Literature DB >> 32358721

Improved production of GTKO/hCD55/hCD59 triple-gene-modified Diannan miniature pigs for xenotransplantation by recloning.

Heng Zhao1,2,3, Yuying Li1,2,3, Thanapa Wiriyahdamrong1,2,3, Zaimei Yuan3, Yubo Qing1,2,4, Honghui Li1,2,3, Kaixiang Xu1,2,3, Jianxiong Guo1,2, Baoyu Jia1,2,4, Xuezeng Zhang3, Wenmin Cheng1,2,3, Yanhua Su1,2,4, Weihu Long1,2, Jing Wang1,2, Di Zou1,2, Keji Kinoshita1,2,4, Hong-Ye Zhao5,6, Hong-Jiang Wei7,8,9.   

Abstract

Multiple genetic modification is necessary for successful xenotransplantation from pigs. However, multiple-genetically modified cells usually suffer from various drug selections and long-term in vitro culture, which have a poor performance for somatic cell nuclear transfer (SCNT) to produce genetically modified pigs. We used to generate GTKO/hCD55/hCD59 triple-gene modified pigs by using drug-selective cell lines for SCNT, but the majority of cloned pigs were transgenic-negative individuals. In this study, to improve the production efficiency of multiple genetically modified pigs, we performed the recloning process by using transgenic porcine fetal fibroblast cells. As a result, two fetuses expressing hCD55 and hCD59 were obtained from 12 live-cloned fetuses, and one carrying high transgene expression was selected as a source of donor cells for recloning. Then we obtained 12 cloned piglets, all GTKO and carrying hCD55 and hCD59. Both hCD55 and hCD59 were expressed in fibroblast cells, but the expression levels of hCD55 and hCD59 were different among these piglets. Furthermore, piglet P5# had the highest expression of hCD55 and hCD59 in fibroblast cells than other piglets. Correspondingly, fibroblast cells of piglet P5# had significantly higher resistance against human serum-mediated cytolysis than those of piglet P11#. In conclusion, our results firstly provide support for improving efficiency of generating multiple genetically modified pig by recloning.

Entities:  

Keywords:  Diannan miniature pig; Recloning; Xenotransplantation; hCD55; hCD59

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Year:  2020        PMID: 32358721     DOI: 10.1007/s11248-020-00201-2

Source DB:  PubMed          Journal:  Transgenic Res        ISSN: 0962-8819            Impact factor:   2.788


  3 in total

1.  Construction of PIK3C3 Transgenic Pig and Its Pathogenesis of Liver Damage.

Authors:  Jing Wang; Sami Ullah Khan; Pan Cao; Xi Chen; Fengchong Wang; Di Zou; Honghui Li; Heng Zhao; Kaixiang Xu; Deling Jiao; Chang Yang; Feiyan Zhu; Yaxuan Zhang; Yanhua Su; Wenmin Cheng; Baoyu Jia; Yubo Qing; Muhammad Ameen Jamal; Hong-Ye Zhao; Hong-Jiang Wei
Journal:  Life (Basel)       Date:  2022-04-24

2.  Reproducible porcine model for kidney allotransplantation of low weight miniature pig.

Authors:  Min Zhang; Xin Zheng; Xin Zhang; Zijian Zhang; Xin Wang; Xiaopeng Hu
Journal:  Transl Androl Urol       Date:  2022-04

Review 3.  Extranuclear Inheritance of Mitochondrial Genome and Epigenetic Reprogrammability of Chromosomal Telomeres in Somatic Cell Cloning of Mammals.

Authors:  Marcin Samiec; Maria Skrzyszowska
Journal:  Int J Mol Sci       Date:  2021-03-18       Impact factor: 5.923

  3 in total

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