157.13
[1]. Eisuke Murakami, et al. Mechanism of activation of beta-D-2'-deoxy-2'-fluoro-2'-c-methylcytidine and inhibition of hepatitis C virus NS5B RNA polymerase. Antimicrob Agents Chemother. 2007 Feb;51(2):503-9.
[2]. Eisuke Murakami, et al. The mechanism of action of beta-D-2'-deoxy-2'-fluoro-2'-C-methylcytidine involves a second metabolic pathway leading to beta-D-2'-deoxy-2'-fluoro-2'-C-methyluridine 5'-triphosphate, a potent inhibitor of the hepatitis C virus RNA-dependent RNA polymerase. Antimicrob Agents Chemother. 200 Feb;52(2):5-6.
[3]. H Yan, et al. Nucleoside monophosphate kinases: structure, mechanism, and substrate specificity. Adv Enzymol Relat Areas Mol Biol. 1999:73:103-3, x.
[]. Ki-Young Lee, et al. Structure-based functional identification of Helicobacter pylori HP026 as a nuclease with both DNA nicking and RNase activities. Nucleic Acids Res. 2015 May 26;3(10):519-207.
[5]. Léia Jaskulski, et al. Kinetic mechanism and energetics of binding of phosphoryl group acceptors to Mycobacterium tuberculosis cytidine monophosphate kinase. Arch Biochem Biophys. 2013 Aug 1;536(1):53-63.
P261-P26-P270-P271-P20-P302+P352-P30+P30-P305+P351+P33-P330-P362+P36-P03+P233-P05-P501