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Mitochondrial oxidative capacity and NAD+ biosynthesis are reduced in human sarcopenia across ethnicities
Eugenia Migliavacca, S K Tay, Harnish P. Patel, Tanja Sonntag, Gabriele Civiletto, Craig McFarlane, Terence Forrester, Sheila J. Barton, Melvin Khee‐Shing Leow, Elie Antoun, Aline Charpagne, Yap Seng Chong, Patrick Descombes, Lei Feng, Patrice Francis-Emmanuel
Nature Communications · 2019 · ▲ 345 citations
Abstract
Abstract The causes of impaired skeletal muscle mass and strength during aging are well-studied in healthy populations. Less is known on pathological age-related muscle wasting and weakness termed sarcopenia, which directly impacts physical autonomy and survival. Here, we compare genome-wide transcriptional changes of sarcopenia versus age-matched controls in muscle biopsies from 119 older men from Singapore, Hertfordshire UK and Jamaica. Individuals with sarcopenia reproducibly demonstrate a prominent transcriptional signature of mitochondrial bioenergetic dysfunction in skeletal muscle, with low PGC-1α/ERRα signalling, and downregulation of oxidative phosphorylation and mitochondrial proteostasis(definition) genes. These changes translate functionally into fewer mitochondria, reduced mitochondrial respiratory complex expression and activity, and low NAD + levels through perturbed NAD + biosynthesis and salvage in sarcopenic muscle. We provide an integrated molecular profile of human sarcopenia across ethnicities, demonstrating a fundamental role of altered mitochondrial metabolism in the pathological loss of skeletal muscle mass and function in older people.
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- 10.1038/s41467-019-13694-1
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- 2026-06-06 MST
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APA
Migliavacca, E., Tay, S.K., Patel, H.P., Sonntag, T., Civiletto, G., McFarlane, C., Forrester, T., Barton, S.J., Leow, M.K., Antoun, E., Charpagne, A., Chong, Y.S., Descombes, P., Feng, L., Francis-Emmanuel, P., Garratt, E., Giner, M.P., Green, C.O., Karaz, S., & Narasimhan, K. (2019). Mitochondrial oxidative capacity and NAD+ biosynthesis are reduced in human sarcopenia across ethnicities. <em>Nature Communications</em>. https://doi.org/10.1038/s41467-019-13694-1
Vancouver
Migliavacca E, Tay SK, Patel HP, Sonntag T, Civiletto G, McFarlane C, et al. Mitochondrial oxidative capacity and NAD+ biosynthesis are reduced in human sarcopenia across ethnicities. Nature Communications. 2019. doi:10.1038/s41467-019-13694-1.
BibTeX
@article{eugenia2019Mitoch,
title = {Mitochondrial oxidative capacity and NAD+ biosynthesis are reduced in human sarcopenia across ethnicities},
author = {Eugenia Migliavacca and S K Tay and Harnish P. Patel and Tanja Sonntag and Gabriele Civiletto and Craig McFarlane and Terence Forrester and Sheila J. Barton and Melvin Khee‐Shing Leow and Elie Antoun and Aline Charpagne and Yap Seng Chong and Patrick Descombes and Lei Feng and Patrice Francis-Emmanuel and Emma Garratt and Maria Pilar Giner and Curtis O. Green and Sonia Karaz and Kothandaraman Narasimhan and Julien Marquis and Sylviane Métairon and Sofia Moco and Gail A. Nelson and Sherry Ngo},
journal = {Nature Communications},
year = {2019},
doi = {10.1038/s41467-019-13694-1},
}
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