Gut Microbiota, Mitochondrial Function and Metabolic Health in Obesity
Effect of a Very Low-calorie Diet on Microbiota, Oxidative Stress, Inflammatory and Metabolomic Profile in Metabolically Healthy and Unhealthy Obese Subjects
Study Overview
Status
Status
Conditions
Conditions
Intervention / Treatment
Intervention / Treatment
Study Type
Study Type
Enrollment (Actual)
Enrollment
Phase
Phase
- Not Applicable
Contacts and Locations
Study Locations
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-
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Valencia, Spain, 46020
- FISABIO
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-
Participation Criteria
Eligibility Criteria
Eligibility Criteria
Ages Eligible for Study
- Adult
Accepts Healthy Volunteers
Description
Inclusion Criteria:
- Patients with BMI≥30kg/m2, with at least 5 years of diagnosed obesity evolution.
- Patients have had stable body weight (±2 kg) during the 3 months prior to the study.
Exclusion Criteria:
- All patients with acute or chronic inflammatory diseases, neoplasic disease, secondary causes of obesity (uncontrolled hypothyroidism, Cushing's syndrome), and established liver and kidney failure (according to transaminase levels ±2 SD of the mean and estimated glomerular filtration rate using the CKD-EPI formula >60) will be excluded.
Study Plan
How is the study designed?
Design Details
- Primary Purpose: Treatment
- Allocation: N/A
- Interventional Model: Single Group Assignment
- Masking: None (Open Label)
Number of Arms
Arms and Interventions
Participant Group / ArmParticipant Group / Arm |
Intervention / TreatmentIntervention / Treatment |
|---|---|
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Experimental: Very low-calorie diet Intervention
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Subjects undergo two cycles of a very-low-calorie diet (VLCD) for 6 weeks each, alternating with a hypocaloric diet (12 weeks).
The dietetic intervention consists of a VLCD using a liquid formula (Optisource Plus, Nestlé S.A., Vevey, Switzerland), providing 52.8 g protein, 75.0 g carbohydrates, 13.5 g fat, 11.4 g fiber, and essential vitamins and minerals based on Recommended Dietary Allowances (RDA).
This formula supplies 2738 kJ/day (654 kcal/day), replacing the participants' three daily meals.
Following this and before the second VLCD cycle, a dietician performs an individualized nutritional assessment to calculate the resting energy expenditure, and personalized hypocaloric diets were prepared, reducing 500 kcal for each individual on their daily caloric expenditure, maintaining the recommended intake of each of the macronutrients (55% carbohydrates, 30% fats and 15% proteins) for 12-weeks.
Other Names:
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What is the study measuring?
Primary Outcome Measures
Primary Outcome Measures
Outcome Measure |
Measure Description |
Time Frame |
|---|---|---|
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Analyze the changes in the diversity of the intestinal microbiota after dietetic intervention.
Time Frame: 5 years
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To assess the alpha-diversity of the intestinal microbiota, defined as the average diversity of species in an ecosystem, the Shannon index will be used.
The results are interpreted as follows: values less than 2 are considered low in diversity and values greater than 3 are high in species diversity.
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5 years
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Evaluate the differences in the diversity of the intestinal microbiota depending on whether patients present metabolically healthy obesity (MHO) or metabolically unhealthy obesity (MUHO).
Time Frame: 5 years
|
To asses the differences in alpha-diversity of the intestinal microbiota in both groups, it will be evaluated whether there are significant differences between the Shannon indices of the two groups.
The classification of patients between MHO and MUHO will be carried out using the following criteria: MUHO will be considered when patients with obesity present ≥2 metabolic abnormalities, and MHO with ≤1 metabolic abnormalities; the following cardiovascular risk factors are considered metabolic abnormalities: elevated blood pressure (defined as either SBP ≥130 mm Hg, DBP ≥85 mm Hg, or treatment with antihypertensive medications), elevated triglycerides (as fasting triglyceride concentration ≥1.7 mmol/l), low HDL-C levels (defined as HDL-C <1.04 mmol/l, in men, <1.29 mmol/l/l in women, or treatment with lipid-lowering medications), dysglycemia (fasting plasma glucose 5.6 to 6.9 mmol/l, and/or and insulin resistance as HOMA-IR >3.8).
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5 years
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Secondary Outcome Measures
Secondary Outcome Measures
Outcome Measure |
Measure Description |
Time Frame |
|---|---|---|
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Evaluate significant changes in body fat mass percentage after the dietetic intervention.
Time Frame: 2 years
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Percentage of body fat mass will be measured by bioelectrical impedance.
It is considered to be high when ≥25% in men and ≥30% in women.
A significant improvement will be considered when notable differences are observed in the mean values between groups measured through p-value (<0.05) with a 95% confidence interval.
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2 years
|
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Assess significant changes in high-sensitivity C-reactive protein (hs-CRP) as an inflammatory parameter after the dietetic intervention.
Time Frame: 2 years
|
Participants will be considered to have achieved an improvement in high-sensitivity C-reactive protein levels if they normalize its value (normality values defined between 0 and 1.69mg/dl).
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2 years
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Evaluate significant changes in C3 protein as an inflammatory parameter after the dietetic intervention.
Time Frame: 2 years
|
Participants will be considered to have achieved an improvement in C3 protein if they normalize its value (normality values defined between 81 and 157mg/dl).
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2 years
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Assess significant changes in plasmatic homocysteine as an inflammatory parameter after the dietetic intervention.
Time Frame: 2 years
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Participants will be considered to have achieved an improvement in plasmatic homocysteine if they normalize its value (normality values defined between 5 and 15µmol/L).
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2 years
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Evaluate significant changes in interleukin 1-beta (IL-1B) levels as a pro-inflammatory molecule after the dietetic intervention.
Time Frame: 2 years
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IL-1B levels will be measured using the Luminex® 200 analyzer system.
A significant improvement will be considered when notable differences are observed in the mean values between groups measured through p-value (<0.05) with a 95% confidence interval.
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2 years
|
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Evaluate significant changes in interleukin 6 (IL-6) levels as a pro-inflammatory molecule after the dietetic intervention.
Time Frame: 2 years
|
IL-6 levels will be measured using the Luminex® 200 analyzer system.
A significant improvement will be considered when notable differences are observed in the mean values between groups measured through p-value (<0.05) with a 95% confidence interval.
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2 years
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Evaluate significant changes in tumor necrosis factor alpha (TNF-alpha) levels as a pro-inflammatory molecule after the dietetic intervention.
Time Frame: 2 years
|
TNF-alpha levels will be measured using the Luminex® 200 analyzer system.
A significant improvement will be considered when notable differences are observed in the mean values between groups measured through p-value (<0.05) with a 95% confidence interval.
|
2 years
|
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Assess significant changes in superoxide dismutase (SOD) levels after the dietetic intervention.
Time Frame: 2 years
|
Superoxide dismutase levels will be measured using the Luminex® 200 analyzer system.
A significant improvement will be considered when notable differences are observed in the mean values between groups measured through p-value (<0.05) with a 95% confidence interval.
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2 years
|
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Analyze the significant differences between metabolomic profile before and after the dietetic intervention.
Time Frame: 2 years
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NMR spectra will be used to obtain spectra from serum samples from the cohort.
In order to evaluate if there will be significant differences after the dietetic intervention, a PLS-DA model for discrimination between basal and post intervention levels will be performed.
Scores plots will be calculated with a 95% confidence interval.
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2 years
|
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Evaluate if there is a significant reduction after the dietetic intervention in total ROS levels.
Time Frame: 2 years
|
Total ROS levels will be assessed by a flow cytometry assay.
A significant improvement will be considered when notable differences are observed in the mean values between groups measured through p-value (<0.05) with a 95% confidence interval.
|
2 years
|
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Assess if there is a significant reduction after the dietetic intervention in glutathione levels.
Time Frame: 2 years
|
Total glutathione levels will be assessed by a flow cytometry assay.
A significant improvement will be considered when notable differences are observed in the mean values between groups measured through p-value (<0.05) with a 95% confidence interval.
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2 years
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Analyze if there is a significant change after the dietetic intervention in total free radicals and superoxide levels.
Time Frame: 2 years
|
Total free radicals and superoxide content will be assessed by a flow cytometry assay.
A significant improvement will be considered when notable differences are observed in the mean values between groups measured through p-value (<0.05) with a 95% confidence interval.
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2 years
|
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Analyze if there is a significant reduction after the dietetic intervention in mitochondrial ROS production.
Time Frame: 2 years
|
Mitochondrial ROS production will be assessed by a flow cytometry assay.
A significant improvement will be considered when notable differences are observed in the mean values between groups measured through p-value (<0.05) with a 95% confidence interval.
|
2 years
|
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Evaluate if there is a significant improvement after the dietetic intervention in mitochondrial membrane potential.
Time Frame: 2 years
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Mitochondrial membrane potential will be assessed by a flow cytometry assay.
A significant improvement will be considered when notable differences are observed in the mean values between groups measured through p-value (<0.05) with a 95% confidence interval.
|
2 years
|
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Analyze the proportion of subjects achieving at least 10% reduction in weight compared with baseline.
Time Frame: 5 years
|
Proportion of subjects achieving at least 10% reduction in weight after the dietetic intervention (6 months).
|
5 years
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Collaborators and Investigators
Sponsor
Sponsor
Collaborators
Collaborators
Publications and helpful links
General Publications
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- Chen HH, Tseng YJ, Wang SY, Tsai YS, Chang CS, Kuo TC, Yao WJ, Shieh CC, Wu CH, Kuo PH. The metabolome profiling and pathway analysis in metabolic healthy and abnormal obesity. Int J Obes (Lond). 2015 Aug;39(8):1241-8. doi: 10.1038/ijo.2015.65. Epub 2015 Apr 24.
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Study record dates
Study Major Dates
Study Start (Actual)
Study Start
Primary Completion (Actual)
Primary Completion
Study Completion (Actual)
Study Completion
Study Registration Dates
First Submitted
First Submitted
First Submitted That Met QC Criteria
First Submitted That Met QC Criteria
First Posted (Actual)
First Posted
Study Record Updates
Last Update Posted (Actual)
Last Update Posted
Last Update Submitted That Met QC Criteria
Last Update Submitted That Met QC Criteria
Last Verified
Last Verified
More Information
Terms related to this study
Additional Relevant MeSH Terms
Other Study ID Numbers
Other Study ID Numbers
- PI18/00932
Plan for Individual participant data (IPD)
Plan to Share Individual Participant Data (IPD)?
Drug and device information, study documents
Studies a U.S. FDA-regulated drug product
Studies a U.S. FDA-regulated device product
product manufactured in and exported from the U.S.
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