Rapid repair of human disease-specific single-nucleotide variants by One-SHOT genome editing

被引:3
作者
Yokouchi, Yuji [1 ,2 ]
Suzuki, Shinichi [2 ]
Ohtsuki, Noriko [1 ,2 ]
Yamamoto, Kei [1 ,2 ]
Noguchi, Satomi [1 ,2 ]
Soejima, Yumi [3 ]
Goto, Mizuki [3 ,4 ]
Ishioka, Ken [5 ]
Nakamura, Izumi [1 ,2 ]
Suzuki, Satoru [6 ]
Takenoshita, Seiichi [7 ]
Era, Takumi [1 ,2 ,3 ]
机构
[1] Fukushima Med Univ, Sch Med, Pluripotent Stem Cell Res Unit, Dept Thyroid & Endocrinol, 1 Hikariga Oka, Fukushima 9601295, Japan
[2] Fukushima Med Univ, Sch Med, Dept Thyroid & Endocrinol, Fukushima, Japan
[3] Kumamoto Univ, Inst Mol Embryol & Genet IMEG, Dept Cell Modulat, Kumamoto, Japan
[4] Oita Univ, Dept Dermatol, Fac Med, Yufu, Japan
[5] Fukushima Med Univ, Sch Med, Dept Microbiol, Fukushima, Japan
[6] Fukushima Med Univ, Radiat Med Sci Ctr, Off Thyroid Ultrasound Examinat Promot, Fukushima Hlth Management Survey, Fukushima, Japan
[7] Fukushima Med Univ, Fukushima, Japan
关键词
PLURIPOTENT STEM-CELLS; PCR-RFLP; CRISPR-CAS9; CPF1; ENDONUCLEASE; NUCLEASES; PRECISE; ACTIVATION; GENERATION; EFFICIENCY;
D O I
10.1038/s41598-020-70401-7
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Many human diseases ranging from cancer to hereditary disorders are caused by single-nucleotide mutations in critical genes. Repairing these mutations would significantly improve the quality of life for patients with hereditary diseases. However, current procedures for repairing deleterious single-nucleotide mutations are not straightforward, requiring multiple steps and taking several months to complete. In the current study, we aimed to repair pathogenic allele-specific single-nucleotide mutations using a single round of genome editing. Using high-fidelity, site-specific nuclease AsCas12a/Cpf1, we attempted to repair pathogenic single-nucleotide variants (SNVs) in disease-specific induced pluripotent stem cells. As a result, we achieved repair of the Met918Thr SNV in human oncogene RET with the inclusion of a single-nucleotide marker, followed by absolute markerless, scarless repair of the RET SNV with no detected off-target effects. The markerless method was then confirmed in human type VII collagen-encoding gene COL7A1. Thus, using this One-SHOT method, we successfully reduced the number of genetic manipulations required for genome repair from two consecutive events to one, resulting in allele-specific repair that can be completed within 3 weeks, with or without a single-nucleotide marker. Our findings suggest that One-SHOT can be used to repair other types of mutations, with potential beyond human medicine.
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页数:13
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