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Updated: Mar 18, 2026

Measuring Microbial Mutation Rates with the Fluctuation Assay
Published on: November 28, 2019
Cytosine deamination and the precipitous decline of spontaneous mutation during Earth's history
Charles A Lewis1, Jesse Crayle1, Shuntai Zhou1
1Department of Biochemistry and Biophysics, University of North Carolina, Chapel Hill, NC 27599.
Abstract:
The hydrolytic deamination of cytosine and 5-methylcytosine residues in DNA appears to contribute significantly to the appearance of spontaneous mutations in microorganisms and in human disease. In the present work, we examined the mechanism of cytosine deamination and the response of the uncatalyzed reaction to changing temperature. The positively charged 1,3-dimethylcytosinium ion was hydrolyzed at a rate similar to the rate of acid-catalyzed hydrolysis of 1-methylcytosine, for which it furnishes a satisfactory kinetic model and a probable mechanism. In agreement with earlier reports, uncatalyzed deamination was found to proceed at very similar rates for cytosine, 1-methylcytosine, cytidine, and cytidine 5'-phosphate, and also for cytosine residues in single-stranded DNA generated from a phagemid, in which we sequenced an insert representing the gene of the HIV-1 protease. Arrhenius plots for the uncatalyzed deamination of cytosine were linear over the temperature range from 90 °C to 200 °C and indicated a heat of activation (ΔH(‡)) of 23.4 ± 0.5 kcal/mol at pH 7. Recent evidence indicates that the surface of the earth has been cool enough to support life for more than 4 billion years and that life has been present for almost as long. If the temperature at Earth's surface is assumed to have followed Newton's law of cooling, declining exponentially from 100 °C to 25 °C during that period, then half of the cytosine-deaminating events per unit biomass would have taken place during the first 0.2 billion years, and <99.4% would have occurred during the first 2 billion years.
Insights
Hydrolytic deamination of DNA bases like cytosine drives spontaneous mutations. This study quantizes cytosine deamination rates and activation energy, revealing early Earth
Area of Science:
- Biochemistry
- Molecular Biology
- Genetics
Background:
- Cytosine and 5-methylcytosine deamination are key sources of spontaneous DNA mutations.
- Understanding these deamination mechanisms is crucial for human disease and microbial genetics.
Purpose of the Study:
- To investigate the mechanism of cytosine deamination.
- To analyze the temperature-dependent kinetics of the uncatalyzed cytosine deamination reaction.
Main Methods:
- Kinetic analysis of 1,3-dimethylcytosinium ion hydrolysis.
- Measurement of uncatalyzed deamination rates for cytosine and its derivatives.
- DNA sequencing of cytosine residues in single-stranded DNA from a phagemid.
- Arrhenius plot analysis of deamination rates across a temperature range (90-200 °C).
Main Results:
- The hydrolysis rate of 1,3-dimethylcytosinium ion serves as a kinetic model for cytosine deamination.
- Uncatalyzed deamination rates are similar for cytosine, 1-methylcytosine, cytidine, and cytidine 5'-phosphate.
- The heat of activation (ΔH(‡)) for uncatalyzed cytosine deamination at pH 7 is 23.4 ± 0.5 kcal/mol.
- Most cytosine deamination events on early Earth likely occurred within the first 2 billion years.
Conclusions:
- Cytosine deamination is a significant source of mutations, with implications for early life evolution.
- The activation energy provides insights into the molecular mechanisms of DNA base degradation.
- Early Earth's cooling history suggests a concentrated period of mutagenic deamination events impacting primordial life.
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