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利用多嘌呤反向Hoogsteen发夹技术对点突变进行基因校正

Gene Correction of Point Mutations Using PolyPurine Reverse Hoogsteen Hairpins Technology.

作者信息

Félix Alex J, Solé Anna, Noé Véronique, Ciudad Carlos J

机构信息

Department of Biochemistry and Physiology, School of Pharmacy and Food Sciences, and Institute for Nanoscience and Nanotechnology (IN2UB), University of Barcelona, Barcelona, Spain.

出版信息

Front Genome Ed. 2020 Oct 29;2:583577. doi: 10.3389/fgeed.2020.583577. eCollection 2020.

DOI:10.3389/fgeed.2020.583577
PMID:34713221
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8525393/
Abstract

Monogenic disorders are often the result of single point mutations in specific genes, leading to the production of non-functional proteins. Different blood disorders such as ß-thalassemia, sickle cell disease, hereditary spherocytosis, Fanconi anemia, and Hemophilia A and B are usually caused by point mutations. Gene editing tools including TALENs, ZFNs, or CRISPR/Cas platforms have been developed to correct mutations responsible for different diseases. However, alternative molecular tools such as triplex-forming oligonucleotides and their derivatives (e.g., peptide nucleic acids), not relying on nuclease activity, have also demonstrated their ability to correct mutations in the DNA. Here, we review the Repair-PolyPurine Reverse Hoogsteen hairpins (PPRHs) technology, which can represent an alternative gene editing tool within this field. Repair-PPRHs are non-modified single-stranded DNA molecules formed by two polypurine mirror repeat sequences linked by a five-thymidine bridge, followed by an extended sequence at one end of the molecule which is homologous to the DNA sequence to be repaired but containing the corrected nucleotide. The two polypurine arms of the PPRH are bound by intramolecular reverse-Hoogsteen bonds between the purines, thus forming a hairpin structure. This hairpin core binds to polypyrimidine tracts located relatively near the target mutation in the dsDNA in a sequence-specific manner by Watson-Crick bonds, thus producing a triplex structure which stimulates recombination. This technology has been successfully employed to repair a collection of mutants of the and genes within their endogenous in mammalian cells and could be suitable for the correction of mutations responsible for blood disorders.

摘要

单基因疾病通常是特定基因单点突变的结果,导致产生无功能的蛋白质。不同的血液疾病,如β地中海贫血、镰状细胞病、遗传性球形红细胞增多症、范可尼贫血以及甲型和乙型血友病,通常由点突变引起。已经开发了包括转录激活样效应因子核酸酶(TALENs)、锌指核酸酶(ZFNs)或CRISPR/Cas平台在内的基因编辑工具来纠正导致不同疾病的突变。然而,诸如三链形成寡核苷酸及其衍生物(例如肽核酸)等不依赖核酸酶活性的替代分子工具,也已证明它们具有纠正DNA中突变的能力。在此,我们综述了修复性多嘌呤反向Hoogsteen发夹(PPRHs)技术,它可以代表该领域内一种替代的基因编辑工具。修复性PPRHs是由两个通过五个胸腺嘧啶桥连接的多嘌呤镜像重复序列形成的未修饰单链DNA分子,随后在分子的一端有一个延伸序列,该序列与要修复的DNA序列同源,但包含校正后的核苷酸。PPRH的两条多嘌呤臂通过嘌呤之间的分子内反向Hoogsteen键结合,从而形成发夹结构。这个发夹核心通过沃森-克里克键以序列特异性方式与双链DNA中位于目标突变相对较近位置的多嘧啶链结合,从而产生一个刺激重组的三链结构。该技术已成功用于修复哺乳动物细胞内源性环境中β珠蛋白和α珠蛋白基因的一系列突变体,并且可能适用于纠正导致血液疾病的突变。

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Biochem Pharmacol. 2020 May;175:113911. doi: 10.1016/j.bcp.2020.113911. Epub 2020 Mar 13.
2
Peptide Nucleic Acids and Gene Editing: Perspectives on Structure and Repair.肽核酸与基因编辑:结构与修复视角。
Molecules. 2020 Feb 8;25(3):735. doi: 10.3390/molecules25030735.
3
Correction of the aprt Gene Using Repair-Polypurine Reverse Hoogsteen Hairpins in Mammalian Cells.
在哺乳动物细胞中使用修复型聚嘌呤反向Hoogsteen发夹对aprt基因进行校正。
Mol Ther Nucleic Acids. 2020 Mar 6;19:683-695. doi: 10.1016/j.omtn.2019.12.015. Epub 2019 Dec 24.
4
Understanding the diversity of genetic outcomes from CRISPR-Cas generated homology-directed repair.理解 CRISPR-Cas 同源定向修复产生的遗传结果的多样性。
Commun Biol. 2019 Dec 6;2:458. doi: 10.1038/s42003-019-0705-y. eCollection 2019.
5
Efficient gene correction of an aberrant splice site in β-thalassaemia iPSCs by CRISPR/Cas9 and single-strand oligodeoxynucleotides.CRISPR/Cas9 和单链寡脱氧核苷酸高效纠正β-地中海贫血 iPSCs 中的异常剪接位点。
J Cell Mol Med. 2019 Dec;23(12):8046-8057. doi: 10.1111/jcmm.14669. Epub 2019 Oct 21.
6
CRISPR-Cas9 genome editing induces megabase-scale chromosomal truncations.CRISPR-Cas9 基因组编辑诱导兆碱基级别的染色体大片段缺失。
Nat Commun. 2019 Mar 8;10(1):1136. doi: 10.1038/s41467-019-09006-2.
7
Silencing PD-1 and PD-L1: the potential of PolyPurine Reverse Hoogsteen hairpins for the elimination of tumor cells.沉默程序性死亡蛋白1(PD-1)和程序性死亡配体1(PD-L1):聚嘌呤反向Hoogsteen发夹结构在消除肿瘤细胞方面的潜力
Immunotherapy. 2019 Apr;11(5):369-372. doi: 10.2217/imt-2018-0215.
8
Identification of preexisting adaptive immunity to Cas9 proteins in humans.鉴定人类对 Cas9 蛋白的预先存在的适应性免疫。
Nat Med. 2019 Feb;25(2):249-254. doi: 10.1038/s41591-018-0326-x. Epub 2019 Jan 28.
9
Effective CRISPR/Cas9-mediated correction of a Fanconi anemia defect by error-prone end joining or templated repair.通过易错末端连接或模板修复实现有效的 CRISPR/Cas9 介导的范可尼贫血缺陷校正。
Sci Rep. 2019 Jan 25;9(1):768. doi: 10.1038/s41598-018-36506-w.
10
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Nat Biotechnol. 2018 Nov 27. doi: 10.1038/nbt.4317.