CRISPR-Based Editing Techniques for Genetic Manipulation of Primary T Cells

被引:8
|
作者
Kotowski, Mateusz [1 ]
Sharma, Sumana [1 ]
机构
[1] Univ Oxford, John Radcliffe Hosp, MRC Human Immunol Unit, Oxford OX3 9DS, England
基金
英国惠康基金;
关键词
primary T cells; CRISPR; Cas9; genome-editing; CAR-T cells; CHIMERIC-ANTIGEN-RECEPTOR; HIGHLY EFFICIENT; STEM; CD4(+); CCR5; CAR; DNA; INHIBITION; EXPRESSION; DISCOVERY;
D O I
10.3390/mps3040079
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
While clustered regularly interspaced short palindromic repeats (CRISPR)-based genome editing techniques have been widely adapted for use in immortalised immune cells, efficient manipulation of primary T cells has proved to be more challenging. Nonetheless, the rapid expansion of the CRISPR toolbox accompanied by the development of techniques for delivery of CRISPR components into primary T cells now affords the possibility to genetically manipulate primary T cells both with precision and at scale. Here, we review the key features of the techniques for primary T cell editing and discuss how the new generation of CRISPR-based tools may advance genetic engineering of these immune cells. This improved ability to genetically manipulate primary T cells will further enhance our fundamental understanding of cellular signalling and transcriptional networks in T cells and more importantly has the potential to revolutionise T cell-based therapies.
引用
收藏
页码:1 / 27
页数:28
相关论文
共 50 条
  • [31] CRISPR-based mapping of genetic interactions
    Ross Cloney
    Nature Reviews Genetics, 2017, 18 : 272 - 272
  • [32] CRISPR-based genetic diagnostics in microgravity
    Alon, Dan Mark
    Mittelman, Karin
    Stibbe, Eytan
    Countryman, Stefanie
    Stodieck, Louis
    Doraisingam, Shankini
    Martin, Dylan Mikeala Leal
    Hamo, Eliran Raphael
    Pines, Gur
    Burstein, David
    BIOSENSORS & BIOELECTRONICS, 2023, 237
  • [33] Progress of CRISPR-based programmable RNA manipulation and detection
    Wang, Beibei
    Yang, Hui
    WILEY INTERDISCIPLINARY REVIEWS-RNA, 2023, 14 (06)
  • [34] CRISPR-GE: A Convenient Software Toolkit for CRISPR-Based Genome Editing
    Xie, Xianrong
    Ma, Xingliang
    Zhu, Qinlong
    Zeng, Dongchang
    Li, Gousi
    Liu, Yao-Guang
    MOLECULAR PLANT, 2017, 10 (09) : 1246 - 1249
  • [35] Next-generation CRISPR-based gene drive supports genetic editing with selective precision
    不详
    INTERNATIONAL SUGAR JOURNAL, 2019, 121 (1446): : 411 - 412
  • [36] A Review on Advanced CRISPR-Based Genome-Editing Tools: Base Editing and Prime Editing
    Ali Saber Sichani
    Maryam Ranjbar
    Maryam Baneshi
    Farid Torabi Zadeh
    Jafar Fallahi
    Molecular Biotechnology, 2023, 65 : 849 - 860
  • [37] CRISPR-based engineering of phages for in situ bacterial base editing
    Nethery, Matthew A.
    Hidalgo-Cantabrana, Claudio
    Roberts, Avery
    Barrangou, Rodolphe
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2022, 119 (46)
  • [38] Strategies for Developing CRISPR-Based Gene Editing Methods in Bacteria
    Wu, Zhaowei
    Wang, Yujue
    Zhang, Yifei
    Chen, Weizhong
    Wang, Yu
    Ji, Quanjiang
    SMALL METHODS, 2020, 4 (02):
  • [39] A Review on Advanced CRISPR-Based Genome-Editing Tools: Base Editing and Prime Editing
    Sichani, Ali Saber
    Ranjbar, Maryam
    Baneshi, Maryam
    Zadeh, Farid Torabi
    Fallahi, Jafar
    MOLECULAR BIOTECHNOLOGY, 2023, 65 (06) : 849 - 860
  • [40] Transgenic mice for in vivo epigenome editing with CRISPR-based systems
    Matthew P. Gemberling
    Keith Siklenka
    Erica Rodriguez
    Katherine R. Tonn-Eisinger
    Alejandro Barrera
    Fang Liu
    Ariel Kantor
    Liqing Li
    Valentina Cigliola
    Mariah F. Hazlett
    Courtney A. Williams
    Luke C. Bartelt
    Victoria J. Madigan
    Josephine C. Bodle
    Heather Daniels
    Douglas C. Rouse
    Isaac B. Hilton
    Aravind Asokan
    Maria Ciofani
    Kenneth D. Poss
    Timothy E. Reddy
    Anne E. West
    Charles A. Gersbach
    Nature Methods, 2021, 18 : 965 - 974