Lamin A/C impairments cause mitochondrial dysfunction by attenuating PGC1α and the NAMPT-NAD+ pathway

Author:

Maynard Scott1ORCID,Hall Arnaldur1,Galanos Panagiotis1ORCID,Rizza Salvatore1,Yamamoto Tatsuro1,Gram Helena Hagner1,Munk Sebastian H N1,Shoaib Muhammad2ORCID,Sørensen Claus Storgaard2,Bohr Vilhelm A34ORCID,Lerdrup Mads5,Maya-Mendoza Apolinar1,Bartek Jiri16ORCID

Affiliation:

1. Danish Cancer Society Research Center , DK-2100 Copenhagen, Denmark

2. Biotech Research and Innovation Centre (BRIC), University of Copenhagen , DK-2200 Copenhagen, Denmark

3. Department of Cellular and Molecular Medicine, Center for Healthy Aging, University of Copenhagen , DK-2200 Copenhagen, Denmark

4. Laboratory of Molecular Gerontology, National Institute on Aging, National Institutes of Health , Baltimore, MD 21224, USA

5. The DNRF Center for Chromosome Stability, Department of Cellular and Molecular Medicine, University of Copenhagen , DK-2200 Copenhagen, Denmark

6. Division of Genome Biology, Department of Medical Biochemistry and Biophysics, Science for Life Laboratory, Karolinska Institute , SE-17177 Stockholm, Sweden

Abstract

Abstract Mutations in the lamin A/C gene (LMNA) cause laminopathies such as the premature aging Hutchinson Gilford progeria syndrome (HGPS) and altered lamin A/C levels are found in diverse malignancies. The underlying lamin-associated mechanisms remain poorly understood. Here we report that lamin A/C-null mouse embryo fibroblasts (Lmna−/− MEFs) and human progerin-expressing HGPS fibroblasts both display reduced NAD+ levels, unstable mitochondrial DNA and attenuated bioenergetics. This mitochondrial dysfunction is associated with reduced chromatin recruitment (Lmna−/− MEFs) or low levels (HGPS) of PGC1α, the key transcription factor for mitochondrial homeostasis. Lmna−/− MEFs showed reduced expression of the NAD+-biosynthesis enzyme NAMPT and attenuated activity of the NAD+-dependent deacetylase SIRT1. We find high PARylation in lamin A/C-aberrant cells, further decreasing the NAD+ pool and consistent with impaired DNA base excision repair in both cell models, a condition that fuels DNA damage-induced PARylation under oxidative stress. Further, ATAC-sequencing revealed a substantially altered chromatin landscape in Lmna−/− MEFs, including aberrantly reduced accessibility at the Nampt gene promoter. Thus, we identified a new role of lamin A/C as a key modulator of mitochondrial function through impairments of PGC1α and the NAMPT-NAD+ pathway, with broader implications for the aging process.

Funder

Danish Cancer Society

Danish Council for Independent Research

Novo Nordisk Foundation

Swedish Research Council

Danish National Research Foundation

Lundbeck Foundation

National Institute on Aging

National Institutes of Health

Publisher

Oxford University Press (OUP)

Subject

Genetics

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