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Counteracting Deleterious Metabolic Glucocorticoid Effects With Metformin

Counteracting Deleterious Metabolic Glucocorticoid Effects With Metformin - A Double-blind, Randomized, Placebo-controlled, Cross-over Study

Status
Completed
Phases
Phase 4
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT04659915
Acronym
Gluco-Met
Enrollment
19
Registered
2020-12-09
Start date
2021-02-25
Completion date
2021-08-18
Last updated
2021-09-23

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

Conditions

Glucocorticoid Effect

Brief summary

Supraphysiological doses of glucocorticoids (GCs) are widely prescribed as immunosuppressants and metabolic side effects such as obesity and diabetes are extremely common. Efforts to investigate and prevent these side effects are lacking. The antidiabetic drug metformin was shown in previous studies to prevent deterioration of glucose homeostasis during GC therapy in patients. However, mechanisms of metformin counteracting GC-induced side effects remain poorly understood. In a randomized, placebo-controlled, cross-over study, 18 healthy volunteers will receive a 7-day course of prednisone with metformin or placebo. Established methods will be used to assess systemic changes in energy homeostasis and novel techniques such as metabolomics will identify underlying pathways. This will advance the understanding of energy homeostasis during GC excess, may prevent thousands of patients from GC-induced side effects and also offers a model for targeting disrupted endogenous GCs secretion.

Detailed description

Obesity is one of the most serious health problems in the 21st century (1). Currently, more than 700 million people world-wide are obese and face an increased risk of morbidity and a reduced life-expectancy of up to 10 years (1, 2). High energy food and a sedentary lifestyle are driving the current obesity pandemic (3). Sleep deprivation and psychological stress also have been identified as contributing factors (4). Many of these factors activate the hypothalamic-pituitary-adrenal (HPA) axis, the key regulatory pathway of energy homeostasis. Activation of the HPA-axis leads to secretion of glucocorticoids (GCs) from the adrenal glands. GCs control energy homeostasis by mobilizing and redistributing energy substrates (5). In an evolutionary context, GCs are particularly important during periods of stress, especially when food is scarce. In today's environment, where food is abundantly available, GCs potentially can become deleterious by severely disrupting energy homeostasis. Therefore, the GC pathway has gained interest as a potential treatment target for the metabolic syndrome. Next to their essential role in energy homeostasis, glucocorticoids are the most commonly prescribed immunosuppressant drugs. GCs are used for acute as well as chronic conditions in virtually all medical disciplines (6). It is well known that patients on GC treatment are at high risk for developing numerous side effects. Next to dyslipidaemia, arterial hypertension and cardiovascular disease, up to 80% of patients experience weight gain, while around 40% develop diabetes (7). Currently, no therapies exist to prevent any of these side effects. The only available strategy to prevent GC-induced side effects is to restrain GC use. The objective of this project is to test in a clinical study in humans whether metformin can counteract the deleterious metabolic effects developed after a short-term glucocorticoid treatment. The primary objective is to test how metformin counteracts metabolic side effects of GCs compared to placebo. Secondary objectives are to detect underlying pathways in blood (metabolomics), adipose tissue (gene expression analysis) and mitochondria (Cytosensor) with metformin in combination with prednisone compared to placebo and prednisone. This is a double-blind, randomized, placebo-controlled cross-over study. After screening, subjects will be randomized to two crossover 7-day study periods with a washout period of 28 days: A) Participants will receive prednisone 30 mg/d p.o. and metformin (starting with a dose of 500 mg/d and increasing the dose by 500 mg every other day until 2000 mg/d are achieved). B) Participants will receive prednisone 30 mg/d p.o. and placebo p.o. (starting with a dose of 500 mg/d and increasing the dose by 500 mg every other day until 2000 mg/d are achieved).

Interventions

DRUGMetformin 500 mg Oral Tablets + Prednisone 20mg Tablets

During one phase of the study: Metformin 500mg Day 1 1-0-0 Day 2 1-0-0 Day 3 1-0-1 Day 4 1-0-1 Day 5 2-0-1 Day 6 2-0-1 Day 7 4-0-0 In combination with prednisone 20mg: day 1 to day 7 1.5-0-0.

DRUGPlacebo 500 mg Tablets + Prednisone 20mg Tablets

During another phase of the study: identical looking placebo pills starting day 1 500mg 1-0-0, day 2 500mg 1-0-0, day 3 500mg 1-0-1, day 4 500mg 1-0-1, day 5 500mg 2-0-1. day 6 2-0-1, day 7 4-0-0. In combination with prednisone 20mg: day 1 to day 7 1.5-0-0.

Sponsors

Eleonora Seelig
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
CROSSOVER
Primary purpose
PREVENTION
Masking
DOUBLE (Subject, Investigator)

Masking description

Placebo-controlled

Intervention model description

Double-blind, randomized, placebo-controlled cross-over study

Eligibility

Sex/Gender
MALE
Age
18 Years to 40 Years
Healthy volunteers
Yes

Inclusion criteria

* BMI 18.5 - 25 kg/m2

Exclusion criteria

* Any current significant disease, * Any medication * Glucocorticoids and/ or metformin for up to four weeks before study inclusion * Regular alcohol intake (\>30g/d), * Regular physical activity (\>4hrs per week), * Known allergy to metformin, * Inability or unwillingness to provide informed consent.

Design outcomes

Primary

MeasureTime frameDescription
Insulin sensitivityTwo 1-week intervention periodsChange in insulin sensitivity (HOMA-Index) assessed with a mixed meal tolerance test.

Secondary

MeasureTime frameDescription
Lipids (mmol/l)Two 1-week intervention periodsBlood sample
Cortisol (nmol/l)Two 1-week intervention periodsBlood sample
GLP-1 (nmol/l)Two 1-week intervention periodsBlood sample
GIP (nmol/l)Two 1-week intervention periodsBlood sample
PYY (pg/ml)Two 1-week intervention periodsBlood sample
C-peptide (pmol/l)Two 1-week intervention periodsBlood sample
T3 (nmol/l)Two 1-week intervention periodsBlood sample
T4 (nmol/l)Two 1-week intervention periodsBlood sample
Substrate utilisationTwo 1-week intervention periodsRespiratory quotient assessed with indirect calorimetry
GDF-15 (pg/mL)Two 1-week intervention periodsBlood sample
TSH (mIU/l)Two 1-week intervention periodsBlood sample
HGH (mIU/l)Two 1-week intervention periodsBlood sample
Sympathetic nervous system activityTwo 1-week intervention periodsHeart rate variability analysis
Blood pressureTwo 1-week intervention periodsAssessment of blood pressure with a standard blood pressure monitor.
WeightTwo 1-week intervention periodsMeasurement of weight with a standard scale
Energy expenditureTwo 1-week intervention periodsBasal metabolic rate measured with indirect calorimetry

Other

MeasureTime frameDescription
MetabolomicsTwo 1-week intervention periodsMetabolomics will be performed in blood plasma
Gene expression analysisTwo 1-week intervention periodsAdipose tissue biobsy

Countries

Switzerland

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026