A novel system for simultaneous or sequential integration of multiple gene-loading vectors into a defined site of a human artificial chromosome.

Human artificial chromosomes (HACs) are gene-delivery vectors suitable for introducing large DNA fragments into mammalian cells. Although a HAC theoretically incorporates multiple gene expression cassettes of unlimited DNA size, its application has been limited because the conventional gene-loading...

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Main Authors: Teruhiko Suzuki, Yasuhiro Kazuki, Mitsuo Oshimura, Takahiko Hara
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4193884?pdf=render
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spelling doaj-1938f9625bcf4417a70348c8e8d0b4572020-11-25T01:18:46ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-01910e11040410.1371/journal.pone.0110404A novel system for simultaneous or sequential integration of multiple gene-loading vectors into a defined site of a human artificial chromosome.Teruhiko SuzukiYasuhiro KazukiMitsuo OshimuraTakahiko HaraHuman artificial chromosomes (HACs) are gene-delivery vectors suitable for introducing large DNA fragments into mammalian cells. Although a HAC theoretically incorporates multiple gene expression cassettes of unlimited DNA size, its application has been limited because the conventional gene-loading system accepts only one gene-loading vector (GLV) into a HAC. We report a novel method for the simultaneous or sequential integration of multiple GLVs into a HAC vector (designated as the SIM system) via combined usage of Cre, FLP, Bxb1, and φC31 recombinase/integrase. As a proof of principle, we first attempted simultaneous integration of three GLVs encoding EGFP, Venus, and TdTomato into a gene-loading site of a HAC in CHO cells. These cells successfully expressed all three fluorescent proteins. Furthermore, microcell-mediated transfer of HACs enabled the expression of those fluorescent proteins in recipient cells. We next demonstrated that GLVs could be introduced into a HAC one-by-one via reciprocal usage of recombinase/integrase. Lastly, we introduced a fourth GLV into a HAC after simultaneous integration of three GLVs by FLP-mediated DNA recombination. The SIM system expands the applicability of HAC vectors and is useful for various biomedical studies, including cell reprogramming.http://europepmc.org/articles/PMC4193884?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Teruhiko Suzuki
Yasuhiro Kazuki
Mitsuo Oshimura
Takahiko Hara
spellingShingle Teruhiko Suzuki
Yasuhiro Kazuki
Mitsuo Oshimura
Takahiko Hara
A novel system for simultaneous or sequential integration of multiple gene-loading vectors into a defined site of a human artificial chromosome.
PLoS ONE
author_facet Teruhiko Suzuki
Yasuhiro Kazuki
Mitsuo Oshimura
Takahiko Hara
author_sort Teruhiko Suzuki
title A novel system for simultaneous or sequential integration of multiple gene-loading vectors into a defined site of a human artificial chromosome.
title_short A novel system for simultaneous or sequential integration of multiple gene-loading vectors into a defined site of a human artificial chromosome.
title_full A novel system for simultaneous or sequential integration of multiple gene-loading vectors into a defined site of a human artificial chromosome.
title_fullStr A novel system for simultaneous or sequential integration of multiple gene-loading vectors into a defined site of a human artificial chromosome.
title_full_unstemmed A novel system for simultaneous or sequential integration of multiple gene-loading vectors into a defined site of a human artificial chromosome.
title_sort novel system for simultaneous or sequential integration of multiple gene-loading vectors into a defined site of a human artificial chromosome.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description Human artificial chromosomes (HACs) are gene-delivery vectors suitable for introducing large DNA fragments into mammalian cells. Although a HAC theoretically incorporates multiple gene expression cassettes of unlimited DNA size, its application has been limited because the conventional gene-loading system accepts only one gene-loading vector (GLV) into a HAC. We report a novel method for the simultaneous or sequential integration of multiple GLVs into a HAC vector (designated as the SIM system) via combined usage of Cre, FLP, Bxb1, and φC31 recombinase/integrase. As a proof of principle, we first attempted simultaneous integration of three GLVs encoding EGFP, Venus, and TdTomato into a gene-loading site of a HAC in CHO cells. These cells successfully expressed all three fluorescent proteins. Furthermore, microcell-mediated transfer of HACs enabled the expression of those fluorescent proteins in recipient cells. We next demonstrated that GLVs could be introduced into a HAC one-by-one via reciprocal usage of recombinase/integrase. Lastly, we introduced a fourth GLV into a HAC after simultaneous integration of three GLVs by FLP-mediated DNA recombination. The SIM system expands the applicability of HAC vectors and is useful for various biomedical studies, including cell reprogramming.
url http://europepmc.org/articles/PMC4193884?pdf=render
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