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Energetic costs of cellular and therapeutic control of stochastic mitochondrial DNA populations.

Published version
Peer-reviewed

Type

Article

Change log

Authors

Hoitzing, Hanne 
Haute, Lindsey Van 

Abstract

The dynamics of the cellular proportion of mutant mtDNA molecules is crucial for mitochondrial diseases. Cellular populations of mitochondria are under homeostatic control, but the details of the control mechanisms involved remain elusive. Here, we use stochastic modelling to derive general results for the impact of cellular control on mtDNA populations, the cost to the cell of different mtDNA states, and the optimisation of therapeutic control of mtDNA populations. This formalism yields a wealth of biological results, including that an increasing mtDNA variance can increase the energetic cost of maintaining a tissue, that intermediate levels of heteroplasmy can be more detrimental than homoplasmy even for a dysfunctional mutant, that heteroplasmy distribution (not mean alone) is crucial for the success of gene therapies, and that long-term rather than short intense gene therapies are more likely to beneficially impact mtDNA populations.

Description

Keywords

Cell Physiological Phenomena, Computational Biology, DNA, Mitochondrial, Energy Metabolism, Humans, Models, Biological, Mutation, Stochastic Processes

Journal Title

PLoS Comput Biol

Conference Name

Journal ISSN

1553-734X
1553-7358

Volume Title

15

Publisher

Public Library of Science (PLoS)
Sponsorship
Medical Research Council (MC_UU_00015/4)
Medical Research Council (MC_UU_00015/7)