] Bronson Y(2016)Generation of cleidocranial dysplasia-specific human induced pluripotent stem cells in completely serum-, feeder-, and integration-free culture In Vitro Cell Dev Biol Animal 52 252-313
  • [23] Gao H(2015)Modeling type II collagenopathy skeletal dysplasia by directed conversion and induced pluripotent stem cells Hum Mol Genet 24 299-625
  • [24] Inada M(2021)Differentiation of hypertrophic chondrocytes from human iPSCs for the in vitro modeling of chondrodysplasias Stem Cell Rep 16 610-95
  • [25] Sato M(2020)Induction of integration-free human-induced pluripotent stem cells under serum- and feeder-free conditions Int J Dev Biol 56 85-1766
  • [26] Okamoto R(1987)Cholesterol requirement of P3–X63-Ag8 and X63-Ag8.653 mouse myeloma cells for growth in vitro J Exp Med 165 1761-4771
  • [27] Kitamura Y(2011)Development of defective and persistent Sendai virus vector: a unique gene delivery/expression system ideal for cell reprogramming J Biol Chem 286 4760-13414
  • [28] Yoshiki S(2008)Heparin promotes the growth of human embryonic stem cells in a defined serum-free medium Proc Natl Acad Sci USA 105 13409-724
  • [29] Kishimoto T(2013)Long-term serial cultivation of mouse induced pluripotent stem cells in serum-free and feeder-free defined medium Int J Dev Biol 57 715-511
  • [30] Mundlos S(2014)Enzyme-free passage of human pluripotent stem cells by controlling divalent cations Sci Rep 4 4646-89