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Genome-wide CRISPR screens reveal a Wnt-FZD5 signaling circuit as a druggable vulnerability of RNF43-mutant pancreatic tumors.全基因组 CRISPR 筛选揭示了 Wnt-FZD5 信号通路作为 RNF43 突变型胰腺肿瘤的可靶向弱点。
Nat Med. 2017 Jan;23(1):60-68. doi: 10.1038/nm.4219. Epub 2016 Nov 21.
2
A CRISPR Dropout Screen Identifies Genetic Vulnerabilities and Therapeutic Targets in Acute Myeloid Leukemia.一项CRISPR基因敲除筛选确定了急性髓系白血病中的基因脆弱性和治疗靶点。
Cell Rep. 2016 Oct 18;17(4):1193-1205. doi: 10.1016/j.celrep.2016.09.079.
3
A Genome-wide CRISPR Screen in Toxoplasma Identifies Essential Apicomplexan Genes.一项针对弓形虫的全基因组CRISPR筛选鉴定出了顶复门寄生虫的必需基因。
Cell. 2016 Sep 8;166(6):1423-1435.e12. doi: 10.1016/j.cell.2016.08.019. Epub 2016 Sep 2.
4
Genetic dissection of Flaviviridae host factors through genome-scale CRISPR screens.通过全基因组CRISPR筛选对黄病毒科宿主因子进行遗传剖析。
Nature. 2016 Jul 7;535(7610):159-63. doi: 10.1038/nature18631. Epub 2016 Jun 17.
5
A Comprehensive, CRISPR-based Functional Analysis of Essential Genes in Bacteria.基于CRISPR的细菌必需基因综合功能分析
Cell. 2016 Jun 2;165(6):1493-1506. doi: 10.1016/j.cell.2016.05.003. Epub 2016 May 26.
6
Optimized sgRNA design to maximize activity and minimize off-target effects of CRISPR-Cas9.优化sgRNA设计以最大化CRISPR-Cas9的活性并最小化脱靶效应。
Nat Biotechnol. 2016 Feb;34(2):184-191. doi: 10.1038/nbt.3437. Epub 2016 Jan 18.
7
High-fidelity CRISPR-Cas9 nucleases with no detectable genome-wide off-target effects.具有不可检测的全基因组脱靶效应的高保真CRISPR-Cas9核酸酶。
Nature. 2016 Jan 28;529(7587):490-5. doi: 10.1038/nature16526. Epub 2016 Jan 6.
8
Rationally engineered Cas9 nucleases with improved specificity.具有更高特异性的理性设计的Cas9核酸酶。
Science. 2016 Jan 1;351(6268):84-8. doi: 10.1126/science.aad5227. Epub 2015 Dec 1.
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High-Resolution CRISPR Screens Reveal Fitness Genes and Genotype-Specific Cancer Liabilities.高分辨率 CRISPR 筛选揭示了适应性基因和基因型特异性的癌症易感性。
Cell. 2015 Dec 3;163(6):1515-26. doi: 10.1016/j.cell.2015.11.015. Epub 2015 Nov 25.
10
Identification and characterization of essential genes in the human genome.人类基因组中必需基因的鉴定与表征
Science. 2015 Nov 27;350(6264):1096-101. doi: 10.1126/science.aac7041. Epub 2015 Oct 15.

基于 CRISPR-Cas9 的弓形虫全基因组筛选。

CRISPR-Cas9-based genome-wide screening of Toxoplasma gondii.

机构信息

Whitehead Institute for Biomedical Research, Cambridge, Massachusetts, USA.

Department of Biology, Massachusetts Institute of Technology, Cambridge, Massachusetts, USA.

出版信息

Nat Protoc. 2018 Jan;13(1):307-323. doi: 10.1038/nprot.2017.131. Epub 2018 Jan 11.

DOI:10.1038/nprot.2017.131
PMID:29323662
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6548566/
Abstract

Apicomplexan parasites, such as Toxoplasma gondii, cause extensive morbidity and mortality in humans and livestock, highlighting the need for a deeper understanding of their molecular biology. Although techniques for the generation of targeted gene disruptions have long been available for apicomplexans, such methods are not readily scalable to the entire genome. We recently used CRISPR-Cas9 to disrupt all nuclear protein-coding genes in T. gondii using a pooled format. The method relies on transfection of a guide RNA library into parasites constitutively expressing Cas9. Here, we present the complete workflow of such a screen, including preparation of the guide RNA library, growth and testing of the recipient strain, generation of the mutant population, culture conditions for the screen, preparation of genomic DNA libraries, next-generation sequencing of the guide RNA loci, and analysis to detect fitness-conferring genes. This method can be deployed to study how culture conditions affect the repertoire of genes needed by parasites, which will enable studies of their metabolic needs, host specificity, and drug-resistance mechanisms. In addition, by manipulating the background in which the screen is performed, researchers will be able to investigate genetic interactions, which may help uncover redundancy or epistasis in the parasite genome. Using this method, a genome-wide screen and its analysis can be completed in 3 weeks, after ∼1 month of preparation to generate the library and grow the cells needed, making it a powerful tool for uncovering functionally important genes in apicomplexan parasites.

摘要

顶复门寄生虫,如刚地弓形虫,在人类和家畜中引起广泛的发病率和死亡率,这凸显了深入了解其分子生物学的必要性。尽管针对顶复门寄生虫的靶向基因敲除技术早已存在,但这些方法不易扩展到整个基因组。我们最近使用 CRISPR-Cas9 通过 pooled 格式对刚地弓形虫的所有核蛋白编码基因进行了敲除。该方法依赖于将向导 RNA 文库转染到持续表达 Cas9 的寄生虫中。在这里,我们展示了这种筛选的完整工作流程,包括向导 RNA 文库的制备、受体菌株的生长和测试、突变体群体的产生、筛选的培养条件、基因组 DNA 文库的制备、向导 RNA 基因座的下一代测序,以及用于检测赋予适应性的基因的分析。这种方法可用于研究培养条件如何影响寄生虫所需基因的组成,从而能够研究其代谢需求、宿主特异性和耐药机制。此外,通过操纵筛选所进行的背景,研究人员将能够研究遗传相互作用,这可能有助于揭示寄生虫基因组中的冗余或上位性。使用这种方法,在大约 1 个月的文库制备和细胞生长准备之后,可在 3 周内完成全基因组筛选及其分析,使其成为揭示顶复门寄生虫中功能重要基因的有力工具。