Mitochondrial Network State Scales mtDNA Genetic Dynamics

Author:

Aryaman Juvid123,Bowles Charlotte4,Jones Nick S15,Johnston Iain G67

Affiliation:

1. Department of Mathematics, Imperial College London, SW7 2AZ, United Kingdom

2. Department of Clinical Neurosciences, University of Cambridge, CB2 0QQ, United Kingdom

3. Medical Research Council Mitochondrial Biology Unit, University of Cambridge, CB2 0XY, United Kingdom

4. School of Biosciences, University of Birmingham, B15 2TT, United Kingdom

5. Engineering and Physical Sciences Research Council Centre for the Mathematics of Precision Healthcare, Imperial College London, SW7 2AZ, United Kingdom

6. Faculty of Mathematics and Natural Sciences, University of Bergen, 5007, Norway

7. Alan Turing Institute, London NW1 2DB, United Kingdom

Abstract

Abstract Mitochondrial DNA (mtDNA) mutations cause severe congenital diseases but may also be associated with healthy aging. mtDNA is stochastically replicated and degraded, and exists within organelles which undergo dynamic fusion and fission. The role of the resulting mitochondrial networks in the time evolution of the cellular proportion of mutated mtDNA molecules (heteroplasmy), and cell-to-cell variability in heteroplasmy (heteroplasmy variance), remains incompletely understood. Heteroplasmy variance is particularly important since it modulates the number of pathological cells in a tissue. Here, we provide the first wide-reaching theoretical framework which bridges mitochondrial network and genetic states. We show that, under a range of conditions, the (genetic) rate of increase in heteroplasmy variance and de novo mutation are proportionally modulated by the (physical) fraction of unfused mitochondria, independently of the absolute fission–fusion rate. In the context of selective fusion, we show that intermediate fusion:fission ratios are optimal for the clearance of mtDNA mutants. Our findings imply that modulating network state, mitophagy rate, and copy number to slow down heteroplasmy dynamics when mean heteroplasmy is low could have therapeutic advantages for mitochondrial disease and healthy aging.

Publisher

Oxford University Press (OUP)

Subject

Genetics

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