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Caloric restriction mitigates age-associated hippocampal differential CG and non-CG methylation

View ORCID ProfileNiran Hadad, Archana Unnikrishnan, Jordan A. Jackson, Dustin R. Masser, Laura Otalora, David R. Stanford, Arlan Richardson, Willard M. Freeman
doi: https://doi.org/10.1101/175810
Niran Hadad
1Oklahoma Center for Neuroscience, Oklahoma City, OK, USA, 73104
2Reynolds Oklahoma Center on Aging, Oklahoma City, OK, USA, 73104
6Oklahoma Nathan Shock Center for Aging, University of Oklahoma Health Sciences Center, Oklahoma City, OK, USA, 73104
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  • ORCID record for Niran Hadad
Archana Unnikrishnan
2Reynolds Oklahoma Center on Aging, Oklahoma City, OK, USA, 73104
5Department of Geriatric Medicine, Oklahoma City, OK, USA, 73104
6Oklahoma Nathan Shock Center for Aging, University of Oklahoma Health Sciences Center, Oklahoma City, OK, USA, 73104
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Jordan A. Jackson
2Reynolds Oklahoma Center on Aging, Oklahoma City, OK, USA, 73104
5Department of Geriatric Medicine, Oklahoma City, OK, USA, 73104
6Oklahoma Nathan Shock Center for Aging, University of Oklahoma Health Sciences Center, Oklahoma City, OK, USA, 73104
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Dustin R. Masser
2Reynolds Oklahoma Center on Aging, Oklahoma City, OK, USA, 73104
3Department of Physiology, Oklahoma City, OK, USA, 73104
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Laura Otalora
2Reynolds Oklahoma Center on Aging, Oklahoma City, OK, USA, 73104
3Department of Physiology, Oklahoma City, OK, USA, 73104
5Department of Geriatric Medicine, Oklahoma City, OK, USA, 73104
6Oklahoma Nathan Shock Center for Aging, University of Oklahoma Health Sciences Center, Oklahoma City, OK, USA, 73104
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David R. Stanford
2Reynolds Oklahoma Center on Aging, Oklahoma City, OK, USA, 73104
3Department of Physiology, Oklahoma City, OK, USA, 73104
6Oklahoma Nathan Shock Center for Aging, University of Oklahoma Health Sciences Center, Oklahoma City, OK, USA, 73104
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Arlan Richardson
2Reynolds Oklahoma Center on Aging, Oklahoma City, OK, USA, 73104
4Oklahoma City VA Medical Center, Oklahoma City, OK, USA, 73104
5Department of Geriatric Medicine, Oklahoma City, OK, USA, 73104
6Oklahoma Nathan Shock Center for Aging, University of Oklahoma Health Sciences Center, Oklahoma City, OK, USA, 73104
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Willard M. Freeman
1Oklahoma Center for Neuroscience, Oklahoma City, OK, USA, 73104
2Reynolds Oklahoma Center on Aging, Oklahoma City, OK, USA, 73104
3Department of Physiology, Oklahoma City, OK, USA, 73104
5Department of Geriatric Medicine, Oklahoma City, OK, USA, 73104
6Oklahoma Nathan Shock Center for Aging, University of Oklahoma Health Sciences Center, Oklahoma City, OK, USA, 73104
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  • For correspondence: wfreeman@ouhsc.edu
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Abstract

Brain aging is marked by cognitive decline and susceptibility to neurodegeneration. Caloric-restriction (CR) increases neurogenesis, improves memory function, and protects from age-associated neurological disorders. Epigenetic mechanisms, including DNA methylation, are vital to normal CNS cellular and memory functions, and are dysregulated with aging. The beneficial effects of CR have been proposed to work through epigenetic processes, but this is largely unexplored. We therefore tested whether life-long CR prevents age-related DNA methylation changes in the brain. Hippocampal DNA from young (3 months) and old (24 months) male mice fed ad libitum and 24 month old mice fed a 40% calorierestricted diet from 3 months of age were examined by genome-wide bisulfite sequencing to measure methylation with base-specificity. Over 27 million CG and CH (non-CG) sites were examined. Of the ~40,000 differentially methylated CGs (dmCGs) and ~80,000 CHs (dmCHs) with aging, >1/3 were prevented by CR and were found across genomic regulatory regions and gene pathways. CR also caused alterations to CG and CH methylation at sites not differentially methylated with aging, and these CR-specific changes demonstrated a different pattern of regulatory element and gene pathway enrichment than those affected by aging. CR-specific DNMT1 and TET3 promoter hypermethylation corresponded to reduced gene expression. These findings demonstrate that CR attenuates age-related CG and CH hippocampal methylation changes, in combination with CR-specific methylation that may also contribute to the neuroprotective effects of CR. The prevention of age-related methylation alterations is also consistent with the pro-longevity effects of CR working through an epigenetic mechanism.

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  • Conflict of interest: The authors declare no competing financial interests

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The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
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Posted November 09, 2017.
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Caloric restriction mitigates age-associated hippocampal differential CG and non-CG methylation
Niran Hadad, Archana Unnikrishnan, Jordan A. Jackson, Dustin R. Masser, Laura Otalora, David R. Stanford, Arlan Richardson, Willard M. Freeman
bioRxiv 175810; doi: https://doi.org/10.1101/175810
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Caloric restriction mitigates age-associated hippocampal differential CG and non-CG methylation
Niran Hadad, Archana Unnikrishnan, Jordan A. Jackson, Dustin R. Masser, Laura Otalora, David R. Stanford, Arlan Richardson, Willard M. Freeman
bioRxiv 175810; doi: https://doi.org/10.1101/175810

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