Analyses of Homing Endonucleases and Mechanism of Action of CRISPR-Cas9 HNH Endonucleases

P. Palanivelu
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引用次数: 1

Abstract

Aim: To analyze different HNH endonucleases from various sources including the HNH endonuclease regions of CRISPR-Cas9 proteins for their conserved motifs, metal-binding sites and catalytic amino acids and propose a plausible mechanism of action for HNH endonucleases, using CRISPR-Cas9 as the model enzyme. Study Design: Multiple sequence analysis (MSA) of homing endonucleases including the CRISPR-Cas9 using Clustal Omega was studied. Other biochemical, Site-directed mutagenesis (SDM) and X-ray crystallographic data were also analyzed. Place and Duration of Study: School of Biotechnology, Madurai Kamaraj University, Madurai, India, between 2007 and 2013. Methodology: Bioinformatics, Biochemical, SDM and X-ray crystallographic data of the HNH endonucleases from different organisms including CRISPR-Cas9 enzymes were analyzed. The advanced version of Clustal Omega was used for protein sequence analysis of different HNH endonucleases from various sources. The conserved motifs identified by the bioinformatics analysis were analyzed further with the data already available from biochemical and SDM and Xray crystallographic analyses of this group of enzymes and to confirm the possible amino acids involved in the active sites and catalysis. Results: Different types of homing endonucleases from various sources including the HNH endonuclease regions of CRISPR-Cas9 enzymes exhibit different catalytic regions and metalOriginal Research Article Palanivelu; IJBCRR, 29(6): 1-25, 2020; Article no.IJBCRR.57357 2 binding sites. However, the catalytic amino acid, i.e., the proton acceptor histidine (His), is completely conserved in all homing endonucleases analyzed. From these data, a plausible mechanism of action for HNH endonucleases, using CRISPR-Cas9 from Streptococcus pyogenes, as the model enzyme is proposed. Furthermore, multiple sequence alignment (MSA) of various homing endonucleases from different organisms showed many highly conserved motifs also among them. However, some of the HNH endonucleases showed consensus only around the active site regions. Possible catalytic amino acids identified among them belong to either -DH---N or -HH--N types. There are at least two types of metal-binding sites and bind Mg or Zn or both. The CRISPR-Cas9 enzyme from S. pyogenes belongs to the -DHbased HNH endonucleases and possesses –DxDtype metal-binding site where it possibly binds to a Mg 2+ ion. The other HNH enzymes possess one or two invariant Zn binding CxxC/ CxxxC motifs. Conclusions: The CRISPR-Cas9 enzymes are found to be -DHtype where the first D is likely to involve in metal-binding and the second invariant H acts as the proton acceptor and the N in –HNHCas9 confers specificity by interacting with the nucleotide near the catalytic region. In this communication, a metal-bound water molecule is shown as the nucleophile initiating catalysis. Homing endonucleases may be used as novel DNA binding and cleaving reagents for a variety of genome editing applications and Zinc finger nucleases have already found applications in genome editing.
归巢内切酶分析及CRISPR-Cas9 HNH内切酶的作用机制
目的:以CRISPR-Cas9为模型酶,分析不同来源的HNH内切酶,包括CRISPR-Cas9蛋白的HNH内切酶区域的保守基序、金属结合位点和催化氨基酸,提出HNH内切酶的作用机制。研究设计:采用Clustal Omega对包括CRISPR-Cas9在内的归巢内切酶进行多序列分析(MSA)。其他生化,定点突变(SDM)和x射线晶体学数据也进行了分析。学习地点和时间:2007年至2013年,印度马杜赖Kamaraj大学生物技术学院。方法:对包括CRISPR-Cas9酶在内的不同生物HNH内切酶的生物信息学、生化、SDM和x射线晶体学数据进行分析。Clustal Omega的高级版本用于不同来源的HNH内切酶的蛋白质序列分析。通过生物信息学分析确定的保守基序进一步分析了这组酶的生化、SDM和x射线晶体学分析数据,并确认了可能参与活性位点和催化作用的氨基酸。结果:包括CRISPR-Cas9酶的HNH内切酶区域在内的不同来源的不同类型的归巢内切酶表现出不同的催化区域和金属;生物工程学报,29(6):1-25,2020;文章no.IJBCRR。57357 2个结合位点。然而,催化氨基酸,即质子受体组氨酸(His),在分析的所有归巢内切酶中是完全保守的。根据这些数据,提出了一种可行的HNH内切酶的作用机制,使用来自化脓性链球菌的CRISPR-Cas9作为模型酶。此外,来自不同生物的各种归巢内切酶的多序列比对(MSA)也显示出许多高度保守的基序。然而,一些HNH内切酶仅在活性位点附近显示一致。其中鉴定出的催化氨基酸可能属于-DH—N或-HH—N型。至少有两种类型的金属结合位点,结合Mg或Zn或两者。来自S. pyogenes的CRISPR-Cas9酶属于- dh基HNH内切酶,具有- dxd型金属结合位点,可能与mg2 +离子结合。其他HNH酶具有一个或两个不变的锌结合CxxC/ CxxxC基序。结论:发现CRISPR-Cas9酶为- dh型,其中第一个D可能参与金属结合,第二个不变量H作为质子受体,-HNHCas9中的N通过与催化区附近的核苷酸相互作用赋予特异性。在这个通讯中,一个金属结合水分子被显示为亲核试剂启动催化。归巢内切酶可作为新型DNA结合和切割试剂用于多种基因组编辑应用,锌指核酸酶已在基因组编辑中得到应用。
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