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I 型 Cas3 核酸酶的金属依赖性和功能多样性

Metal Dependence and Functional Diversity of Type I Cas3 Nucleases.

机构信息

Department of Biochemistry, Brandeis University, Waltham, Massachusetts 02453, United States.

Yale University, New Haven, Connecticut 06520-8055, United States.

出版信息

Biochemistry. 2022 Mar 1;61(5):327-338. doi: 10.1021/acs.biochem.1c00779. Epub 2022 Feb 21.

Abstract

Type I CRISPR-Cas systems provide prokaryotes with protection from parasitic genetic elements by cleaving foreign DNA. In addition, they impact bacterial physiology by regulating pathogenicity and virulence, making them key players in adaptability and evolution. The signature nuclease Cas3 is a phosphodiesterase belonging to the HD-domain metalloprotein superfamily. By directing specific metal incorporation, we map a promiscuous metal ion cofactor profile for Cas3 from (). Cas3 affords significant ssDNA cleavage with four homo-dimetal centers (Fe, Co, Mn, and Ni), while the diferrous form is the most active and likely biologically relevant in vivo. Electron paramagnetic resonance (EPR) spectroscopy and Mössbauer spectroscopy show that the diiron cofactor can access three redox forms, while the diferrous form can be readily obtained with mild reductants. We further employ EPR and Mössbauer on Fe-enriched proteins to establish that Cas3″ enzymes harbor a dinuclear cofactor, which was not previously confirmed. We demonstrate that the ancillary His ligand is critical for efficient ssDNA cleavage but not for diiron assembly or small molecule hydrolysis. We further explore the ability of Cas3 to hydrolyze cyclic mononucleotides and show that Cas3 hydrolyzes 2'3'-cAMP with catalytic efficiency comparable to that of the conserved virulence factor A (CvfA), an HD-domain protein hydrolyzing 2'3'-cylic phosphodiester bonds at RNA 3'-termini. Because this CvfA activity is linked to virulence regulation, Cas3 may also utilize 2'3'-cAMP hydrolysis as a possible molecular route to control virulence.

摘要

I 型 CRISPR-Cas 系统通过切割外来 DNA 为原核生物提供了对寄生遗传元件的保护。此外,它们通过调节致病性和毒性来影响细菌生理学,使它们成为适应性和进化的关键因素。特征性核酸酶 Cas3 是一种属于 HD 结构域金属蛋白酶超家族的磷酸二酯酶。通过指导特定的金属掺入,我们为 Cas3 从 () 中绘制了一个混杂的金属离子辅因子图谱。Cas3 具有四个同型二金属中心 (Fe、Co、Mn 和 Ni),可提供显著的单链 DNA 切割,而亚铁形式在体内最活跃且可能具有生物学相关性。电子顺磁共振 (EPR) 光谱和穆斯堡尔光谱表明,二铁辅因子可以进入三种氧化还原形式,而亚铁形式可以用温和的还原剂很容易获得。我们进一步在富含铁的蛋白质上使用 EPR 和穆斯堡尔光谱来确定 Cas3″ 酶含有双核辅因子,这以前没有得到证实。我们证明,辅助 His 配体对于有效切割单链 DNA 至关重要,但对于二铁组装或小分子水解则不是必需的。我们进一步探索了 Cas3 水解环单核苷酸的能力,并表明 Cas3 可以水解 2'3'-cAMP,其催化效率可与保守的毒力因子 A (CvfA) 相媲美,CvfA 是一种水解 RNA 3'-末端 2'3'-环磷酸二酯键的 HD 结构域蛋白。由于这种 CvfA 活性与毒力调节有关,Cas3 也可能利用 2'3'-cAMP 水解作为控制毒力的可能分子途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/695d/9109717/9870e05bf6fb/nihms-1785098-f0002.jpg

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