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== Recognition of the sgRNA-target heteroduplex ==
== Recognition of the sgRNA-target heteroduplex ==
The recognition of the sgRNA-target heteroduplex in Cas9 begins by inserting itself into the central channel between the REC and NUC lobes (Scene). A heteroduplex is a the binding of the complimentary strands of the sgRNA and target DNA. The REC lobe interacts with the seed region of the sgRNA (C13-C20) as well as the PAM distal region (A3-U6) through the phosphate backbone. The seed region is in the A-form confirmation so it can bind the target DNA. The target DNA binds to the REC loop and RuvC domain for the proper conformation for base paring between the target DNA and sgRNA.
The recognition of the sgRNA-target heteroduplex in Cas9 begins by inserting itself into the central channel between the REC and NUC lobes (Scene). A heteroduplex is a the binding of the complimentary strands of the sgRNA and target DNA. The REC lobe interacts with the seed region of the sgRNA (C13-C20) as well as the PAM distal region (A3-U6) through the phosphate backbone. The seed region is in the A-form confirmation so it can bind the target DNA. The target DNA binds to the REC loop and RuvC domain for the proper conformation for base paring between the target DNA and sgRNA.
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== Recognition of the PAM seequence ==
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== Recognition of the PAM sequence ==
For the recognition of the PAM sequence, the target DNA with the PAM sequence (5’-NNGRRN-3’) is bound to SaCas9 through bidentate hydrogen bonds (scene of bonds) as well as direct and water mediated hydrogen bonds through the major groove in the PI domain. The WED domain recognizes the minor groove phosphate backbone of the duplex.
For the recognition of the PAM sequence, the target DNA with the PAM sequence (5’-NNGRRN-3’) is bound to SaCas9 through bidentate hydrogen bonds (scene of bonds) as well as direct and water mediated hydrogen bonds through the major groove in the PI domain. The WED domain recognizes the minor groove phosphate backbone of the duplex.
== Recognition of the sgRNA scaffold ==
== Recognition of the sgRNA scaffold ==

Revision as of 17:23, 4 October 2022

STRUCTURE OF Cas9 IN STAPHYLOCOCCUS AUREUS IN COMPLEX WITH sgRNA

PDB ID 5axw

Drag the structure with the mouse to rotate

Citations

1. Hiroshi Nishimasu, Le Cong, Winston X. Yan, F. Ann Ran, Bernd Zetsche, Yinqing Li, Arisa Kurabayashi, Ryuichiro Ishitani, Feng Zhang, Osamu Nureki, Crystal Structure of Staphylococcus aureus Cas9, Cell,Volume 162, Issue 5,2015,Pages 1113-1126,ISSN 0092-8674,https://doi.org/10.1016/j.cell.2015.08.007.

2. Palermo G, Chen JS, Ricci CG, Rivalta I, Jinek M, Batista VS, Doudna JA, McCammon JA. Key role of the REC lobe during CRISPR-Cas9 activation by 'sensing', 'regulating', and 'locking' the catalytic HNH domain. Q Rev Biophys. 2018;51:e91. doi: 10.1017/S0033583518000070. Epub 2018 Aug 3. PMID: 30555184; PMCID: PMC6292676.

3. Nishimasu H, Ran FA, Hsu PD, Konermann S, Shehata SI, Dohmae N, Ishitani R, Zhang F, Nureki O. Crystal structure of Cas9 in complex with guide RNA and target DNA. Cell. 2014 Feb 27;156(5):935-49. doi: 10.1016/j.cell.2014.02.001. Epub 2014 Feb 13. PMID: 24529477; PMCID: PMC4139937.

4. Morlot C, Pernot L, Le Gouellec A, Di Guilmi AM, Vernet T, Dideberg O, Dessen A. Crystal structure of a peptidoglycan synthesis regulatory factor (PBP3) from Streptococcus pneumoniae. J Biol Chem. 2005 Apr 22;280(16):15984-91. doi: 10.1074/jbc.M408446200. Epub 2004 Dec 13. PMID: 15596446.

5. Chen H, Choi J, Bailey S. Cut site selection by the two nuclease domains of the Cas9 RNA-guided endonuclease. J Biol Chem. 2014 May 9;289(19):13284-94. doi: 10.1074/jbc.M113.539726. Epub 2014 Mar 14. PMID: 24634220; PMCID: PMC4036338.

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