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Bone Marrow Adipose Tissue in Relation to Bone and Energy Metabolism in Obesity and Type 2 Diabetes Mellitus

Bone Marrow Adipose Tissue as a New Parameter in Relation to Bone and Energy Metabolism in Obesity and Type 2 Diabetes Mellitus

Status
Recruiting
Phases
Unknown
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT07731438
Acronym
BOD-BMAT
Enrollment
45
Registered
2026-07-28
Start date
2023-05-01
Completion date
2027-01-21
Last updated
2026-07-28

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

Conditions

Obesity

Keywords

Bone marrow adipose tissue, Obesity, Caloric Restriction, Energy Metabolism, Magnetic Resonance imaging, Proton Magnetic Resonance Spectroscopy, Bone marrow mesenchymal stem cells, Bone metabolism, Cellular senescence, Single-cell RNA sequencing, Diet-induced weight loss

Brief summary

This interventional study is part of a broader research project entitled "Bone Marrow Adipose Tissue in Relation to Bone and Energy Metabolism in Obesity and Type 2 Diabetes Mellitus." The broader project includes both a cross-sectional study evaluating bone marrow adipose tissue and bone marrow mesenchymal stem cells in people with different metabolic and bone disorders and the present dietary intervention study. The interventional study investigates whether caloric restriction changes bone marrow adipose tissue, bone health, whole-body metabolism, and the molecular and cellular characteristics of bone marrow mesenchymal stem cells in obese non-diabetic premenopausal women. A group of lean healthy premenopausal women will serve as a comparison group. Participants in the intervention group will undergo an eight-week formula-based very-low-calorie diet using Cambridge Weight Plan products, providing approximately 2.5-3.35 MJ (600-800 kcal) per day, followed by a dietary weight-maintenance phase. Participants will receive nutritional counselling, and dietary adherence, body weight, physical activity, and clinical status will be monitored during scheduled study visits. Clinical and laboratory assessments will be conducted at baseline and after 2, 6, and 12 months. Assessments will include magnetic resonance imaging and proton magnetic resonance spectroscopy of the lumbar spine to measure the amount and lipid composition of vertebral bone marrow adipose tissue. Bone mineral density and body composition will be measured using dual-energy X-ray absorptiometry, with particular attention to bone mineral density at the total hip and femoral neck. Additional measurements will include body weight, waist and hip circumference, body composition, physical activity, and fasting blood tests evaluating bone turnover, glucose and lipid metabolism, inflammatory markers, hormones, and adipokines. Bone marrow aspirates and abdominal subcutaneous adipose tissue biopsies will be obtained at baseline and after six months. Bone marrow-derived and adipose tissue-derived mesenchymal stem cells will be examined for changes in cellular composition, gene-expression profiles, metabolic activity, oxidative stress, differentiation capacity, and senescence-related characteristics. Single-cell RNA sequencing will be used to characterize specific bone marrow mesenchymal stem cell subpopulations. Bone marrow plasma and other biological samples will also undergo metabolomic, lipidomic, and proteomic profiling using high-resolution mass spectrometry. These analyses will be used to identify extracellular molecules and molecular patterns associated with glucose and lipid metabolism, inflammation, cellular senescence, and the response to caloric restriction. The study aims to determine whether diet-induced weight loss can improve the bone marrow microenvironment and modify vertebral bone marrow fat, bone parameters, and the metabolic and senescent phenotype of mesenchymal stem cells. The findings may help identify imaging, cellular, and molecular markers of obesity-related bone fragility.

Detailed description

Bone marrow contains not only blood-forming cells but also adipose tissue and mesenchymal stromal cells that can develop into bone-forming cells or fat cells. Bone marrow adipose tissue (BMAT) is increasingly recognized as an active component of the bone marrow environment that may influence bone remodeling, skeletal strength, and whole-body metabolism. In people with obesity, fracture risk may be increased even when bone mineral density is normal or elevated. This suggests that changes in bone quality, bone marrow fat, and the function of bone marrow mesenchymal stromal cells (BM-MSCs) may contribute to obesity-related bone fragility. The present application describes only the interventional study, which is part of a broader research project entitled "Bone Marrow Adipose Tissue in Relation to Bone and Energy Metabolism in Obesity and Type 2 Diabetes Mellitus." The broader project also includes a cross-sectional study evaluating BMAT and BM-MSC characteristics in participants with different metabolic and skeletal conditions. However, the cross-sectional component is not included in this application and is therefore not described further here. The interventional study will investigate whether weight loss induced by caloric restriction modifies the bone marrow environment in obese non-diabetic premenopausal women. Lean healthy premenopausal women will serve as a comparison group. Participants in the intervention group will follow a formula-based very-low-calorie diet using Cambridge Weight Plan formula products, providing approximately 2.5-3.35 MJ (600-800 kcal) per day for 8 weeks. This will be followed by a 4-month low-calorie diet phase and subsequently by a weight-maintenance phase. Participants will receive nutritional counselling, and dietary adherence, body weight, physical activity, and clinical status will be monitored during scheduled study visits. The study will evaluate whether the dietary intervention changes the amount and lipid composition of vertebral BMAT and whether these changes are associated with changes in bone and metabolic parameters. Vertebral BMAT will be assessed in the lumbar spine using magnetic resonance imaging and proton magnetic resonance spectroscopy. These methods allow non-invasive measurement of bone marrow fat content and assessment of its saturated and unsaturated lipid fractions. Bone mineral density and body composition will be assessed using dual-energy X-ray absorptiometry, with particular attention to the total hip and femoral neck. Abdominal adipose tissue distribution will be evaluated using magnetic resonance imaging. Blood samples will be used to assess glucose and lipid metabolism, bone turnover, inflammatory markers, hormones, and adipokines. Bone marrow aspirates and subcutaneous adipose tissue samples will be collected at baseline and after 6 months to study BM-MSCs and adipose tissue-derived mesenchymal stromal cells. Laboratory analyses will examine their cellular composition, ability to differentiate into bone-forming and fat cells, metabolic activity, oxidative stress, cellular senescence, gene-expression profiles, and other molecular characteristics. Single-cell RNA sequencing will be used to characterize specific BM-MSC subpopulations and identify transcriptional profiles associated with metabolic activity and cellular senescence. Bone marrow plasma and other biological samples will also undergo metabolomic, lipidomic, and proteomic profiling to identify molecules associated with the bone marrow microenvironment, metabolic status, bone health, and the response to caloric restriction. By integrating imaging, clinical, biochemical, cellular, and molecular data, the interventional study aims to determine whether diet-induced weight loss can improve the bone marrow environment and modify factors associated with obesity-related bone fragility. The findings may support the identification of new imaging, cellular, and molecular biomarkers of bone health and provide a scientific basis for future strategies to prevent or treat metabolic bone complications associated with obesity.

Interventions

BEHAVIORALCaloric Restriction

Participants will follow a formula-based very-low-calorie diet (Cambridge Weight Plan) providing approximately 600-800 kcal per day (2.5-3.35 MJ per day) for 8 weeks. This will be followed by a 4-month low-calorie diet phase and subsequently by a weight-maintenance phase. Participants will receive nutritional counselling, and dietary adherence, body weight, physical activity, and clinical status will be monitored during scheduled study visits.

Sponsors

General University Hospital, Prague
Lead SponsorOTHER
Czech Academy of Sciences
CollaboratorOTHER
Ministry of Health, Czech Republic
CollaboratorOTHER_GOV

Study design

Allocation
NON_RANDOMIZED
Intervention model
PARALLEL
Primary purpose
BASIC_SCIENCE
Masking
NONE

Intervention model description

This is a non-randomized, parallel-group study. Obese non-diabetic premenopausal women age-eligible men undergo an eight-week very low-calorie dietary intervention followed by a weight-maintenance phase. Lean healthy premenopausal women and age-eligible men serve as a non-interventional reference group and are assessed at baseline only, without longitudinal follow-up.

Eligibility

Sex/Gender
ALL
Age
21 Years to 55 Years
Healthy volunteers
Yes

Inclusion criteria

Interventional Study: Effect of Caloric Restriction on BMAT/BM-MSCs Phenotype Inclusion Criteria: * Premenopausal women and age-eligible men assigned to either the obese intervention group or the lean control group * Obese intervention group: * Body mass index (BMI) of 30-42 kg/m² * Fasting plasma glucose less than 6.4 mmol/L * Age 25-55 years * Lean control group: * BMI of 19-25 kg/m² * Fasting plasma glucose less than 6.4 mmol/L * Age 25-50 years

Exclusion criteria

* Diabetes mellitus * Secondary osteoporosis * History of severe neuropathic disease * Hyperparathyroidism * Hyperthyroidism * Immobilization * Alcoholism * Chronic gastrointestinal disease * Significant chronic renal impairment, including any of the following: * Chronic kidney disease * Serum creatinine greater than 110 µmol/L * Estimated glomerular filtration rate (eGFR) less than 1 mL/s/1.73 m² * Proteinuria * Diabetic nephropathy * Chronic hepatic impairment * Unstable cardiovascular disease * Uncontrolled hypertension * Current or recent use of any of the following medications: * Bisphosphonates * Estrogen * Denosumab * Gonadotropin-releasing hormone (GnRH) analogs * Glucocorticoids at a dose equivalent to at least 5 mg of prednisone daily for at least 1 month * Phenytoin * Thiazolidinediones * Insulin * Adrenal or anabolic steroids * Anticonvulsants * Anticoagulants * Pharmacological doses of vitamin D or vitamin A supplements * Contraindications to magnetic resonance imaging (MRI), including: * Pacemaker * Metallic implants incompatible with MRI * Claustrophobia

Design outcomes

Primary

MeasureTime frameDescription
Change From Baseline in Mean L2-L4 Vertebral Bone Marrow Adipose Tissue Proton Density Fat FractionBaseline, Week 24, and Week 48Vertebral bone marrow adipose tissue proton density fat fraction will be measured in the L2, L3, and L4 vertebral bodies using the mDIXON Quant MRI sequence. The mean value across the three vertebral bodies will be reported as a percentage.
Change From Baseline in Mean L2-L4 Vertebral Bone Marrow Adipose Tissue Unsaturation IndexBaseline, Week 24, and Week 48The lipid composition of vertebral bone marrow adipose tissue will be measured in the L2, L3, and L4 vertebral bodies using proton magnetic resonance spectroscopy. A prespecified unsaturation index will be calculated from the unsaturated and total lipid signals. The mean value across the three vertebral bodies will be reported.
Change from baseline in BM-MSC and AT-MSC potency, differentiation, senescence, and metabolic adaptationBaseline and Week 24Change from baseline to Week 24 in characteristics of bone marrow-derived mesenchymal stem cells (BM-MSCs) and adipose tissue-derived mesenchymal stem cells (AT-MSCs). Potency is assessed using the colony-forming unit-fibroblast (CFU-F) assay and proliferation rate. Osteogenic differentiation is assessed by alkaline phosphatase (ALP) activity and expression of ALPL and RUNX2; adipogenic differentiation is assessed by Nile Red staining and expression of ADIPOQ and LEP. Senescence is assessed by senescence-associated β-galactosidase activity and expression of p16INK4a and p21. Metabolic adaptation is assessed by extracellular flux analysis of mitochondrial respiration and glycolytic capacity and by insulin-signaling activation. For each parameter, the outcome is the change from baseline to Week 24, compared between BM-MSCs and AT-MSCs.

Secondary

MeasureTime frameDescription
Change from baseline in metabolomic and lipidomic profile of bone marrow and plasmaBaseline and Week 24Change from baseline to Week 24 in the metabolomic and lipidomic profiles of bone marrow and plasma. Untargeted and targeted liquid chromatography-mass spectrometry (LC-MS) analyses assess amino acids, organic acids, nucleotides, and intermediates of central carbon metabolism. LC-MS lipidomic analysis assesses fatty acids, phospholipids, sphingolipids, triacylglycerols, and diacylglycerols. For each metabolite and lipid species, the outcome is the change in concentration from baseline to Week 24, compared between bone marrow and plasma.
Change From Baseline in Total Hip Bone Mineral DensityBaseline, Week 24, and Week 48Areal bone mineral density of the total hip will be measured by dual-energy X-ray absorptiometry using a Hologic Horizon A densitometer. Bone mineral density will be reported in grams per square centimeter. Change from baseline will be calculated at Week 24 and Week 48.
Change From Baseline in Lumbar Spine Bone Mineral DensityBaseline, Week 24, and Week 48Areal bone mineral density of the lumbar spine (L1-L4) will be measured by dual-energy X-ray absorptiometry using a Hologic Horizon A densitometer. Bone mineral density will be reported in grams per square centimeter. Change from baseline will be calculated at Week 24 and Week 48.
Change From Baseline in Femoral Neck Bone Mineral DensityBaseline, Week 24, and Week 48Areal bone mineral density of the femoral neck will be measured by dual-energy X-ray absorptiometry using a Hologic Horizon A densitometer. Bone mineral density will be reported in grams per square centimeter.

Countries

Czechia

Contacts

CONTACTVit Zikan, MD, Ph.D.
vit.zikan@vfn.cz+420731670425
CONTACTMichaela Tencerova, M.Sc., Ph.D.
michaela.tencerova@fgu.cas.cz+420 241 062737
PRINCIPAL_INVESTIGATORMichaela Tencerova, MSc, PhD

Institute of Physiology of the Czech Academy of Sciences

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Jul 29, 2026