Advances in site-specific gene editing for primary immune deficiencies

被引:4
|
作者
Kuo, Caroline Y. [1 ]
机构
[1] Univ Calif Los Angeles, David Geffen Sch Med, Div Allergy Immunol & Rheumatol, Dept Pediat, Los Angeles, CA 90095 USA
关键词
clustered regularly interspaced short palindromic repeats-associated protein 9; transcription activator-like effector nuclease; zinc finger nuclease; gene editing; primary immunodeficiency; programmable nucleases; HEMATOPOIETIC STEM-CELLS; SUSTAINED CORRECTION; MURINE MODEL; THERAPY; IMMUNODEFICIENCY; REPAIR;
D O I
10.1097/ACI.0000000000000483
中图分类号
R392 [医学免疫学];
学科分类号
100102 ;
摘要
Purpose of review Conventional gene therapy has been a successful, curative treatment modality for many primary immune deficiencies with significant improvements in the last decade. However, the risk of leukemic transformation with viral-mediated gene addition still remains, and unregulated gene addition is not an option for certain diseases in which the target gene is closely controlled. The recent bloom in genome modification platforms has created the opportunity to site-specifically correct mutated DNA base pairs or insert a corrective cDNA minigene while maintaining gene expression under control of endogenous regulatory elements. Recent findings There is an abundance of ongoing research utilizing programmable nucleases to facilitate site-specific gene correction of many primary immune deficiencies including X-linked severe combined immune deficiency, X-linked chronic granulomatous disease, Wiskott-Aldrich syndrome, X-linked hyper-IgM syndrome, X-linked agammaglobulinemia, and immune dysregulation, polyendocrinopathy, enteropathy, X-linked. In all, these studies have demonstrated the ability to integrate corrective DNA sequences at a precise location in the genome at rates likely to either cure or ameliorate disease. Gene editing for primary immune deficiency (PID) has advanced to the point to that translation to clinical trials is likely to occur in the next several years. At the current pace of research in DNA repair mechanisms, stem cell biology, and genome-editing technology, targeted genome modification represents the next chapter of gene therapy for PID.
引用
收藏
页码:453 / 458
页数:6
相关论文
共 50 条
  • [41] SITE-SPECIFIC INSERTION OF GENE CASSETTES INTO INTEGRONS
    COLLIS, CM
    GRAMMATICOPOULOS, G
    BRITON, J
    STOKES, HW
    HALL, RM
    MOLECULAR MICROBIOLOGY, 1993, 9 (01) : 41 - 52
  • [42] Site-specific genomic strategies for gene therapy
    Portlock, JL
    Calos, MP
    CURRENT OPINION IN MOLECULAR THERAPEUTICS, 2003, 5 (04) : 376 - 382
  • [43] AN EFFICIENT AND SITE-SPECIFIC GENE TRIMMING METHOD
    EUN, HM
    KANG, Y
    KANG, SM
    BAE, YS
    YOON, JW
    BIOTECHNIQUES, 1989, 7 (05) : 506 - 510
  • [44] A tool for site-specific gene repairing: Chimerplasty
    Ouyang, LM
    Zhang, SL
    Liu, ZM
    PROGRESS IN BIOCHEMISTRY AND BIOPHYSICS, 2001, 28 (03) : 322 - 325
  • [45] Site-specific gene therapy for cardiovascular disease
    Fishbein, Ilia
    Chorny, Michael
    Levy, Robert J.
    CURRENT OPINION IN DRUG DISCOVERY & DEVELOPMENT, 2010, 13 (02) : 203 - 213
  • [46] Local neurochemicals and site-specific immune regulation in the CNS
    McCluskey, LP
    Lampson, LA
    JOURNAL OF NEUROPATHOLOGY AND EXPERIMENTAL NEUROLOGY, 2000, 59 (03): : 177 - 187
  • [47] Locally sourced: site-specific immune barriers to metastasis
    Ana Luísa Correia
    Nature Reviews Immunology, 2023, 23 : 522 - 538
  • [48] A circularly permuted CasRx platform for efficient, site-specific RNA editing
    Wang, Yuanming
    Liu, Kaiwen Ivy
    Liu, Mengying Mandy
    Ooi, Kean Hean
    Nguyen, Tram Anh
    Chee, Jiunn En
    Teo, Shun Xiang Danny
    He, Shan
    Tay, Jie Wen Douglas
    Teo, Seok Yee
    Liew, Kai Shin
    Ge, Xiao Yu
    Ng, Zhi Jian
    Avagyan, Hasmik
    Liu, Hao
    Yi, Zirong
    Chang, Keziah
    Kok, Eng Piew Louis
    Chen, Runjia
    Yau, Chun En
    Koh, Jun Wei
    Wan, Yue
    Tan, Meng How
    NATURE BIOTECHNOLOGY, 2024,
  • [49] Species- and site-specific genome editing in complex bacterial communities
    Benjamin E. Rubin
    Spencer Diamond
    Brady F. Cress
    Alexander Crits-Christoph
    Yue Clare Lou
    Adair L. Borges
    Haridha Shivram
    Christine He
    Michael Xu
    Zeyi Zhou
    Sara J. Smith
    Rachel Rovinsky
    Dylan C. J. Smock
    Kimberly Tang
    Trenton K. Owens
    Netravathi Krishnappa
    Rohan Sachdeva
    Rodolphe Barrangou
    Adam M. Deutschbauer
    Jillian F. Banfield
    Jennifer A. Doudna
    Nature Microbiology, 2022, 7 : 34 - 47
  • [50] Species- and site-specific genome editing in complex bacterial communities
    Rubin, Benjamin E.
    Diamond, Spencer
    Cress, Brady F.
    Crits-Christoph, Alexander
    Lou, Yue Clare
    Borges, Adair L.
    Shivram, Haridha
    He, Christine
    Xu, Michael
    Zhou, Zeyi
    Smith, Sara J.
    Rovinsky, Rachel
    Smock, Dylan C. J.
    Tang, Kimberly
    Owens, Trenton K.
    Krishnappa, Netravathi
    Sachdeva, Rohan
    Barrangou, Rodolphe
    Deutschbauer, Adam M.
    Banfield, Jillian F.
    Doudna, Jennifer A.
    NATURE MICROBIOLOGY, 2022, 7 (01) : 34 - +