Genome editing tools to modify immune cells

被引:0
|
作者
Stoczynska-Fidelus, Ewelina [1 ,2 ,3 ]
Rieske, Piotr [2 ,3 ,4 ]
机构
[1] Uniwersytet Med, Katedra Biol Med, Zaklad Biol Mol, Lodz, Poland
[2] Celther Polska Sp Zoo, Lab Naukowo Badawcze, Konstantynow Lodzki, Poland
[3] Personather Sp Zoo, Konstantynow Lodzki, Poland
[4] Uniwersytet Med, Katedra Biol Med, Zaklad Biol Nowotworow, Lodz, Poland
关键词
TALEN; CRISPR-CAS9; prime editing; CAR-T; RNA; CRISPR/CAS9; LOCI; TALE;
D O I
10.5114/pja.2021.111800
中图分类号
R392 [医学免疫学];
学科分类号
100102 ;
摘要
Techniques such as TALEN, CRISPR-CAS9 or prime editing (PE) can be used to edit the genome of various cells. Nevertheless, the genomes of hematopoietic stem cells and cells of the immune system may soon be edited more frequently for therapeutic purposes. This is due to the characteristics of blood and marrow as a tissue devoid of very complicated three-dimensional structures. In addition, induced pluripotent cells (iPSc), which are considered a source of cells with therapeutic potential, continue to pose a threat due to the developing teratomas. Moreover, knock out editing is easier than editing that changes the mutant gene to the correct one. Whereas cells such as CAR-T or virus-infected cells represent high-value targets for knockout genome editing systems in therapy. Immune system cells also seem to be particularly suitable as starting points for the creation of completely new cell types thanks to synthetic biology, in which genome editing techniques play an important role. All this makes CRISPR-CAS9 or PE more and more interesting for immunologists. The article discusses the basics of these techniques and explains the reasons for their imperfections.
引用
收藏
页码:175 / 182
页数:8
相关论文
共 50 条
  • [41] Genome editing tools based improved applications in macrofungi
    Jain, Deepali
    Kalia, Anu
    Sharma, Shivani
    Manchanda, Pooja
    MOLECULAR BIOLOGY REPORTS, 2024, 51 (01)
  • [42] Evaluation of genome and base editing tools in maize protoplasts
    Fierlej, Yannick
    Jacquier, Nathanael M. A.
    Guille, Loic
    Just, Jeremy
    Montes, Emilie
    Richard, Christelle
    Loue-Manifel, Jeanne
    Depege-Fargeix, Nathalie
    Gaillard, Antoine
    Widiez, Thomas
    Rogowsky, Peter M.
    FRONTIERS IN PLANT SCIENCE, 2022, 13
  • [43] The power and versatility of genome editing tools in crop improvement
    Xia, Lanqin
    Wang, Kejian
    Zhu, Jian-Kang
    JOURNAL OF INTEGRATIVE PLANT BIOLOGY, 2021, 63 (09) : 1591 - 1594
  • [44] Dissecting diabetes/metabolic disease mechanisms using pluripotent stem cells and genome editing tools
    Teo, Adrian Kee Keong
    Gupta, Manoj K.
    Doria, Alessandro
    Kulkarni, Rohit N.
    MOLECULAR METABOLISM, 2015, 4 (09): : 593 - 604
  • [45] 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
  • [46] 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
  • [47] Editorial: Genome editing in stem cells
    Bayarsaikhan, Delger
    Poletto, Edina
    FRONTIERS IN GENOME EDITING, 2024, 6
  • [48] Genome Editing in Human Stem Cells
    Byrne, Susan M.
    Mali, Prashant
    Church, George M.
    USE OF CRISPR/CAS9, ZFNS, AND TALENS IN GENERATING SITE-SPECIFIC GENOME ALTERATIONS, 2014, 546 : 119 - 138
  • [49] Genome editing in haematopoietic stem cells
    Linda Koch
    Nature Reviews Genetics, 2014, 15 (7) : 442 - 442
  • [50] Prokaryotic Argonaute proteins: novel genome-editing tools?
    Hegge, Jorrit W.
    Swarts, Daan C.
    van der Oost, John
    NATURE REVIEWS MICROBIOLOGY, 2018, 16 (01) : 5 - 11