病毒团队合作将CRISPR推向突破点
Philip M Nussenzweig1, Luciano A Marraffini1
1Laboratory of Bacteriology, The Rockefeller University, 1230 York Ave, New York, NY 10065, USA.
Cell
|August 11, 2018
概括
病毒使用抑制剂来逃避CRISPR免疫系统, 但这些并非立即有效. 连续感染会削弱宿主,使病毒能够成功抑制CRISPR免疫力.
科学领域:
- 微生物学
- 免疫学
- 分子生物学
背景情况:
- CRISPR-Cas系统提供了对外基因元素的适应性免疫力.
- 病毒已经开发出复杂的机制,包括抗CRISPR蛋白,以对抗CRISPR-Cas监控.
- 病毒抑制剂的有效性通常受其相对于感染开始的表达动力学限制.
研究的目的:
- 研究连续性病毒感染对宿主易受CRISPR-Cas干扰的影响.
- 阐明病毒随着时间的推移克服CRISPR免疫力的机制.
- 了解病毒进化和 prokaryotic 免疫反应之间的相互作用.
主要方法:
- 使用细菌遗传学和分子生物学技术.
- 使用细菌的时间感染实验.
- 分析抗CRISPR蛋白和CRISPR-Cas系统组件的基因表达.
主要成果:
- 发现连续的病毒感染会逐渐削弱宿主的CRISPR免疫反应.
- 病毒抗CRISPR蛋白的表达,虽然最初缓慢,但在重复感染的情况下变得有效.
- 宿主免疫抑制促进了病毒的成功复制,否则它们会被CRISPR免疫清除.
结论:
- 连续感染是克服CRISPR-Cas免疫力的可行病毒策略.
- 通过反复接触病毒,逐渐抑制宿主免疫力,使病毒能够有效逃生.
- 这项研究突显了病毒和原生体适应性免疫之间的动态进化军备竞赛.
相关概念视频
CRISPR
58.0K
Genome editing technologies allow scientists to modify an organism’s DNA via the addition, removal, or rearrangement of genetic material at specific genomic locations. These types of techniques could potentially be used to cure genetic disorders such as hemophilia and sickle cell anemia. One popular and widely used DNA-editing research tool that could lead to safe and effective cures for genetic disorders is the CRISPR-Cas9 system. CRISPR-Cas9 stands for Clustered Regularly Interspaced...
58.0K
CRISPR and crRNAs
19.1K
Bacteria and archaea are susceptible to viral infections just like eukaryotes; therefore, they have developed a unique adaptive immune system to protect themselves. Clustered regularly interspaced short palindromic repeats and CRISPR-associated proteins (CRISPR-Cas) are present in more than 45% of known bacteria and 90% of known archaea.
The CRISPR-Cas system stores a copy of foreign DNA in the host genome and uses it to identify the foreign DNA upon reinfection. CRISPR-Cas has three different...
The CRISPR-Cas system stores a copy of foreign DNA in the host genome and uses it to identify the foreign DNA upon reinfection. CRISPR-Cas has three different...
19.1K
Fixing Double-strand Breaks
14.8K
The double-stranded structure of DNA has two major advantages. First, it serves as a safe repository of genetic information where one strand serves as the back-up in case the other strand is damaged. Second, the double-helical structure can be wrapped around proteins called histones to form nucleosomes, which can then be tightly wound to form chromosomes. This way, DNA chains up to 2 inches long can be contained within microscopic structures in a cell. A double-stranded break not only damages...
14.8K
Fixing Double-strand Breaks
4.4K
4.4K
Viral Recombination
25.2K
Cells are sometimes infected by more than one virus at once. When two viruses disassemble to expose their genomes for replication in the same cell, similar regions of their genomes can pair together and exchange sequences in a process called recombination. Alternatively, viruses with segmented genomes can swap segments in a process called reassortment.
25.2K
Viral Structure
74.7K
Viruses are extraordinarily diverse in shape and size, but they all have several structural features in common. All viruses have a core that contains a DNA- or RNA-based genome. The core is surrounded by a protective coat of proteins called the capsid. The capsid is composed of subunits called capsomeres. The capsid and genome-containing core are together known as the nucleocapsid.
74.7K


