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Updated: Sep 4, 2025

Following the Dynamics of Structural Variants in Experimentally Evolved Populations
Published on: February 3, 2023
Dynamics of the most common pathogenic mtDNA variant m.3243A > G demonstrate frequency-dependency in blood and
Melissa Franco1, Sarah J Pickett2, Zoe Fleischmann1
1Department of Biology, Northeastern University, Boston, MA 02115, USA.
Abstract:
The A-to-G point mutation at position 3243 in the human mitochondrial genome (m.3243A > G) is the most common pathogenic mtDNA variant responsible for disease in humans. It is widely accepted that m.3243A > G levels decrease in blood with age, and an age correction representing ~ 2% annual decline is often applied to account for this change in mutation level. Here we report that recent data indicate that the dynamics of m.3243A > G are more complex and depend on the mutation level in blood in a bi-phasic way. Consequently, the traditional 2% correction, which is adequate 'on average', creates opposite predictive biases at high and low mutation levels. Unbiased age correction is needed to circumvent these drawbacks of the standard model. We propose to eliminate both biases by using an approach where age correction depends on mutation level in a biphasic way to account for the dynamics of m.3243A > G in blood. The utility of this approach was further tested in estimating germline selection of m.3243A > G. The biphasic approach permitted us to uncover patterns consistent with the possibility of positive selection for m.3243A > G. Germline selection of m.3243A > G shows an 'arching' profile by which selection is positive at intermediate mutant fractions and declines at high and low mutant fractions. We conclude that use of this biphasic approach will greatly improve the accuracy of modelling changes in mtDNA mutation frequencies in the germline and in somatic cells during aging.
Insights
The common m.3243A>G mitochondrial DNA mutation
Area of Science:
- Genetics
- Molecular Biology
- Aging Research
Background:
- The m.3243A>G variant in mitochondrial DNA (mtDNA) is a frequent cause of human disease.
- Current models assume a steady age-related decline in m.3243A>G levels in blood, using a 2% annual correction.
- This standard correction introduces biases at high and low mutation levels.
Purpose of the Study:
- To develop a more accurate age correction method for m.3243A>G mutation levels in blood.
- To investigate the dynamics of m.3243A>G mutation levels and their implications for germline selection.
- To improve modeling of mtDNA mutation frequency changes during aging.
Main Methods:
- Analysis of recent data on m.3243A>G mutation dynamics in blood.
- Development and application of a biphasic age correction model.
- Testing the biphasic model in the context of germline selection estimation.
Main Results:
- m.3243A>G mutation levels in blood exhibit complex, bi-phasic age-dependent dynamics.
- The proposed biphasic age correction method eliminates biases associated with the traditional 2% correction.
- Germline selection of m.3243A>G shows an 'arching' profile, with positive selection at intermediate levels.
Conclusions:
- A biphasic approach to age correction accurately reflects m.3243A>G dynamics in blood.
- This improved modeling reveals patterns of positive germline selection for m.3243A>G.
- The biphasic model enhances accuracy in predicting mtDNA mutation frequency changes in aging somatic and germline cells.
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