Type 1 Diabetes
Conditions
Keywords
Galactose metabolism, Skeletal muscle uptake of Galactose, Hepatic galactose uptake, Cerebral galactose uptake
Brief summary
This Ph.D. project investigates whether orally ingested galactose can be taken up by skeletal muscle and the heart in response to exercise or hyperinsulinemia, and whether it may serve as a viable nutritional strategy for individuals with type 1 diabetes (T1D). Although exercise provides significant health benefits for people with T1D, it is often associated with substantial glucose fluctuations and an increased risk of hypoglycemia. Conventional carbohydrate strategies based on glucose may further exacerbate glycemic instability due to the rapid increase in blood glucose levels. In contrast, galactose is metabolized more slowly and may therefore provide a more stable energy source during and after exercise. Previous research has demonstrated that intravenously administered galactose is taken up by human skeletal muscle, with uptake increasing during exercise, suggesting a mechanism that may be at least partly insulin-independent. Building on these findings, this project aims to determine whether similar uptake occurs when galactose is ingested orally. This study uses a randomized controlled design and applies non-invasive 18F-FDGal PET imaging to quantify galactose uptake in skeletal muscle and cardiac tissue. The findings may contribute to improving dietary recommendations for individuals with T1D, particularly in relation to maintaining stable blood glucose levels during and after physical activity.
Detailed description
Previous studies using intravenously administered galactose have demonstrated direct uptake by human skeletal muscle, with uptake increasing following exercise. These findings challenge the traditional view that galactose must first be converted to glucose in the liver before utilization by peripheral tissues and suggest that exercise may stimulate galactose uptake through partly insulin-independent mechanisms. However, it remains unknown whether the tissue distribution and uptake kinetics of orally ingested galactose resemble those observed during intravenous administration. The primary hypothesis is that prior exercise increases skeletal muscle galactose uptake. A secondary hypothesis is that co-ingestion of glucose reduces peripheral galactose uptake, potentially through increased hepatic extraction. To investigate this, eight healthy participants and eight individuals with T1D will complete two study days in a randomized crossover design. On each study day, participants will perform 30 minutes of unilateral high-intensity leg exercise, with the non-exercised leg serving as an intra-individual control. Following exercise, participants will ingest either 30 g galactose or 30 g galactose combined with 30 g glucose together with 100 MBq of ¹⁸F-FDGal. A 90-minute dynamic whole-body PET scan will be performed to characterize the tissue distribution and kinetics of ¹⁸F-FDGal, followed by a static brain scan. Tissue-specific time-activity curves will be extracted and, together with serial blood sampling, used for kinetic modeling of galactose uptake in skeletal muscle, liver, heart, and brain. Blood samples will be collected throughout the experiment to characterize systemic metabolic responses. The unilateral exercise model enables direct within-participant comparison of galactose uptake between exercised and resting skeletal muscle, while the crossover design allows assessment of how glucose co-ingestion affects galactose distribution and uptake.
Interventions
Participants undergo two experimental conditions in a randomized crossover design. In one condition, participants ingest 30 g of galactose, whereas in the other condition, they ingest 30 g of galactose combined with 30 g of glucose. The order of the conditions is randomized across participants.
Sponsors
Study design
Intervention model description
Participants will complete two experimental study visits in a randomized crossover design. On one visit, participants will ingest 30 g galactose, and on the other visit they will ingest 30 g galactose combined with 30 g glucose. The order of the interventions will be randomized. At each visit, participants will perform a 30-minute one-legged exercise protocol, consisting of a 5-minute warm-up followed by repeated 1-minute high-intensity intervals interspersed with 2-minute recovery periods. Immediately after exercise, participants will consume the assigned carbohydrate beverage together with approximately 100 MBq 18F-FDGal dissolved in water. After ingestion, participants will undergo a 90-minute dynamic whole-body PET scan to assess galactose uptake in skeletal muscle and extra-hepatic organs. Following a short break, a 10-minute static brain PET scan will be performed to evaluate cerebral tracer uptake.
Eligibility
Inclusion criteria
* Healthy or T1D * BMI 18,5-30 kg/m2 * Singed informed consent
Exclusion criteria
* Clinically significant heart, lung, kidney, liver, endocrine, or malignant disease based on information collected during the initial screening visit as well as blood tests * Lack of awareness of hypoglycemia episodes * Blood donation within the last 3 months * Smoking * Alcohol or substance abuse * Participation in other studies involving ionizing radiation within the last 6 months * Claustrophobia * Inability to train one leg for one hour
Design outcomes
Primary
| Measure | Time frame |
|---|---|
| Skeletal muscle galactose uptake rate (μmol/min/g) measured by 2-(18)F-fluoro-2-deoxy-d-galactose (18F-FDGal) | Measurement will be made on each of the two study days |
Secondary
| Measure | Time frame | Description |
|---|---|---|
| Hepatic galactose uptake | Measurements will be made on each of the two study days | Hepatic galactose uptake rate (μmol/min/g) measured by 2-(18)F-fluoro-2-deoxy-d-galactose (18F-FDGal) |
| Cerebral galactose Uptake | Measurement will be made on each of the two study days | Galactose uptake in the brain, measured by a 10-minute static PET-CT scan performed after the 90-minute dynamic scan. |
Countries
Denmark