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Completed

NCT Number: NCT01064778

Glycemic Index and Brain Function

The investigators propose examine the effects of the dietary factor glycemic index (GI) on brain areas that control food intake and hunger. This knowledge could help design dietary approaches that decrease hunger, and thus promote new weight loss strategies.

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Key information

Age range

18 year–35 year

Sex eligibility

Male

Study type

Interventional

Phase

Not applicable

Primary location

Beth Israel Deaconess Medical Center, Boston, Massachusetts, United States

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About this study

Most individuals have great difficulty following reduced calorie diets because they experience increased hunger. This process is regulated by specific brain areas. Though many psychological and environmental factors are involved, physiological effects of diet may have a significant impact. The postprandial rise in blood glucose, quantified by the glycemic index (GI), is of particular interest. High GI meals elicit hormonal events that limit availability of metabolic fuels, causing hunger and overeating, especially in people with high insulin secretion.

Our aim is to examine how postprandial changes after high versus low GI meals affect hunger and brain function in areas of intake control. Specifically, we speculate that obese individuals will demonstrate functional changes in brain areas of intake control and increased hunger after a high versus low GI meal.

We will recruit obese, young adults and quantify their insulin secretion during a 2-hour oral glucose tolerance test. A brief practice MRI session will serve to familiarize the subjects with the scanning process. During the two test sessions, standardized test meals with high versus low GI will be given in a randomized, blinded cross-over design. Serial blood levels of hormones, metabolic fuels, and metabolites will be correlated with perceived hunger, and a perfusion MRI scan will be performed to assess brain activation during the late postprandial phase, at the nadir of blood sugar and insulin levels (4 hours postprandial).

This work will inform an integrated physiological model relating peripheral postprandial changes to brain function and hunger. In addition, findings may provide evidence of a novel diet-phenotype, in which baseline clinical characteristics can be used to predict which weight loss diet will work best for a specific individual. Metabolite profiling might shed light on the mechanisms linking diet composition to brain function, and provide feasible clinical markers of the identified phenotype to facilitate translation into practice.

Who can participate

Healthy volunteers accepted: Yes

Only the study team can determine whether someone qualifies for participation.

Inclusion criteria

  • Males age 18 to 35 years
  • BMI less than or equal to 25 for age and gender

Exclusion criteria

  • weight > 300 lbs
  • largest body circumference > 144cm
  • body shape incompatible with MRI scanner or equipment
  • MRI exclusion criteria
  • large fluctuations in body weight (5% over preceding 6 months, 2.5% during the study)
  • known medical problems that may affect metabolism or hormones
  • diabetes mellitus (fasting plasma glucose ≥126 mg/dL)
  • other abnormal laboratory screening tests
  • taking any medications or dietary supplements that might affect body weight, appetite, or energy expenditure
  • smoking or illicit substance abuse
  • high levels of physical activity (>30 minutes per day, > 4days per week)
  • currently following a weight loss diet
  • allergies or intolerance to eggs, vanilla extract, equal, canola oil, milk, cornstarch, corn syrup

Treatment and study plan

Low GI

Other

Subjects will be instructed to consume a liquid test meal with a low GI over 5 minutes after baseline laboratory evaluations. The low and high GI meal contain similar amounts of milk, oil, dried egg whites, equal, and vanilla extract. The low GI meal corn-starch as a carbohydrate. Both meals have similar macronutrient composition (60% carbohydrate, 15% protein, 25% fat), micronutrient profiles, physical properties, palatability and sweetness. The high vs. low GI meals have a predicted difference in GI of 90 vs. 40, and consistent with this prediction, a pilot study in obese young adults found a 2.2-fold difference in glycemic response (p<0.001). The test meals will provide 25% of individual daily energy requirements.

High GI

Other

Subjects will be instructed to consume a liquid test meal with a high GI over 5 minutes after baseline laboratory evaluations. The low and high GI meal contain similar amounts of milk, oil, dried egg whites, equal, and vanilla extract. The high GI meal contains corn-syrup as a carbohydrate. Both meals have similar macronutrient composition (60% carbohydrate, 15% protein, 25% fat), micronutrient profiles, physical properties, palatability and sweetness. The high vs. low GI meals have a predicted difference in GI of 90 vs. 40, and consistent with this prediction, a pilot study in obese young adults found a 2.2-fold difference in glycemic response (p<0.001). The test meals will provide 25% of individual daily energy requirements.

Primary outcomes

  1. Blood Flow in Brain Areas of Intake Control.

    Time frame: 4 hours postprandial

Secondary outcomes

  1. Subjective Hunger Rating

    Time frame: Every 30 minutes for 5 hours.

  2. Blood Glucose Level

    Time frame: Every 30 minutes for 5 hours.

  3. Blood Insulin Level

    Time frame: Every 30 minutes for 5 hours

  4. Blood Glucagon Level

    Time frame: Every 30 minutes for 5 hours.

  5. Blood Growth Hormone Level

    Time frame: Every 30 minutes for 5 hours.

  6. Blood Epinephrine Level

    Time frame: Every 30 minutes for 5 hours.

  7. Blood Fatty Acids Level

    Time frame: Every 30 minutes for 5 hours.

    measuring metabolite profiles

Sponsors and collaborators

Lead sponsor

Beth Israel Deaconess Medical Center

Other

Collaborators

  • Boston Children's Hospital
  • Brigham and Women's Hospital

Registry information

Official study title

The Effects of Dietary Glycemic Index on Brain Function

Important dates

Study start
2010
Primary completion
2011
Study completion
2011
First posted
Feb 8, 2010
Registry last updated
Feb 2, 2012

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

View the official ClinicalTrials.gov record (opens in a new tab)

This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

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