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Improving the efficiency of gene insertion in a human artificial chromosome vector and its transfer in human-induced pluripotent stem cells
Author(s) -
Yoshinori Hasegawa,
Masashi Ikeno,
Nobutaka Suzuki,
Manabu Nakayama,
Osamu Ohara
Publication year - 2018
Publication title -
biology methods and protocols
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.555
H-Index - 5
ISSN - 2396-8923
DOI - 10.1093/biomethods/bpy013
Subject(s) - insertional mutagenesis , induced pluripotent stem cell , human artificial chromosome , biology , transposable element , insertion , plasmid , gene , mutagenesis , position effect , vector (molecular biology) , genetics , dna , chromosome , mutation , genome , embryonic stem cell , recombinant dna
A human artificial chromosome (HAC) vector has potential to overcome the problems of stable gene expression associated with plasmid, transposon, and virus-based vectors, such as insertional mutagenesis, position effect, uncontrollable copy number, unstable gene expression, and DNA size limitation. The main advantages of the HAC are its episomal nature and ability to accommodate DNA inserts of any size. However, HAC vectors have two disadvantages: low efficiency of gene insertion and lack of reports regarding the successful HAC transfer to human-induced pluripotent stem cells (iPSCs). We here provide the first report of a method for the efficient transfer of HAC to human iPSCs for obtaining reproducible experimental results. Moreover, we achieved a 10% increase in the gene insertion efficiency in the HAC vector using our new site-specific recombination systems VCre/VloxP and SCre/SloxP.

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