In vitro genome editing activity of Cas9 in somatic cells after random and transposonbased genomic Cas9 integration

被引:1
|
作者
Soellner, Jenny-Helena [1 ]
Sake, Hendrik Johannes [1 ]
Frenzel, Antje [1 ]
Lechler, Rita [1 ]
Herrmann, Doris [1 ]
Fuchs, Walter [2 ]
Petersen, Bjoern [1 ]
机构
[1] Friedrich Loeffler Inst, Inst Farm Anim Genet, Neustadt, Lower Saxony, Germany
[2] Friedrich Loeffler Inst, Inst Mol Virol & Cell Biol, Greifswald, Mecklenburg Wes, Germany
来源
PLOS ONE | 2022年 / 17卷 / 12期
关键词
GENETICALLY-MODIFIED PIGS; GENE; CRISPR/CAS9; MODEL; EFFICIENCY; LIVESTOCK; CANCER; MICE;
D O I
10.1371/journal.pone.0279123
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
Due to its close resemblance, the domesticated pig has proven to be a diverse animal model for biomedical research and genome editing tools have contributed to developing porcine models for several human diseases. By employing the CRISPR-Cas9 system, porcine embryos or somatic cells can be genetically modified to generate the desired genotype. However, somatic cell nuclear transfer (SCNT) of modified somatic cells and embryo manipulation are challenging, especially if the desired genotype is detrimental to the embryo. Direct in vivo edits may facilitate the production of genetically engineered pigs by integrating Cas9 into the porcine genome. Cas9 expressing cells were generated by either random integration or transposon-based integration of Cas9 and used as donor cells in SCNT. In total, 15 animals were generated that carried a transposon-based Cas9 integration and two pigs a randomly integrated Cas9. Cas9 expression was confirmed in muscle, tonsil, spleen, kidney, lymph nodes, oral mucosa, and liver in two boars. Overall, Cas9 expression was higher for transposon-based integration, except in tonsils and liver. To verify Cas9 activity, fibroblasts were subjected to in vitro genome editing. Isolated fibroblasts were transfected with guide RNAs (gRNA) targeting different genes (GGTA1, B4GALNT2, B2M) relevant to xenotransplantation. Next generation sequencing revealed that the editing efficiencies varied (2- 60%) between the different target genes. These results show that the integrated Cas9 remained functional, and that Cas9 expressing pigs may be used to induce desired genomic modifications to model human diseases or further evaluate in vivo gene therapy approaches.
引用
收藏
页数:16
相关论文
共 50 条
  • [31] A porcine model of phenylketonuria generated by CRISPR/Cas9 genome editing
    Koppes, Erik A.
    Redel, Bethany K.
    Johnson, Marie A.
    Skvorak, Kristen J.
    Ghaloul-Gonzalez, Lina
    Yates, Megan E.
    Lewis, Dale W.
    Gollin, Susanne M.
    Wu, Yijen L.
    Christ, Shawn E.
    Yerle, Martine
    Leshinski, Angela
    Spate, Lee D.
    Benne, Joshua A.
    Murphy, Stephanie L.
    Samuel, Melissa S.
    Walters, Eric M.
    Hansen, Sarah A.
    Wells, Kevin D.
    Lichter-Konecki, Uta
    Wagner, Robert A.
    Newsome, Joseph T.
    Dobrowolski, Steven F.
    Vockley, Jerry
    Prather, Randall S.
    Nicholls, Robert D.
    JCI INSIGHT, 2020, 5 (20)
  • [32] Optimized guide RNA structure for genome editing via Cas9
    Xu, Jianyong
    Lian, Wei
    Jia, Yuning
    Li, Lingyun
    Huang, Zhong
    ONCOTARGET, 2017, 8 (55) : 94166 - 94171
  • [33] A review on molecular scissoring with CRISPR/Cas9 genome editing technology
    Irfan, Muskan
    Majeed, Hammad
    Iftikhar, Tehreema
    Ravi, Pritam Kumar
    TOXICOLOGY RESEARCH, 2024, 13 (04)
  • [34] CRISPR/Cas9: A Practical Approach in Date Palm Genome Editing
    Sattar, Muhammad N.
    Iqbal, Zafar
    Tahir, Muhammad N.
    Shahid, Muhammad S.
    Khurshid, Muhammad
    Al-Khateeb, Abdullatif A.
    Al-Khateeb, Suliman A.
    FRONTIERS IN PLANT SCIENCE, 2017, 8
  • [35] Development of a CRISPR/Cas9 genome editing toolbox for Corynebacterium glutamicum
    Liu, Jiao
    Wang, Yu
    Lu, Yujiao
    Zheng, Ping
    Sun, Jibin
    Ma, Yanhe
    MICROBIAL CELL FACTORIES, 2017, 16
  • [36] CRISPR/Cas9 genome editing in ergot fungus Claviceps purpurea
    Kralova, Michaela
    Bergougnoux, Veronique
    Frebort, Ivo
    JOURNAL OF BIOTECHNOLOGY, 2021, 325 : 341 - 354
  • [37] Efficient Editing of an Adenoviral Vector Genome with CRISPR/Cas9
    Li, Qiang
    Wang, Hui
    Gong, Chen-yu
    Chen, Zhao
    Yang, Jia-xing
    Shao, Hong-wei
    Zhang, Wen-feng
    INDIAN JOURNAL OF MICROBIOLOGY, 2021, 61 (01) : 91 - 95
  • [38] Genome editing of Clostridium autoethanogenum using CRISPR/Cas9
    Nagaraju, Shilpa
    Davies, Naomi Kathleen
    Walker, David Jeffrey Fraser
    Kopke, Michael
    Simpson, Sean Dennis
    BIOTECHNOLOGY FOR BIOFUELS, 2016, 9
  • [39] Recent Advances in Genome Editing Using CRISPR/Cas9
    Ding, Yuduan
    Li, Hong
    Chen, Ling-Ling
    Xie, Kabin
    FRONTIERS IN PLANT SCIENCE, 2016, 7
  • [40] CRISPR/Cas9 editing genome of extremophile Halomonas spp.
    Qin, Qin
    Ling, Chen
    Zhao, Yiqing
    Yang, Tian
    Yin, Jin
    Guo, Yingying
    Chen, Guo Qiang
    METABOLIC ENGINEERING, 2018, 47 : 219 - 229