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CRISPR 效应因子 Cam1 介导细胞膜去极化以防御噬菌体。

The CRISPR effector Cam1 mediates membrane depolarization for phage defence.

机构信息

Laboratory of Bacteriology, The Rockefeller University, New York, NY, USA.

Tri-Institutional PhD Program in Chemical Biology, Weill Cornell Medical College, Rockefeller University and Memorial Sloan Kettering Cancer Center, New York, NY, USA.

出版信息

Nature. 2024 Jan;625(7996):797-804. doi: 10.1038/s41586-023-06902-y. Epub 2024 Jan 10.

DOI:10.1038/s41586-023-06902-y
Abstract

Prokaryotic type III CRISPR-Cas systems provide immunity against viruses and plasmids using CRISPR-associated Rossman fold (CARF) protein effectors. Recognition of transcripts of these invaders with sequences that are complementary to CRISPR RNA guides leads to the production of cyclic oligoadenylate second messengers, which bind CARF domains and trigger the activity of an effector domain. Whereas most effectors degrade host and invader nucleic acids, some are predicted to contain transmembrane helices without an enzymatic function. Whether and how these CARF-transmembrane helix fusion proteins facilitate the type III CRISPR-Cas immune response remains unknown. Here we investigate the role of cyclic oligoadenylate-activated membrane protein 1 (Cam1) during type III CRISPR immunity. Structural and biochemical analyses reveal that the CARF domains of a Cam1 dimer bind cyclic tetra-adenylate second messengers. In vivo, Cam1 localizes to the membrane, is predicted to form a tetrameric transmembrane pore, and provides defence against viral infection through the induction of membrane depolarization and growth arrest. These results reveal that CRISPR immunity does not always operate through the degradation of nucleic acids, but is instead mediated via a wider range of cellular responses.

摘要

原核 III 型 CRISPR-Cas 系统利用 CRISPR 相关的 Rossman 折叠 (CARF) 蛋白效应器来抵抗病毒和质粒。对与 CRISPR RNA 向导互补的这些入侵转录物的识别会导致环二核苷酸的产生,后者与 CARF 结构域结合并触发效应器结构域的活性。虽然大多数效应器降解宿主和入侵核酸,但有些被预测含有没有酶功能的跨膜螺旋。这些 CARF-跨膜螺旋融合蛋白是否以及如何促进 III 型 CRISPR-Cas 免疫反应尚不清楚。在这里,我们研究了环二核苷酸激活的膜蛋白 1 (Cam1) 在 III 型 CRISPR 免疫中的作用。结构和生化分析表明,Cam1 二聚体的 CARF 结构域结合环四腺苷酸第二信使。在体内,Cam1 定位于膜上,预测形成四聚体跨膜孔,并通过诱导膜去极化和生长停滞提供抗病毒感染的防御。这些结果表明,CRISPR 免疫并不总是通过核酸的降解来发挥作用,而是通过更广泛的细胞反应来介导。

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本文引用的文献

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Csx28 is a membrane pore that enhances CRISPR-Cas13b-dependent antiphage defense.Csx28 是一种膜孔,可增强依赖于 CRISPR-Cas13b 的抗噬菌体防御。
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AlphaFold Protein Structure Database: massively expanding the structural coverage of protein-sequence space with high-accuracy models.AlphaFold 蛋白质结构数据库:用高精度模型极大地扩展蛋白质序列空间的结构覆盖范围。
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The gRAMP CRISPR-Cas effector is an RNA endonuclease complexed with a caspase-like peptidase.
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Nucleic acid recognition during prokaryotic immunity.原核生物免疫过程中的核酸识别
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Cas10 relieves host growth arrest to facilitate spacer retention during type III-A CRISPR-Cas immunity.在III-A型CRISPR-Cas免疫过程中,Cas10可解除宿主生长停滞,以促进间隔序列保留。
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The CRISPR-associated adenosine deaminase Cad1 converts ATP to ITP to provide antiviral immunity.与CRISPR相关的腺苷脱氨酶Cad1将ATP转化为ITP以提供抗病毒免疫力。
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Bioinformatic analysis of type III CRISPR systems reveals key properties and new effector families.生物信息学分析 III 型 CRISPR 系统揭示了关键特性和新的效应子家族。
Nucleic Acids Res. 2024 Jul 8;52(12):7129-7141. doi: 10.1093/nar/gkae462.
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CRISPR antiphage defence mediated by the cyclic nucleotide-binding membrane protein Csx23.环状核苷酸结合膜蛋白 Csx23 介导的 CRISPR 抗噬菌体防御。
Nucleic Acids Res. 2024 Apr 12;52(6):2761-2775. doi: 10.1093/nar/gkae167.
10
The Cas10 nuclease activity relieves host dormancy to facilitate spacer acquisition and retention during type III-A CRISPR immunity.Cas10核酸酶活性可解除宿主休眠状态,以促进III-A型CRISPR免疫过程中的间隔序列获取和保留。
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gRAMP CRISPR-Cas效应器是一种与半胱天冬酶样肽酶复合的RNA内切核酸酶。
Science. 2021 Sep 17;373(6561):1349-1353. doi: 10.1126/science.abk2718. Epub 2021 Aug 26.
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The Card1 nuclease provides defence during type III CRISPR immunity.CRISPR 系统中的 Cas1 核酸酶提供了 III 型防御机制。
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