Columbia University Irving Medical Center
New York, 10032, United States
NCT Number: NCT05724134
This is a single-center, prospective, randomized, controlled (crossover) clinical study designed to investigate the specific dose-response impact of insulin infusion rate (IIR) on blood glucose levels during a pancreatic clamp study. The investigators will recruit participants with a history of overweight/obesity and evidence of insulin resistance (i.e., fasting hyperinsulinemia plus prediabetes and/or impaired fasting glucose and/or Homeostasis Model Assessment of Insulin Resistance [HOMA-IR] score >=2.73), and with evidence of, or clinically judged to be at high risk for, uncomplicated non-alcoholic fatty liver disease (NAFLD). Participants will undergo two pancreatic clamp procedures in which individualized basal IIR are identified, followed in one by maintenance of basal IIR (maintenance hyperinsulinemia, MH) and in the other by a stepped decline in IIR (reduction toward euinsulinemia, RE). In both clamps the investigators will closely monitor plasma glucose and various metabolic parameters. The primary outcome will be the absolute and relative changes in steady-state plasma glucose levels at each stepped decline in IIR.
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Notify Me18 year–65 year
All sexes
Interventional
Phase 1
New York, 10032, United States
Although high blood sugar and risk of heart disease are the most well-known health effects of type 2 diabetes (T2DM), nonalcoholic fatty liver disease (NAFLD), in which too much fat accumulates in the liver, has come to be recognized as another important complication. Unchecked, NAFLD can progress to severe liver inflammation, liver failure, and even liver cancer. The investigators suspect that high levels of the blood sugar-lowering hormone insulin leads to excessive fat production by the liver, and so lowering insulin levels might help to improve NAFLD. In order to answer this question, the investigators will recruit people at risk for T2DM and NAFLD to perform a "pancreatic clamp" - a procedure in which the body's production of insulin is temporarily shut off and then replaced at the same or lower levels. Again, the investigators expect that lowering insulin levels will lower fat production. Because this is a new research approach, the investigators first need to understand how lowering insulin levels affects blood sugar. Research participants in this pilot study will therefore undergo two pancreatic clamps in random order: one roughly maintaining their own internal ("basal") insulin level and one in which the investigators lower that basal insulin level by up to 50%. In each case, the investigators will observe the absolute and relative changes in blood sugar and the levels of certain fats as the investigators change the insulin level. Once the investigators have found a lower insulin level that they can safely maintain, the investigators will go on to study its effect on fat production in a later study.
Healthy volunteers accepted: No
Only the study team can determine whether someone qualifies for participation.
Inclusion criteria
a. Meeting either of the American Diabetes Association's definitions for prediabetes or IFG within the previous year* and on screening labs: i. Prediabetes: Hemoglobin A1c 5.7-6.4% ii. IFG: plasma glucose of 100-125 mg dL-1 after 8-h fast b. Homeostasis Model of Insulin Resistance (HOMA-IR) score ≥ 2.73
Exclusion criteria
i. Unwillingness to use only bedpan or urinal to void during the clamp
ii. Unwillingness to fast (except water) for up to 22 hours
iii. Documented weight loss of ≥ 5% of baseline within the previous 6 months
iv. Abnormal blood pressure (including on treatment, if prescribed)
v. Abnormal resting heart rate: <60 or ≥100 bpm
vi. Abnormal screening electrocardiogram (or if on file, performed within previous 90 d)
vii. Laboratory evidence of diabetes mellitus:
viii. Positive qualitative β-hCG (i.e., pregnancy test) in women of childbearing potential
ix. Liver function abnormalities (either of the following) - Transaminases (AST or ALT) > 3.0 x the upper limit of normal - Total bilirubin > 1.25 x the upper limit of normal
x. Abnormal fasting triglycerides at screening ≥ 400 mg/dL
xi. Abnormal screening serum electrolytes (any of the following)
xii. Abnormal complete blood count (CBC) (any of the following)
ii. Women currently pregnant, measured by serum and/or urine human chorionic gonadotropin, beta subunit (β-hCG)
iii. Women currently breastfeeding
i. Pancreatic pathology ii. Significant cardiovascular diseases (N.B. uncomplicated hypertension is not exclusionary) iii. Chronic kidney disease, Stage 3 or higher (estimated glomerular filtration rate < 60 mL / min / 1.73 m2), of any cause iv. Advanced or severe liver disease v. Gallstone disease vi. Chronic viral illness including human immunodeficiency virus (HIV), hepatitis B virus (HBV), or hepatitis C virus (HCV) (N.B. diagnosis based only on medical history; we will not test for any of these viruses at any point in this study) vii. Active malabsorptive conditions viii. Active seizure disorder (including controlled with antiepileptic drugs) ix. Psychiatric diseases causing functional impairment that have been decompensated within 1 year or require use of drugs associated with significant weight gain/metabolic dysfunction x. Other endocrinopathies (e.g., Cushing syndrome, adrenal insufficiency) xi. Venous thromboembolic disease (deep vein thrombosis or pulmonary embolism) or any required use of therapeutic anticoagulation xii. Bleeding disorders, including due to anticoagulation, or significant anemia (see above) xiii. Dysautonomia, including post-vagotomy xiv. Active malignancy, or hormonally active benign neoplasm, except for non-melanoma skin cancer or differentiated thyroid cancer (AJCC Stage I only)
i. Prescribed medications used for any of the indications in the preceding list of excluded conditions, or their use within 90 d prior to screening, except allowances for:
•• Note, as above, that antidiabetic drugs except metformin for any indication within 90 d of screening are excluded ii. Oral or parenteral corticosteroids (at greater than prednisone 5 mg daily, or equivalent) for more than 3 days within the previous 90 days; topical and inhaled formulations are permitted iii. Fludrocortisone iv. Opioids other than dextromethorphan for cough
i. Roux-en-Y gastric bypass ii. Biliopancreatic diversion iii. Restrictive procedures (lap band, sleeve gastrectomy) performed within the past 6 months
i. Lawfully prescribed medications ii. Marijuana/THC positivity, provided that the participant agrees not to use it during the same period that they will abstain from alcohol
Insulin infusion rate (IIR) will be determined empirically first to maintain mean basal fasting plasma glucose, and then either maintained at the basal rate (MH protocol) or be reduced stepwise toward euinsulinemia (RE protocol).
Octreotide will be infused at 30 ng/kg/min to suppress endogenous insulin, glucagon, and growth hormone secretion. Co-administered with glucagon and rhGH.
Glucagon will be replaced at a constant rate of up to 0.65 ng/kg/min to maintain baseline counterregulatory response. Co-administered with octreotide and rhGH.
Recombinant human growth hormone (rhGH) will be replaced at a constant rate of up to 3 ng/kg/min to maintain baseline counterregulatory response. Co-administered with octreotide and glucagon.
Stable isotope tracer administered to calculate glucose kinetics during pancreatic clamp.
Other names: D2-glucose, D2G
20% D-glucose (aq) (D20W) will be administered to counteract hypoglycemia or strongly downward blood glucose trends, as needed.
Other names: D20W
Nutritional supplement will be administered to provide three standardized "mixed meals" on the day before the pancreatic clamp.
Energy bar used as a standardized snack on the day before the pancreatic clamp.
Syringe pump used for highly precise administration of insulin, octreotide/glucagon/rhGH, and D20W (as needed) even at low infusion rates.
Glucose oxidase analyzer used to detect plasma glucose levels at the point of care. YSI have been the gold standard in clamp studies for many years. Two machines will run in parallel to ensure accuracy of results.
Time frame: Up to 425 minutes from the start of the procedure.
Goal is first to clamp insulin infusion rate to maintain mean basal fasting plasma glucose during the basal titration phase, and then during the intervention phase to observe the glucose levels that result from altering the basal IIR.
Time frame: Up to 425 minutes from the start of the procedure.
Goal is first to clamp insulin infusion rate to maintain mean basal fasting plasma glucose during the basal titration phase, and then during the intervention phase to observe the impact of altering the basal IIR on glycemia.
Time frame: Up to 425 minutes from the start of the procedure.
Investigators will assess the insulin levels attained at the basal IIR, and at each stepwise reduction in IIR during the intervention phase.
Time frame: Up to 425 minutes from the start of the procedure.
Investigators will compare the baseline insulin level to that attained at the basal IIR, as well as comparing to the change in insulin level that occurs with alterations in the IIR during the intervention phase.
Time frame: Up to 425 minutes from the start of the procedure
Suppression of endogenous insulin by octreotide during pancreatic clamp is expected to result in a fall in C-peptide levels to near zero.
Time frame: Up to 425 minutes from the start of the procedure
Suppression of endogenous insulin by octreotide during pancreatic clamp is expected to result in a fall in C-peptide levels to near zero.
Time frame: Up to 425 minutes from the start of the procedure
TG levels in serum reflect hepatic synthesis/storage and very low-density lipoprotein (VLDL) secretion.
Time frame: Up to 425 minutes from the start of the procedure
TG levels in serum reflect hepatic synthesis/storage and VLDL secretion.
Time frame: Up to 425 minutes from the start of the procedure
FFA levels reflect adipose tissue lipolysis and its response to insulin and counterregulatory hormones.
Time frame: Up to 425 minutes from the start of the procedure
FFA levels reflect adipose tissue lipolysis and its response to insulin and counterregulatory hormones.
Time frame: Up to 425 minutes from the start of the procedure
ApoB level is a surrogate for triglyceride-rich lipoproteins, especially hepatic VLDL.
Time frame: Up to 425 minutes from the start of the procedure
ApoB level is a surrogate for triglyceride-rich lipoproteins, especially hepatic VLDL.
Time frame: Measured every 5 minutes x 4 at the end of each steady-state IIR period, up to 425 minutes from the start of the procedure
Calculated from D2G tracer enrichment by the Steele equations.
Time frame: Measured every 5 minutes x 4 at the end of each steady-state IIR period, up to 425 minutes from the start of the procedure
Calculated from D2G tracer enrichment by the Steele equations
Time frame: Measured every 5 minutes x 4 at the end of each steady-state IIR period, up to 425 minutes from the start of the procedure
Calculated from D2G tracer enrichment by the Steele equations
Time frame: Up to 425 minutes from the start of the procedure
Assesses the adequacy of exogenous glucagon replacement.
Time frame: Up to 425 minutes from the start of the procedure
Assesses the adequacy of exogenous glucagon replacement.
Time frame: Up to 425 minutes from the start of the procedure
Assesses the adequacy of exogenous rhGH replacement.
Time frame: Up to 425 minutes from the start of the procedure
Assesses the adequacy of exogenous rhGH replacement.
Columbia University
Other
Role of Hyperinsulinemia in Non-Alcoholic Fatty Liver Disease (NAFLD) Pathogenesis: Pancreatic Clamp Pilot & Feasibility Study
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