DNA containing 4'-thio-2'-deoxycytidine inhibits methylation by HhaI methyltransferase

S Kumar, J R Horton, G D Jones, R T Walker, R J Roberts, X Cheng, S Kumar, J R Horton, G D Jones, R T Walker, R J Roberts, X Cheng

Abstract

4'-Thio-2'-deoxycytidine was synthesized as a 5'- protected phosphoramidite compatible with solid phase DNA synthesis. When incorporated as the target cytosine (C*) in the GC*GC recognition sequence for the DNA methyltransferase M. HhaI, methyl transfer was strongly inhibited. In contrast, these same oligonucleotides were normal substrates for the cognate restriction endonuclease R. HhaI and its isoschizomer R. Hin P1I. M. HhaI was able to bind both 4'-thio-modified DNA and unmodified DNA to equivalent extents under equilibrium conditions. However, the presence of 4'-thio-2'-deoxycytidine decreased the half-life of the complex by >10-fold. The crystal structure of a ternary complex of M. HhaI, AdoMet and DNA containing 4'-thio-2'-deoxycytidine was solved at 2.05 A resolution with a crystallographic R-factor of 0.186 and R-free of 0.231. The structure is not grossly different from previously solved ternary complexes containing M. HhaI, DNA and AdoHcy. The difference electron density suggests partial methylation at C5 of the flipped target 4'-thio-2'-deoxycytidine. The inhibitory effect of the 4'sulfur atom on enzymatic activity may be traced to perturbation of a step in the methylation reaction after DNA binding but prior to methyl transfer. This inhibitory effect can be partially overcome after a considerably long time in the crystal environment where the packing prevents complex dissociation and the target is accurately positioned within the active site.

References

    1. J Med Chem. 1991 Aug;34(8):2361-6
    1. Nucleic Acids Res. 1996 Nov 1;24(21):4117-22
    1. Biochemistry. 1992 Jun 9;31(22):5100-4
    1. Cell. 1992 Jun 12;69(6):915-26
    1. Nucleic Acids Res. 1992 Jun 25;20(12):3167-73
    1. Biochemistry. 1992 Sep 15;31(36):8648-53
    1. Nucleic Acids Res. 1993 Jan 25;21(2):295-301
    1. Nucleic Acids Res. 1993 May 25;21(10):2459-64
    1. Cell. 1993 Jul 30;74(2):299-307
    1. Nucleic Acids Res. 1993 Jul 25;21(15):3485-91
    1. Cell. 1994 Jan 28;76(2):357-69
    1. Nucleic Acids Res. 1994 Jan 11;22(1):1-10
    1. Curr Opin Cell Biol. 1994 Jun;6(3):380-9
    1. Hum Mol Genet. 1994;3 Spec No:1487-95
    1. Nucleic Acids Res. 1995 Apr 25;23(8):1380-7
    1. Nucleic Acids Res. 1995 Apr 25;23(8):1388-95
    1. Cell. 1995 Jul 14;82(1):143-53
    1. Cell. 1995 Jul 14;82(1):9-12
    1. J Am Chem Soc. 1973 Oct 3;95(20):6544-54
    1. Biochemistry. 1976 Jun 15;15(12):2677-82
    1. J Biol Chem. 1987 Apr 5;262(10):4778-86
    1. Biochemistry. 1988 Jul 12;27(14):5204-10
    1. Nucleic Acids Res. 1989 Apr 11;17(7):2421-35
    1. Gene. 1988 Dec 25;74(1):207-10
    1. Science. 1990 Sep 14;249(4974):1288-90
    1. Biochemistry. 1995 Jul 11;34(27):8914-23
    1. Cell. 1995 Dec 1;83(5):773-82
    1. Science. 1995 Dec 8;270(5242):1610-3
    1. J Med Chem. 1996 Jan 19;39(2):538-42
    1. J Med Chem. 1996 Feb 2;39(3):789-95
    1. Nucleic Acids Res. 1996 Mar 1;24(5):951-61
    1. J Mol Biol. 1996 Sep 6;261(5):634-45
    1. Structure. 1996 Jun 15;4(6):639-45
    1. Nature. 1996 Nov 7;384(6604):87-92
    1. J Mol Biol. 1996 Nov 8;263(4):597-606
    1. J Med Chem. 1991 Sep;34(9):2782-6

Source: PubMed

3
Se inscrever