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NiaMIT Continuation With Early-stage Mitochondrial Myopathy Patients

NiaMIT (NiaMIT_0001) Continuation for Early-stage Mitochondrial Myopathy Patients to Investigate the Effect of Niacin Supplementation on Systemic Nicotinamide Adenine Dinucleotide (NAD+) Metabolism, Physiology and Muscle Performance

Status
Completed
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT04538521
Enrollment
3
Registered
2020-09-04
Start date
2019-02-11
Completion date
2020-09-18
Last updated
2021-01-25

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Mitochondrial Myopathies

Keywords

Vitamin B3, Niacin, Nicotinic acid, Mitochondrial myopathy, Mitochondria, Muscle, Muscle strength, Nicotinamide adenine dinucleotide, NAD+, NAD+ precursor, NAD-booster

Brief summary

The most frequent form of adult-onset mitochondrial disorders is mitochondrial myopathy, often manifesting with progressive external ophthalmoplegia (PEO), progressive muscle weakness and exercise intolerance. Mitochondrial myopathy is often caused by single heteroplasmic mitochondrial DNA (mtDNA) deletions or multiple mtDNA deletions, the former being sporadic and latter caused by mutations in nuclear-encoded proteins of mtDNA maintenance. Currently, no curative treatment exists for this disease. However, an NAD+ precursor vitamin B3 has been demonstrated to give power to diseased mitochondria in animal studies by increasing intracellular levels of NAD+, the important cofactor required for the cellular energy metabolism. Vitamin B3 exists in several forms: nicotinic acid (niacin), nicotinamide, and nicotinamide riboside. Nicotinamide riboside has been shown to prevent and improve disease symptoms in several mouse models of mitochondrial myopathy. In addition, the investigators have previously observed that treatment with another form of vitamin B3, niacin, improved NAD+ deficiency and muscle performance in mitochondrial myopathy patients. In this study, the form of vitamin B3, niacin, is used to activate dysfunctional mitochondria and to rescue signs of mitochondrial myopathy in early-stage patients. Of the vitamin B3 forms, niacin, is employed, because it has been used in large doses to treat hypercholesterolemia patients, and has a proven safety record in humans. Phenotypically similar mitochondrial myopathy patients are studied, as the investigator's previous expertise indicates that similar presenting phenotypes predict uniform physiological and clinical responses to interventions, despite varying genetic backgrounds. Patients with mitochondrial myopathy, typically harboring a sporadic single mtDNA deletion or a mutation in nuclear mtDNA maintenance gene causing multiple mtDNA deletions, are recruited. In addition, data from healthy controls from the primary NiaMIT study (ClinicalTrials.gov Identifier: NCT03973203) are utilized to analyse the collected data. Clinical examinations and collection of muscle biopsies are performed at the time points 0 and 10 months. Fasting blood samples are collected every second week until 1.5 months, every fourth week until 4 months and thereafter every six weeks until the end of the study. The effects of niacin on disease markers, muscle mitochondrial biogenesis, muscle strength and the metabolism of the whole body are studied in patients and healthy controls. The hypothesis is that an NAD+ precursor, niacin, will increase intracellular NAD+ levels, improve mitochondrial biogenesis and alleviate the symptoms of mitochondrial myopathy already in early stages of the disease.

Interventions

DIETARY_SUPPLEMENTNiacin

The dose for a slow-released form of niacin will be 500-1000 mg/day. The daily niacin dose, 250 mg/day, is gradually escalated by 250 mg/month so that the full dose is reached after 2 months. The intervention time with the full niacin dose is 8 months and subsequently total intervention time 10 months.

Sponsors

Helsinki University Central Hospital
CollaboratorOTHER
Institute for Molecular Medicine
CollaboratorOTHER
University of Helsinki
Lead SponsorOTHER

Study design

Allocation
NA
Intervention model
SINGLE_GROUP
Primary purpose
BASIC_SCIENCE
Masking
NONE

Eligibility

Sex/Gender
ALL
Age
17 Years to No maximum
Healthy volunteers
No

Inclusion criteria

1. Early-stage, genetically diagnosed mitochondrial myopathy, with no major other symptoms or manifestations, caused by single or multiple deletions of mtDNA 2. Agreed to avoid vitamin supplementation or nutritional products with vitamin B3 forms 14 days prior to the enrollment and during the study 3. Written, informed consent to participate in the study

Exclusion criteria

1. Inability to follow study protocol 2. Pregnancy or breast-feeding at any time of the trial 3. Malignancy that requires continuous treatment 4. Unstable heart disease 5. Severe kidney disease requiring treatment 6. Severe encephalopathy 7. Regular usage of intoxicants

Design outcomes

Primary

MeasureTime frameDescription
NAD+ and related metabolite levels in blood and muscleBaseline, 4 months and 10 monthsChange in concentrations of NAD+ and related metabolites such as: nicotinamide adenine dinucleotide phosphate, nicotinic acid adenine dinucleotide, nicotinamide, and nicotinamide mononucleotide measured using a quantitative colorimetric assay.

Secondary

MeasureTime frameDescription
Muscle mitochondrial oxidative capacityBaseline and 10 monthsChange in muscle histochemical activity of mitochondrial cytochrome c oxidase
Core muscle strengthBaseline and 10 monthsChange in core muscle strength measured by static and dynamic back and abdominal strength tests (number of repeats)
Circulating levels of disease biomarkers, fibroblast growth factor 21 (FGF21) and growth/differentiation factor 15 (GDF15)Baseline and 10 monthsChange in circulating FGF21 and GDF15 concentrations measured using ELISA kits
Muscle mitochondrial DNA deletionsBaseline and 10 monthsChange in muscle mtDNA deletion load detected using polymerase chain reaction amplification
Muscle transcriptomic profileBaseline and 10 monthsChange in muscle gene expression determined using RNA sequencing approach
Number of diseased muscle fibersBaseline and 10 monthsChange in number of abnormal muscle fibers (frozen sections, in situ histochemical activity analysis of cytochrome c oxidase negative / succinate-dehydrogenase positive muscle fibers; and immunohistochemistry of complex I negative muscle fibers
Mitochondrial biogenesisBaseline and 10 monthsChange in mitochondria immunohistochemical staining intensity
Muscle and blood metabolomic profilesBaseline and 10 monthsChange in muscle or serum/plasma metabolite concentrations measured with mass spectrometry

Other

MeasureTime frameDescription
Ectopic lipid accumulation, i.e. liver and muscle lipid contentBaseline and 10 monthsChange in liver and muscle fat content measured with proton magnetic resonance spectroscopy
Circulating lipid profilesBaseline, 4 months and 10 monthsChange in circulating HDL, LDL and triglyceride concentrations measured using standard photometric enzymatic assay
Body weightBaseline and 10 monthsChange in body weight
Body compositionBaseline and 10 monthsChange in fat mass and fat free mass measured with bioimpedance

Countries

Finland

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026