CRISPR-Cas9: A Precise Approach to Genome Engineering

被引:0
作者
Jorge E. Simón
Ángel S. Rodríguez
Nelson Santiago Vispo
机构
[1] Yachay Tech University,School of Biological Sciences and Engineering
来源
Therapeutic Innovation & Regulatory Science | 2018年 / 52卷
关键词
CRISPR-Cas9; NGS; bacterial adaptive defense system; genetic engineering; clinical trials;
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学科分类号
摘要
In the last few decades, genomic manipulation has made significant progress as a result of the development of recombinant DNA technologies; however, more often than not, these techniques have been costly and labor intensive. In contrast, recently developed next-generation sequencing (NGS) technologies have provided a cheaper, faster, and easier process to study genomics. In particular, an NGS technique emerged from bacterial CRISPR-associated protein-9 nuclease (Cas9) as a revolutionary method to modify, regulate, or mark specific genomic sequences on virtually any organism. A later adaptation of this bacterial defense mechanism that successfully and permanently edits dysfunctional genes and corrects missing proteins has resulted in a new era for disease genetic engineering. Clinical trials using this technique are already being performed, and the applicability of CRISPR-Cas9 techniques is actively being investigated using in vivo studies. However, the concept of genome correction poses great concerns from a regulatory perspective, especially in terms of security, so principles for the regulation of these methodologies are being established. We delved into CRISPR-Cas9 from its natural and ortholog origins to its engineered variants and behaviors to present its notable and diverse applications in the fields of biotechnology and human therapeutics.
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页码:701 / 707
页数:6
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  • [1] Hsu PD(2014)Development and applications of CRISPR-Cas9 for genome engineering Cell 157 1262-1278
  • [2] Lander ES(2015)High-throughput functional genomics using CRISPR-Cas9 Nat Rev Genet 16 299-246
  • [3] Zhang F(2000)Biological significance of a family of regularly spaced repeats in the genomes of archaea, bacteria and mitochondria Mol Microbiol 36 244-496
  • [4] Shalem O(2002)A DNA repair system specific for thermophilic archaea and bacteria predicted by genomic context analysis Nucleic Acids Res 30 482-6186
  • [5] Sanjana NE(2004)A novel nuclease-ATPase (Nar71) from archaea is part of a proposed thermophilic DNA repair system Nucleic Acids Res 32 6176-2561
  • [6] Zhang F(2005)Clustered regularly interspaced short palindrome repeats (CRISPRs) have spacers of extrachromosomal origin Microbiology 151 2551-663
  • [7] Mojica FJ(2005)CRISPR elements in Microbiology 151 653-1575
  • [8] Díez-Villaseñor C(2002) acquire new repeats by preferential uptake of bacteriophage DNA, and provide additional tools for evolutionary studies Mole Microbiol 43 1565-223
  • [9] Soria E(2015)Identification of genes that are associated with DNA repeats in prokaryotes Journal of Biosciences 40 221-477
  • [10] Juez G(2011)What history tells us XXXVII. CRISPR-Cas: The discovery of an immune system in prokaryotes Nat Rev Microbiol 9 467-821