Healthy Clinical Trial
— VICSOfficial title:
A Crossover Pilot Study on the Effects of Vitamin C Supplementation on Skeletal Muscle in Older Women (VICS)
As part of the ageing process muscles become weaker. One of the reasons for this is that mitochondria, the 'engines' that provide energy to fuel muscles, age and work less efficiently. Mitochondria are found in almost all cells in the human body. Mitochondria take in nutrients that are provided from food and break these down to create energy-rich compounds to fuel many different processes in the body. Muscles are loaded with mitochondria because they require a lot of energy. Mitochondria naturally produce small compounds called oxidants that can damage muscle cells and can cause inflammation. The cells in the body have a natural defence system to protect against oxidants, but when mitochondria age and become less efficient, the amount of oxidants that they produce can increase. These oxidants can damage muscles and the mitochondria themselves. Antioxidants, such as vitamin C, may help protect muscles from the damage caused by oxidants, and may help mitochondria work more efficiently. In this study, the investigators will explore whether vitamin C can help mitochondria work more efficiently, which may improve muscle strength, and help older people to remain mobile and independent for longer.
Status | Not yet recruiting |
Enrollment | 16 |
Est. completion date | March 2025 |
Est. primary completion date | March 2025 |
Accepts healthy volunteers | Accepts Healthy Volunteers |
Gender | Female |
Age group | 65 Years and older |
Eligibility | Inclusion Criteria: - Female, aged 65 years or over - Non-smoker (or ex-smoker for at least 1 year). - Engages in less than 20 minutes of structured physical activity per week, including cycling. - Able to provide informed consent. - Able to understand basic instructions in English. - Willing to take daily vitamin C or placebo capsules. Exclusion Criteria: - Consumes more than 3 fruits and vegetables per day, including fruit and vegetable juices. - Consumes vitamin C containing supplements, polyphenols, or other antioxidants (e.g. resveratrol or coenzyme q10). - Regularly takes anti-inflammatory drugs. - Alcohol intake >14 units/week. - Chronic clinical diseases (e.g., coronary artery/peripheral artery/cerebrovascular diseases, diabetes, chronic kidney disease requiring dialysis, diagnosed low renal function, neurological disorders or diseases that may affect motor/cognitive functions), except hypertension and hyperlipidaemia. - History of kidney stones within the preceding 12 months. - Contraindications for undergoing the MRI and exercise study procedures (e.g. major surgery, bilateral hip or knee replacement, non-MRI-compatible pacemaker or metal implants). - Parallel participation in another research project that involves an intervention. - Relation to, or co-habitation with, a member of the study team. - Those who are part of the line manager/supervisory structure of the Chief Investigator. |
Country | Name | City | State |
---|---|---|---|
United Kingdom | University of East Anglia | Norwich | Norfolk |
Lead Sponsor | Collaborator |
---|---|
University of East Anglia | The Norfolk and Norwich University Hospitals NHS Foundation Trust, The Quadram Institute Clinical Research Facility |
United Kingdom,
Type | Measure | Description | Time frame | Safety issue |
---|---|---|---|---|
Primary | Difference in skeletal muscle mitochondrial function between vitamin C and placebo groups. | Comparison of skeletal muscle mitochondrial oxidative capacity (estimated from 31P MRS measured phosphocreatine recovery half-time) following 6 weeks of vitamin C supplementation or 6 weeks of placebo. | Week: 6 and 16 | |
Secondary | Difference in skeletal muscle phosphomonoester to phosphodiester ratio (PME/PDE) between vitamin C and placebo groups. | Skeletal muscle phosphomonoester (PME) and phosphodiester (PDE) concentrations can be measured using 31P MRS, and reflect cell membrane synthesis and breakdown respectively. The signal amplitudes (in arbitrary units) of these two species will be combined to report the (unitless) PME/PDE ratio, which reflects cell membrane turnover and may be related to oxidative stress. Comparison of PME/PDE ratio following 6 weeks of vitamin C or 6 weeks of placebo. | Week: 6 and 16. | |
Secondary | Difference in knee extension strength between vitamin C and placebo groups. | Comparison of knee extension strength following 6 weeks of vitamin C or 6 weeks of placebo. | Week: 6 and 16. | |
Secondary | Difference in hand grip strength between vitamin C and placebo groups. | Comparison of hand grip strength following 6 weeks of vitamin C or 6 weeks of placebo. | Week: 6 and 16. | |
Secondary | Difference in Short Physical Performance Battery (SPPB) score between vitamin C and placebo groups. | The Short Physical Performance Battery (SPPB) assesses three components of physical performance: standing balance, gait speed and chair stands. Each of the three components is scored from 0 (worst possible performance) to 4 (best possible performance). Scores from each of the three components are then summed to provide an overall SPPB score ranging from 0 (worst performance) to 12 (best performance). Comparison of SPPB score following 6 weeks of vitamin C or 6 weeks of placebo. | Week: 6 and 16. | |
Secondary | Difference in plasma vitamin C between vitamin C and placebo groups. | Comparison of plasma vitamin C following 6 weeks of vitamin C or 6 weeks of placebo. | Week: 6 and 16. | |
Secondary | Difference in serum hs-CRP between vitamin C and placebo groups. | Comparison of serum hs-CRP following 6 weeks of vitamin C or 6 weeks of placebo. | Week: 6 and 16. | |
Secondary | Difference in serum IL-6 between vitamin C and placebo groups. | Comparison of serum IL-6 following 6 weeks of vitamin C or 6 weeks of placebo. | Week: 6 and 16. | |
Secondary | Difference in serum TNF-a between vitamin C and placebo groups. | Comparison of serum TNF-a following 6 weeks of vitamin C or 6 weeks of placebo. | Week: 6 and 16. | |
Secondary | Difference in plasma P1NP between vitamin C and placebo groups. | Comparison of plasma P1NP following 6 weeks of vitamin C or 6 weeks of placebo. | Week: 6 and 16. | |
Secondary | Difference in plasma CTX between vitamin C and placebo groups. | Comparison of plasma CTX following 6 weeks of vitamin C or 6 weeks of placebo. | Week: 6 and 16. |
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