Effects of nicotinamide riboside in mitochondrial DNA disease

Abstract Background Mitochondrial disorders are a common cause of inherited neurometabolic disease affecting around 1 in 8000 people. There are currently no treatments for heteroplasmic mitochondrial DNA (mtDNA) disorders which target the underlying disease mechanisms. Increasing nicotinamide adenine dinucleotide (NAD + ) with nicotinamide riboside (NR) has been proposed as a therapeutic strategy. It was effective in several models of impaired oxidative metabolism but has not been tested before in humans. Methods We performed an experimental medicine study in eight participants affected with mtDNA disorders. Three had single large-scale mtDNA deletions and five had m.3243 A > G/T pathogenic variants. They were treated with 4-weeks of NR (1250–2000 mg/day). Clinical outcomes (timed up and go test, six-minute walk test, grip strength and quality of life questionnaires), GDF15 and FGF21 blood biomarkers, 31 P-magnetic resonance spectroscopy measurement of mitochondrial function in vivo and quadriceps muscle biopsy were performed before and after treatment. Muscle histopathology, mtDNA copy number, heteroplasmy level, citrate synthase and respiratory complex activities were analysed, as well as transcriptomic, proteomic and metabolomic analyses. Results NR was bioavailable and well tolerated. Overall, NR improved the timed up and go (TUG) test. In three participants with single large-scale deletions, there was a decrease in the percentage of cytochrome c oxidase deficient and ragged-red muscle fibres, an increase in respiratory chain complex I and IV activity, and reduction in mtDNA deletion levels which was not seen in five participants with m.3243 A > G/T. Unbiased transcriptomic and integrated multi-omic analysis of all eight participants showed the signature of mitochondrial biogenesis, with SIRT1/PGC-1α activation and increased mitochondrial gene expression, enhanced NAD-related metabolite levels, and coordinated changes in mitochondrial protein abundance. Conclusions We conclude that NR has potential to be the first small-molecule precision treatment for heteroplasmic mtDNA disorders guided by the specific genetic diagnosis. Trial registration The study was prospectively registered on ClinicalTrials.gov, NCT03432871, Registration date 2018-02-14.

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Journal
Genome Medicine
Published
2026-09-15
DOI
https://doi.org/10.1186/s13073-026-01764-1
Primary Topic
Mitochondrial Function and Pathology
Type
article
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0.00

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article

Effects of nicotinamide riboside in mitochondrial DNA disease

Heather Biggs, Katherine Schon, Chloe Seikus, Annelies Quaegebeur et al.
Genome Medicine
Mitochondrial Function and Pathology
article

Effects of nicotinamide riboside in mitochondrial DNA disease

Heather Biggs, Katherine Schon, Chloe Seikus, Annelies Quaegebeur, Emma Harrison, Massimo Zeviani, Jelle van den Ameele, Yu Nie, May Yung Tiet, Alessandro Berghella, Carlo Viscomi, Camilla Lyons, Alison Sleigh, Zoe Golder, Andreas Hentschel, Patrick Yu Wai Man, Lyuba Bozhilova, Patrick Chinnery, Andreas Roos, Rita Horvath
article en

Abstract

Abstract Background Mitochondrial disorders are a common cause of inherited neurometabolic disease affecting around 1 in 8000 people. There are currently no treatments for heteroplasmic mitochondrial DNA (mtDNA) disorders which target the underlying disease mechanisms. Increasing nicotinamide adenine dinucleotide (NAD + ) with nicotinamide riboside (NR) has been proposed as a therapeutic strategy. It was effective in several models of impaired oxidative metabolism but has not been tested before in humans. Methods We performed an experimental medicine study in eight participants affected with mtDNA disorders. Three had single large-scale mtDNA deletions and five had m.3243 A > G/T pathogenic variants. They were treated with 4-weeks of NR (1250–2000 mg/day). Clinical outcomes (timed up and go test, six-minute walk test, grip strength and quality of life questionnaires), GDF15 and FGF21 blood biomarkers, 31 P-magnetic resonance spectroscopy measurement of mitochondrial function in vivo and quadriceps muscle biopsy were performed before and after treatment. Muscle histopathology, mtDNA copy number, heteroplasmy level, citrate synthase and respiratory complex activities were analysed, as well as transcriptomic, proteomic and metabolomic analyses. Results NR was bioavailable and well tolerated. Overall, NR improved the timed up and go (TUG) test. In three participants with single large-scale deletions, there was a decrease in the percentage of cytochrome c oxidase deficient and ragged-red muscle fibres, an increase in respiratory chain complex I and IV activity, and reduction in mtDNA deletion levels which was not seen in five participants with m.3243 A > G/T. Unbiased transcriptomic and integrated multi-omic analysis of all eight participants showed the signature of mitochondrial biogenesis, with SIRT1/PGC-1α activation and increased mitochondrial gene expression, enhanced NAD-related metabolite levels, and coordinated changes in mitochondrial protein abundance. Conclusions We conclude that NR has potential to be the first small-molecule precision treatment for heteroplasmic mtDNA disorders guided by the specific genetic diagnosis. Trial registration The study was prospectively registered on ClinicalTrials.gov, NCT03432871, Registration date 2018-02-14.

Genome Medicine
Moorfields Eye Hospital NHS Foundation Trust (GB), University of Padua (IT), University of Milan (IT), University of Cambridge (GB), Children's Hospital of Eastern Ontario (CA), IRCCS Materno Infantile Burlo Garofolo (IT), Cambridge University Hospitals NHS Foundation Trust (GB), Veneto Institute of Molecular Medicine (IT), Düsseldorf University Hospital (DE), Wellcome/MRC Institute of Metabolic Science (GB), Leibniz Institute for Analytical Sciences - ISAS (DE), Heinrich Heine University Düsseldorf (DE), University College London (GB), MRC Mitochondrial Biology Unit (GB), Medical Research Council (GB), University of Bologna (IT)
Wellcome Trust, Muscular Dystrophy UK, Action for A-T, LifeArc, National Institute for Health and Care Research, Ataxia UK, Fight for Sight UK, Rosetrees Trust, Fondazione Telethon, Cambridge University Hospitals, Isaac Newton Trust, AFM-Téléthon, Deutsche Gesellschaft für Muskelkranke, Ministerium für Kultur und Wissenschaft des Landes Nordrhein-Westfalen, Moorfields Eye Charity, Medical Research Council, Biotechnology and Biological Sciences Research Council, Addenbrooke's Charitable Trust, Cambridge University Hospitals, European Regional Development Fund, National Institute for Health Research Biomedical Research Centre at Moorfields Eye Hospital NHS Foundation Trust and UCL Institute of Ophthalmology, NIHR Cambridge Biomedical Research Centre, HORIZON EUROPE Marie Sklodowska-Curie Actions, Stoneygate Trust
Openalex Percentile: Top 22%
Mitochondrial Function and Pathology
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