Skip to main content
OpenTrials
Completed

NCT Number: NCT02598830

The Granheim COPD Study - Vitamin D and Strength Training

This study evaluates the effect of vitamin D supplementation on outcomes of 10 weeks progressive strength training in 100 ageing subjects (>45 years of age). Participants will be recruited into two similarly sized strata; one containing COPD patients and one containing healthy subjects of similar age. In each stratum, half the participants will receive vitamin D supplementation and half the participants will receive placebo

Completed

Looking for future studies?

Notify Me

Key information

Age range

45 year and older

Sex eligibility

All sexes

Study type

Interventional

Phase

Not applicable

Primary location

Inland Norway University of Applied Sciences

Lillehammer, Norway

About this study

Physical activity is a potent way of relieving some of the adverse morbidities associated with COPD, such as muscle atrophy and reduced muscle quality. It is thus problematic that 20-30% of patients fail to elicit positive adaptations to training. This oddity has been ascribed inherent muscular properties, with potential links to comorbidities such as vitamin D and testosterone deficiency and the nature of the training program. In the present project, a double-blinded RCT will be performed to disclose the functional and biological efficacy of vitamin D supplementation (with concomitant ingestion of 1000 mg Ca2+) on the outcomes of 10 wks strength training in 100 aging individuals with or without COPD. The strength training intervention will be preceded by 3 weeks of progressive introduction to training protocols.

50 COPD patients and 50 healthy subjects will be allocated into two strata and separately randomized into two equally sized supplementation groups; (1) vitamin D3 and (2) placebo. The planned 50:50 ratio between COPD patients and healthy individuals may change, depending on the access to COPD patients. All subjects will perform lower-limb strength-training protocols in a contralateral manner: (leg 1) high-resistance (10 RM) and (leg 2) low-resistance (30 RM). Such a one-limb-at-a-time protocol ensures training that is unconfined by the cardiorespiratory limitations inherent to these patients, and allow comparison of the two training modalities in a manner unconfined by individual variation in exercise adaptability. A pilot study investigating the possible central pulmonary capacity limitation to two-legged strength training exercise in COPD patients will be performed. In this pilot study, we will compare exercise performance involving large and small muscle mass. In addition, all subjects will perform a selection of bilateral upper body exercises (10 RM), ensuring adequate hormonal responses and compliance to the study. The study is likely to revitalize guidelines for rehabilitation of COPD patients, and to provide vital information regarding the role of vitamin D in adaptations to strength training.

For outcome measures specific to COPD pasients, final analyses will be performed on data from the COPD population only. For other outcome measures, final analyses will be performed on data merged from COPD patients and healthy subjects. An important rationale behind implementing healthy control subjects is to increase the statistical power of outcome measures unrelated to COPD epidemiology, which are of general relevance to physiological adaptation to strength training. In a related set of analyses, we will perform between-groups comparisons, including multivariate analyses. We will also compare the efficacy of high- and low-resistance strength training in COPD patients and healthy control subjects. The two training modalities are expected to result in similar muscular adaptations.

In general, baseline vitamin D levels in blood, measured as 25(OH)D, is anticipated to be a determinant of the efficacy of the strength training intervention. In response to vitamin D3 supplementation, individuals with low baseline levels of 25(OH)D are expected to display more pronounced changes in biological active vitamin D, leading to more pronounced changes in functional and biological outcome measures in response to strength training. In contrast, supplementation may not lead to further elevation of blood 25(OH)D levels in individuals with high baseline levels, essentially meaning that vitamin D3 ingestion will be leveled out by or exceeded by the elimination of vitamin D derivatives. In these individuals, vitamin D3 ingestion will not have an additive effect on functional and biological outcome measures in response to strength training. To assess individual variation in vitamin D responses, data on functional and biological variables will be divided into quartiles based on baseline 25(OH)D-levels, whereupon comparisons will be made between low-end and high-end quartiles. Individual variation in responses to vitamin D supplementation and strength training will also be assessed using a mixed model approach.

Who can participate

Healthy volunteers accepted: Yes

Only the study team can determine whether someone qualifies for participation.

COPD group

Inclusion criteria

  • Stable COPD at GOLD stage II or III, FEV1/FVC < 0.7 and FEV1 <80% and >30% of predicted
  • >45 years of age

Exclusion criteria

  • Unstable cardiovascular disease
  • Chronic granulomatous
  • Known active malignant disease within last 5 years
  • Physically disabling muscloskeletal diseases
  • Peroral use of steroids within last 2 months
  • Serious psychiatric comorbidity
  • Less than 4 weeks since last return t o habit ual condit ion from exacerbation
  • Failing to understand Norwegian literary or verbally
  • Medical record diagnosis of asthma
  • More than one bout of strength training per week during the last 6 months leading up to the project

Healthy control group

Inclusion criteria

  • >45 years of age

Exclusion criteria

  • COPD
  • Unstable cardiovascular disease
  • Chronic granulomatous
  • Known active malignant disease within last 5 years
  • Physically disabling muscloskeletal diseases
  • Peroral use of steroids within last 2 months
  • Serious psychiatric comorbidity
  • Failing to understand Norwegian literary or verbally
  • Medical record diagnosis of asthma
  • More than one bout of strength training per week during the last 6 months leading up to the project

Treatment and study plan

Vitamin D3

Dietary Supplement

Vitamin D3 dissolved in olive oil, encapsuled

Other names: cholecalciferol

Placebo

Dietary Supplement

Olive oil, encapsuled

Primary outcomes

  1. Muscle size

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    Muscle cell cross-sectional area measured in biopsies from m. vastus lateralis using immunohistochemistry

  2. Muscle phenotype

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    Muscle fiber type composition measured in biopsies from m. vastus lateralis using immunohistochemistry

Secondary outcomes

  1. Lung function

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    Lung function measured using spirometry

  2. One-legged cycling

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    Performance indicies measured during an incremental one-legged cycling test

  3. Hormones in blood

    Time frame: Changes over the course of the intervention (week 0 to 28)

    Levels of hormones in blood

  4. Cytokines in blood

    Time frame: Changes over the course of the intervention (week 0 to 28)

    Levels of cytokines in blood

  5. Steroids in skeletal muscle

    Time frame: Changes over the course of the intervention (week 0 to 28)

    Levels of steroids in m. vastus lateralis

  6. Androgen-converting enzymes in skeletal muscle

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    Levels of androgen-converting enzymes in m. vastus lateralis

  7. Gene expression in skeletal muscle

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    RNA (e.g. messenger RNA, ribosomal RNA, microRNA, long non-coding RNA) abundances in m. vastus lateralis, measured both as single genes and at the level of the transcriptome

  8. Gene expression in skeletal muscle

    Time frame: Changes from before to after familiarization to strength training (week 15 to week 17)

    RNA (e.g. messenger RNA, ribosomal RNA, microRNA, long non-coding RNA) abundances in m. vastus lateralis, measured both as single genes and at the level of the transcriptome

  9. Protein abundances in skeletal muscle

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    Levels of proteins and their modification status (e.g. phosphorylation) in m. vastus lateralis, measured at the level of single proteins and at the level of the proteome

  10. Protein abundances in skeletal muscle

    Time frame: Changes from before to after familiarization to strength training (week 15 to week 17)

    Levels of proteins and their modification status (e.g. phosphorylation) in m. vastus lateralis, measured at the level of single proteins and at the level of the proteome

  11. Vitamin D in blood

    Time frame: Changes over the course of the intervention (week 0 to 28)

    Levels of vitamin D in blood

  12. Step test

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    Performance and performance indicies measured during a 6 minutes step test

  13. Pasient-reported outcome measures, generic

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    Pasient-related outcome measures assessed using the generic survey SF-36

  14. Pasient-reported outcome measures, COPD-specific

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    COPD-specific pasient-reported outcome assessed using COPD assessment test

  15. Body mass composition

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    Body mass composition measured using Dual-energy X-ray absorptiometry (DXA)

  16. Bilateral upper body maximal strength

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    The ability of muscles of the upper body to exert maximal force during dynamic movements

  17. Grip strength

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    Isometric hand grip strength

  18. Sit-to-stand test

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    Performance and performance indicies measured during a sit-to-stand test

  19. Unilateral lower body maximal muscle strength

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    The ability of muscles of the lower body to exert maximal force during dynamic movements

  20. Unilateral lower body muscle endurance

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    The ability of muscles of the lower body to perform repeated dynamic contractions at a specified submaximal load to exhaustion

  21. Bilateral upper body muscle endurance

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    The ability of muscles of the upper body to perform repeated dynamic contractions at a specified submaximal load to exhaustion

  22. Unilateral lower body isokinetic muscle strength

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    The ability of muscles of the lower body to exert maximal force during isokinetic movements

  23. Daily life activity level

    Time frame: Changes from before to after the intervention (week 0 to week 28)

    Daily life activity level measured using accelerometer

  24. Muscle cell biological traits

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    Muscle cell biological traits, including numbers of myonuclei, satelitte cells and capillaries, measured in biopsies from m. vastus lateralis using immunohistochemistry

  25. Muscle mitochondrial quantities

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    Mitochondrial quantities measured in biopsies from m. vastus lateralis

  26. Muscle mitochondrial functions

    Time frame: Changes from before to after the strength training intervention (week 19 to week 28)

    Mitochondrial functions measured in biopsies from m. vastus lateralis

Other outcomes

  1. Training diary

    Time frame: Measured over the course of the strength training familiarization period and the strength training intervention (week 15 to week 28)

    Training diary containing information about type of training, duration of training and training intensity

  2. Dietary registration

    Time frame: Registred at one time point during the strength training intervention (~week 23, registred over four days)

    Detailed registration of food intake

  3. Self-reported information on lifestyle-related aspects

    Time frame: Measured over the course of the intervention (week 0 to week 28)

    Disease, symptoms, injury, vitamin D-intake, time spent outdoors, solarium, training background, smoking, etc

Sponsors and collaborators

Lead sponsor

Inland Norway University of Applied Sciences

Other

Collaborators

  • Lillehammer Hospital for Rheumatic Diseases
  • Norwegian School of Sport Sciences
  • Sykehuset Innlandet HF
  • University of Bergen
  • University of Copenhagen

Registry information

Official study title

The Granheim COPD Study: Effects of Vitamin D3-supplementation on the Efficacy of Strength Training in COPD Patients and Healthy Controls - a Double-blinded RCT

Important dates

Study start
2015
Primary completion
2018
Study completion
2018
First posted
Nov 6, 2015
Registry last updated
Dec 12, 2018

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

View the official ClinicalTrials.gov record (opens in a new tab)

This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

Published trials that share one or more normalized conditions with this study.