Energy Balance Clinical Trial
Official title:
Investigating the Combined Effect of Acute Energy Deficit and Aerobic Exercise Training on Muscle Quality in Healthy Adult Males
Verified date | November 2022 |
Source | Liverpool John Moores University |
Contact | n/a |
Is FDA regulated | No |
Health authority | |
Study type | Interventional |
10 healthy, male, participants will complete a a 5-day baseline assessment (days -5 to -1) and two consecutive 5-day periods of controlled exercise to increase oxidative capacity (3 days of aerobic exercise per period, 15 kcal/kg FFM/day energy expenditure cycling) and energy intake (15 days in total, with a testing session on morning 16). This will achieve states of energy balance (EB; energy availability - EA - 45 kcal/kg of fat free mass (FFM)/day), required for weight maintenance (days 1 - 5), followed by energy deficit (ED; EA 10 kcal/kg FFM/day), required for weight loss on days 6 - 10. Over the data-collection period, participants will consume deuterium (D2O) tracer to facilitate dynamic proteomic profiling to assess the impact of the intervention on muscle quality (primary outcome measure). Muscle biopsies will therefore be collected on days -5, 1, 6 & 11, alongside daily saliva samples, and venous blood collection on days -5, 1, 3, 5, 6, 8, 10 & 11. These samples will be used to assess further, secondary, outcome measures including alterations in intra-muscular lipid profiles (lipid droplet content, morphology and lipid-droplet associated proteins in different subcellular compartments [intermyofibrillar vs subsarcolemmal]), alterations in blood metabolites and hormones and skeletal muscle glycogen concentrations. Changes in body mass, body composition and RMR will also be assessed.
Status | Completed |
Enrollment | 10 |
Est. completion date | December 15, 2021 |
Est. primary completion date | December 15, 2021 |
Accepts healthy volunteers | Accepts Healthy Volunteers |
Gender | Male |
Age group | 18 Years to 40 Years |
Eligibility | Inclusion Criteria: - Gender/Sex - Male - Age - 18 - 40 - % body fat - ~18 - 26 % - Health - Healthy (as determined by pre-participation questionnaires) - Training Status - Regularly Exercising/Aerobically trained (3-4 aerobic training sessions/week, 3-5 hrs/week) Non-smokers - Weight-stable (within 2 kg) for the past 6-months Exclusion Criteria: - Gender/Sex - Female/Other - Age - <18 - >40 - Health - Deemed unable to perform exercise (assessed via readiness to exercise questionnaire) - Current smoker. - Medical Condition - Those with any previous diagnosis of; Osteoporosis/low bone mineral density, cardio-vascular disease, Diabetes Mellitus, Cerebrovascular Disease, blood-related illness/disorder, Asthma or other respiratory illness/disorder, Liver Disease, Kidney Disease, gastrointestinal disease, Eating Disorder or Disordered Eating. - Those currently taking prescription medication or unwell with a cold or virus at the time of participation. - Those unwilling to adhere to the study's methodological requirements (including adhering to alterations in diet and training - inc. alcohol abstention) from the day prior to intervention onset (24 hrs pre-intervention) to completion of follow-up assessments (day-11). - Those following a restrictive diet (e.g. vegetarians/vegans) - Any individuals with a food allergy/intolerance - Training status - Does not train aerobically 3 + times/week (over past 6 months on average) |
Country | Name | City | State |
---|---|---|---|
United Kingdom | Liverpool John Moores University | Liverpool | Merseyside |
Lead Sponsor | Collaborator |
---|---|
Liverpool John Moores University | Alliance for Potato Research and Education |
United Kingdom,
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* Note: There are 14 references in all — Click here to view all references
Type | Measure | Description | Time frame | Safety issue |
---|---|---|---|---|
Primary | Alterations to skeletal muscle proteome | Quantification of changes in skeletal muscle quality via dynamic proteomic profiling following short-term energy balance and energy deficit. | Days -5, 1, 6 & 11 | |
Secondary | Intra-muscular lipid profile: lipid droplet content | Assessment of alterations in intra-muscular lipid droplet content | Days -5, 1, 6 & 11 | |
Secondary | Intra-muscular lipid profile: lipid droplet morphology | Assessment of alterations in intra-muscular lipid morphology | Days -5, 1, 6 & 11 | |
Secondary | Intra-muscular lipid profile: lipid droplet associated proteins | Assessment of alterations in intra-muscular lipid-droplet associated proteins | Days -5, 1, 6 & 11 | |
Secondary | Blood metabolites/hormones: Glucose concentrations | Assessment of alterations in blood metabolites and hormones following short-term energy balance and energy deficit. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Blood metabolites/hormones: Insulin concentrations | Assessment of alterations in blood metabolites and hormones following short-term energy balance and energy deficit. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Blood metabolites/hormones: Leptin concentrations | Assessment of alterations in blood metabolites and hormones following short-term energy balance and energy deficit. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Blood metabolites/hormones: Ghrelin concentrations | Assessment of alterations in blood metabolites and hormones following short-term energy balance and energy deficit. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Blood metabolites/hormones: Lactate concentrations | Assessment of alterations in blood metabolites and hormones following short-term energy balance and energy deficit. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Blood metabolites/hormones: Testosterone concentrations | Assessment of alterations in blood metabolites and hormones following short-term energy balance and energy deficit. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Blood metabolites/hormones: Adiponectin concentrations | Assessment of alterations in blood metabolites and hormones following short-term energy balance and energy deficit. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Blood metabolites/hormones: Triiodothyronine concentrations | Assessment of alterations in blood metabolites and hormones following short-term energy balance and energy deficit. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Blood bone turnover markers: Beta-CTX concentrations | Assessment of alterations in blood metabolites and hormones following short-term energy balance and energy deficit. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Blood bone turnover markers: P1NP concentrations | Assessment of alterations in blood metabolites and hormones following short-term energy balance and energy deficit. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Skeletal Muscle Glycogen Concentrations | Assessment of alterations in skeletal muscle glycogen concentrations following short-term energy balance and energy deficit. | Days -5, 1, 6 & 11 | |
Secondary | Changes in body composition: Body Mass (kg) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via bio-electrical impedance analysis. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Changes in body composition: Body Mass Index [BMI] (kg/m^2) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via bio-electrical impedance analysis. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Changes in body composition: Fat Mass (kg) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via bio-electrical impedance analysis. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Changes in body composition: Body Fat Percentage (%) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via bio-electrical impedance analysis. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Changes in body composition: Fat Free Mass (kg) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via bio-electrical impedance analysis. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Changes in body composition: Skeletal Muscle Mass (kg) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via bio-electrical impedance analysis. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Changes in body composition: Total Body Water (l) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via bio-electrical impedance analysis. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Changes in body composition: Total Body Water (%) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via bio-electrical impedance analysis. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Changes in body composition: Extracellular Water (l) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via bio-electrical impedance analysis. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Changes in body composition: Extracellular Water (%) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via bio-electrical impedance analysis. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Changes in body composition: Extracellular Water/Total Body Water ratio (%) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via bio-electrical impedance analysis. | Days -5, 1, 3, 5, 6, 8, 10 & 11 | |
Secondary | Changes in body composition: Body Mass (kg) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via DXA. | Days -5, 1, 6, & 11 | |
Secondary | Changes in body composition: Fat Mass (kg) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via DXA. | Days -5, 1, 6, & 11 | |
Secondary | Changes in body composition: Percent Body Fat (%) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via DXA. | Days -5, 1, 6, & 11 | |
Secondary | Changes in body composition: Bone Mineral Content (g) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via DXA. | Days -5, 1, 6, & 11 | |
Secondary | Changes in body composition: Bone Mineral Density (g/cm^2) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via DXA. | Days -5, 1, 6, & 11 | |
Secondary | Changes in body composition: Fat Free Mass (kg) | Assessment of alterations in body mass and body composition following short-term energy balance and energy deficit. Assessed via DXA. | Days -5, 1, 6, & 11 | |
Secondary | Changes in Resting Metabolic Rate (kcal/day) | Assessment of alterations in resting metabolic rate following short-term energy balance and energy deficit. | Days -5, 1, & 11. |
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