Harnessing CRISPR-Cas adaptation for RNA recording and beyond

被引:1
|
作者
Oh, Gyeong-Seok [1 ]
An, Seongjin [1 ,2 ]
Kim, Sungchul [1 ]
机构
[1] Inst for Basic Sci Korea, Ctr RNA Res, Seoul 08826, South Korea
[2] Korea Univ, Sch Life Sci & Biotechnol, Dept Life Sci, Seoul 02841, South Korea
关键词
Cas1-Cas2; CRISPR adaptation; CRISPR-Cas; RNA re- cording; RT-fused Cas1; SPACER ACQUISITION; EVOLUTIONARY CLASSIFICATION; PROTEIN CLEAVAGE; STRUCTURAL BASIS; HOST FACTOR; INTEGRATION; COMPLEX; IMMUNITY; SYSTEMS; BINDING;
D O I
10.5483/BMBRep.2023-0050
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Prokaryotes encode clustered regularly interspaced short palindromic repeat (CRISPR) arrays and CRISPR-associated (Cas) genes as an adaptive immune machinery. CRISPR-Cas systems effectively protect hosts from the invasion of foreign enemies, such as bacteriophages and plasmids. During a process called 'adaptation', non-self-nucleic acid fragments are acquired as spacers between repeats in the host CRISPR array, to establish immunological memory. The highly conserved Cas1-Cas2 complexes function as molecular recorders to integrate spacers in a time course manner, which can subsequently be expressed as crRNAs complexed with Cas effector proteins for the RNAguided interference pathways. In some of the RNA-targeting type III systems, Cas1 proteins are fused with reverse transcriptase (RT), indicating that RT-Cas1-Cas2 complexes can acquire RNA transcripts for spacer acquisition. In this review, we summarize current studies that focus on the molecular structure and function of the RT-fused Cas1-Cas2 integrase, and its potential applications as a directional RNA-recording tool in cells. Furthermore, we highlight outstanding questions for RT-Cas1-Cas2 studies and future directions for RNA-recording CRISPR technologies. [BMB Reports 2024; 57(1): 40-49]
引用
收藏
页码:40 / 49
页数:10
相关论文
共 50 条
  • [21] Harnessing CRISPR-Cas system diversity for gene editing technologies
    McKay, Alexander
    Burgio, Gaetan
    JOURNAL OF BIOMEDICAL RESEARCH, 2021, 35 (02): : 91 - 106
  • [22] Cas6 specificity and CRISPR RNA loading in a complex CRISPR-Cas system
    Sokolowski, Richard D.
    Graham, Shirley
    White, Malcolm F.
    NUCLEIC ACIDS RESEARCH, 2014, 42 (10) : 6532 - 6541
  • [23] Single cell variability of CRISPR-Cas interference and adaptation
    McKenzie, Rebecca E.
    Keizer, Emma M.
    Vink, Jochem N. A.
    van Lopik, Jasper
    Buke, Ferhat
    Kalkman, Vera
    Fleck, Christian
    Tans, Sander J.
    Brouns, Stan J. J.
    MOLECULAR SYSTEMS BIOLOGY, 2022, 18 (04)
  • [24] Improvements in the genetic editing technologies: CRISPR-Cas and beyond
    Mingarro, Gerard
    li del Olmo, Marcel
    GENE, 2023, 852
  • [25] Development of CRISPR-Cas systems for genome editing and beyond
    Zhang, F.
    QUARTERLY REVIEWS OF BIOPHYSICS, 2019, 52
  • [26] The roles of CRISPR-Cas systems in adaptive immunity and beyond
    Barrangou, Rodolphe
    CURRENT OPINION IN IMMUNOLOGY, 2015, 32 : 36 - 41
  • [27] Harnessing CRISPR-Cas systems for precision engineering of designer probiotic lactobacilli
    Goh, Yong Jun
    Barrangou, Rodolphe
    CURRENT OPINION IN BIOTECHNOLOGY, 2019, 56 : 163 - 171
  • [28] CRISPR-Cas systems and RNA-guided interference
    Barrangou, Rodolphe
    WILEY INTERDISCIPLINARY REVIEWS-RNA, 2013, 4 (03) : 267 - 278
  • [29] RNA-Targeting CRISPR-Cas Systems and Their Applications
    Burmistrz, Michal
    Krakowski, Kamil
    Krawczyk-Balska, Agata
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2020, 21 (03)
  • [30] A Small RNA Is Linking CRISPR-Cas and Zinc Transport
    Markle, Pascal
    Maier, Lisa-Katharina
    Maass, Sandra
    Hirschfeld, Claudia
    Bartel, Jurgen
    Becher, Dorte
    Voss, Bjorn
    Marchfelder, Anita
    FRONTIERS IN MOLECULAR BIOSCIENCES, 2021, 08