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Enzyme-mediated cytosine deamination by the bacterial methyltransferase M.MspI
J M Zingg1, J C Shen, P A Jones
1Department of Biochemistry and Molecular Biology, USC/Norris Comprehensive Cancer Center, University of Southern California, School of Medicine, Los Angeles, CA 90033, USA.
Abstract:
Most prokaryotic (cytosine-5)-DNA methyltransferases increase the frequency of deamination at the cytosine targeted for methylation in vitro in the absence of the cofactor S-adenosylmethionine (AdoMet) or the reaction product S-adenosylhomocysteine (AdoHcy). We show here that, under the same in vitro conditions, the prokaryotic methyltransferase, M.MspI (from Moraxella sp.), causes very few cytosine deaminations, suggesting a mechanism in which M.MspI may avoid enzyme-mediated cytosine deamination. Two analogues of AdoMet, sinefungin and 5'-amino-5'-deoxyadenosine, greatly increased the frequency of cytosine deamination mediated by M.MspI presumably by introducing a proton-donating amino group into the catalytic centre, thus facilitating the formation of an unstable enzyme-dihydrocytosine intermediate and hydrolytic deamination. Interestingly, two naturally occurring analogues, adenosine and 5'-methylthio-5'-deoxyadenosine, which do not contain a proton-donating amino group, also weakly increased the deamination frequency by M.MspI, even in the presence of AdoMet or AdoHcy. These analogues may trigger a conformational change in the enzyme without completely inhibiting the access of solvent water to the catalytic centre, thus allowing hydrolytic deamination of the enzyme-dihydrocytosine intermediate. Under normal physiological conditions the enzymes M.HpaII (from Haemophilus parainfluenzae), M. HhaI (from Haemophilus hemolytica) and M.MspI all increased the in vivo deamination frequency at the target cytosines with comparable efficiency.
Insights
The M.MspI methyltransferase avoids cytosine deamination in vitro, unlike other enzymes. Analogues of S-adenosylmethionine (AdoMet) can induce deamination, suggesting a novel mechanism for DNA modification.
Area of Science:
- Biochemistry
- Molecular Biology
- Enzymology
Background:
- Prokaryotic (cytosine-5)-DNA methyltransferases typically increase cytosine deamination in vitro without cofactors.
- The mechanism of enzyme-mediated deamination and its regulation is not fully understood.
Purpose of the Study:
- To investigate the in vitro deamination activity of the M.MspI methyltransferase.
- To explore the effect of S-adenosylmethionine (AdoMet) analogues on M.MspI-mediated cytosine deamination.
Main Methods:
- In vitro enzymatic assays using M.MspI methyltransferase.
- Analysis of cytosine deamination frequency in the presence of various AdoMet analogues (sinefungin, 5'-amino-5'-deoxyadenosine, adenosine, 5'-methylthio-5'-deoxyadenosine).
- Comparison of in vitro and in vivo deamination efficiencies of M.MspI, M.HpaII, and M.HhaI.
Main Results:
- M.MspI exhibited minimal cytosine deamination in vitro under standard conditions.
- Sinefungin and 5'-amino-5'-deoxyadenosine significantly increased M.MspI-mediated deamination, likely by facilitating a proton-donating group.
- Adenosine and 5'-methylthio-5'-deoxyadenosine also weakly increased deamination, possibly via conformational changes.
- M.HpaII, M.HhaI, and M.MspI showed comparable in vivo deamination efficiencies.
Conclusions:
- M.MspI possesses a unique mechanism to avoid enzyme-mediated cytosine deamination in vitro.
- AdoMet analogues can modulate M.MspI activity, influencing hydrolytic deamination pathways.
- In vivo, M.MspI functions similarly to other methyltransferases in increasing cytosine deamination.