Maternal upbringing and selective breeding for voluntary exercise behavior modify patterns of DNA methylation and expression of genes in the mouse brain

Author:

Latchney Sarah E.1ORCID,Cadney Marcell D.23,Hopkins Anthony4,Garland Theodore2

Affiliation:

1. Department of Biology St. Mary's College of Maryland St. Mary's City Maryland USA

2. Department of Evolution, Ecology, and Organismal Biology University of California Riverside California USA

3. Neuroscience Research Institute, University of California Santa Barbara California USA

4. EpigenDx, Inc. Hopkinton Massachusetts USA

Abstract

AbstractSelective breeding has been utilized to study the genetic basis of exercise behavior, but research suggests that epigenetic mechanisms, such as DNA methylation, also contribute to this behavior. In a previous study, we demonstrated that the brains of mice from a genetically selected high runner (HR) line have sex‐specific changes in DNA methylation patterns in genes known to be genomically imprinted compared to those from a non‐selected control (C) line. Through cross‐fostering, we also found that maternal upbringing can modify the DNA methylation patterns of additional genes. Here, we identify an additional set of genes in which DNA methylation patterns and gene expression may be altered by selection for increased wheel‐running activity and maternal upbringing. We performed bisulfite sequencing and gene expression assays of 14 genes in the brain and found alterations in DNA methylation and gene expression for Bdnf, Pde4d and Grin2b. Decreases in Bdnf methylation correlated with significant increases in Bdnf gene expression in the hippocampus of HR compared to C mice. Cross‐fostering also influenced the DNA methylation patterns for Pde4d in the cortex and Grin2b in the hippocampus, with associated changes in gene expression. We also found that the DNA methylation patterns for Atrx and Oxtr in the cortex and Atrx and Bdnf in the hippocampus were further modified by sex. Together with our previous study, these results suggest that DNA methylation and the resulting change in gene expression may interact with early‐life influences to shape adult exercise behavior.

Funder

U.S. Department of Agriculture

Publisher

Wiley

Subject

Behavioral Neuroscience,Neurology,Genetics

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