Effects of Continuous Positive Airway Pressure (CPAP) on Glucose Metabolism (SOMNOS)
Sleep, Obesity, and Metabolism in Normal and Overweight Subjects: Effects of CPAP on Glucose Metabolism
Study Overview
Status
Status
Conditions
Conditions
Intervention / Treatment
Intervention / Treatment
Detailed Description
Study Type
Study Type
Enrollment (Actual)
Enrollment
Phase
Phase
- Not Applicable
Contacts and Locations
Study Locations
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Maryland
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Baltimore, Maryland, United States, 21224
- Johns Hopkins Bayview Medical Center
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Participation Criteria
Eligibility Criteria
Eligibility Criteria
Ages Eligible for Study
Accepts Healthy Volunteers
Genders Eligible for Study
Description
Inclusion Criteria:
- Ability to give informed consent
- Obstructive sleep apnea (untreated)
- Ability to comply with study-related assessments
Exclusion Criteria:
- Inability to consent or commit to the required visits
- Diabetes mellitus (fasting glucose > 126 mg/dl)
- Use of insulin or oral hypoglycemic agent
- Weight change of 10% in last six months
- Use of oral steroids in the last six months
- Severe pulmonary disease (i.e., COPD)
- Renal or hepatic insufficiency
- Recent Myocardial Infarction (MI) or stroke (< 3 months)
- Occupation as a commercial driver
- Active substance use
- Untreated thyroid disease
- Pregnancy
- Anemia (Hematocrit < 30%)
- Any history of seizures or other neurologic disease
- Poor sleep hygiene or sleep disorder other than sleep apnea
- Excessive subjective sleepiness (Epworth score > 18)
Study Plan
How is the study designed?
Design Details
- Primary Purpose: Treatment
- Allocation: Randomized
- Interventional Model: Parallel Assignment
- Masking: None (Open Label)
Number of Arms
Arms and Interventions
Participant Group / ArmParticipant Group / Arm |
Intervention / TreatmentIntervention / Treatment |
|---|---|
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Active Comparator: Positive pressure therapy (PAP)
Positive airway pressure(PAP) therapy is the standard of care for patients with obstructive sleep apnea.
During sleep, a mask is worn over the nose and connected to the PAP machine.
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Positive pressure therapy is the standard of care for managing obstructive sleep apnea.
It entails wearing a mask that is connected to the PAP device which deliver pressure to the upper airway during sleep.
Other Names:
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Sham Comparator: Lifestyle counseling
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Subjects randomized to the lifestyle (and nutritional) counseling arm will be given advice on a balanced dietary and exercise plan.
Other Names:
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What is the study measuring?
Primary Outcome Measures
Primary Outcome Measures
Outcome Measure |
Measure Description |
Time Frame |
|---|---|---|
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Insulin Sensitivity (SI)
Time Frame: Baseline
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Insulin sensitivity will be determined with the insulin-modified frequently sampled intravenous glucose tolerance test (IVGTT) before and 2-months after study intervention.
This test requires administration of a weight-adjusted dose of D50W as an IV bolus at time "zero".
After the glucose bolus, blood samples are drawn at the scheduled times for 3-hours.
At the 20-minute mark, a weight-adjusted dose of regular insulin is administered.
The resulting serum is analyzed for glucose and insulin and the "minimal model" (MINMOD) will be used to derive insulin sensitivity.
A low SI signifies low insulin sensitivity and high SI represents high insulin sensitivity.
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Baseline
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Insulin Sensitivity (SI)
Time Frame: 2 months after intervention
|
Insulin sensitivity will be determined with the insulin-modified frequently sampled intravenous glucose tolerance test (IVGTT) before and 2-months after study intervention.
This test requires administration of a weight-adjusted dose of D50W as an IV bolus at time "zero".
After the glucose bolus, blood samples are drawn at the scheduled times for 3-hours.
At the 20-minute mark, a weight-adjusted dose of regular insulin is administered.
The resulting serum is analyzed for glucose and insulin and the "minimal model" (MINMOD) will be used to derive insulin sensitivity.
A low SI signifies low insulin sensitivity and high SI represents high insulin sensitivity.
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2 months after intervention
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Secondary Outcome Measures
Secondary Outcome Measures
Outcome Measure |
Measure Description |
Time Frame |
|---|---|---|
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Glucose Effectiveness (SG)
Time Frame: Baseline
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Glucose effectiveness is the ability for glucose to move intracellularly in the absence of insulin.
It is a parameter that results from the MINMOD analysis of the serum glucose and insulin levels derived from the frequently sampled intravenous glucose tolerance test.
Low SG indicates a lower predisposition for glucose disposal independent of any effects of insulin.
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Baseline
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Glucose Effectiveness (SG)
Time Frame: 2 months after intervention
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Glucose effectiveness is the ability for glucose to move intracellularly in the absence of insulin.
It is a parameter that results from the MINMOD analysis of the serum glucose and insulin levels derived from the frequently sampled intravenous glucose tolerance test.
Low SG indicates a lower predisposition for glucose disposal independent of any effects of insulin.
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2 months after intervention
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Disposition Index (DI)
Time Frame: Baseline
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The disposition index is the mathematical product of insulin sensitivity (SI) and acute insulin response to glucose (AIRG) both of which are derived from the MINMOD analysis of the frequently sampled intravenous glucose tolerance test data.
A low DI is indicative of a higher risk of developing diabetes.
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Baseline
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Disposition Index (DI)
Time Frame: 2 months after intervention
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The disposition index is the mathematical product of insulin sensitivity (SI) and acute insulin response to glucose (AIRG) both of which are derived from the MINMOD analysis of the frequently sampled intravenous glucose tolerance test data.
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2 months after intervention
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Acute Insulin Response to Glucose (AIRG)
Time Frame: Baseline
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The acute insulin response to glucose (AIRG) value is derived from the MINMOD analysis of the glucose and insulin levels obtained during the frequently sampled intravenous glucose tolerance test.
A low AIRG indicates decreased ability of the pancreas to secrete insulin.
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Baseline
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Acute Insulin Response to Glucose (AIRG)
Time Frame: 2 months after intervention
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The acute insulin response to glucose (AIRG) value is derived from the MINMOD analysis of the glucose and insulin levels obtained during the frequently sampled intravenous glucose tolerance test.
A low AIRG indicates decreased ability of the pancreas to secrete insulin.
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2 months after intervention
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Endothelial Function
Time Frame: Baseline
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Endothelial function will be assessed using peripheral arterial tonometry using the Endo-PAT device.
Using the EndoPat device, the relative vasoconstriction of occluded versus non-occluded arms was derived and provided the relative hyperemic index.
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Baseline
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Endothelial Function
Time Frame: 2 month after intervention
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Endothelial function will be assessed using peripheral arterial tonometry using the Endo-PAT device.
Using the EndoPat device, the relative vasoconstriction of occluded versus non-occluded arms was derived and provided the relative hyperemic index.
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2 month after intervention
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Area Under the Curve Assessed by Oral Glucose Tolerance Test
Time Frame: Baseline
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Results of the oral glucose tolerance test will be analyzed using indices derived from the serial glucose and insulin levels over the 2 hour period.
This will be the area under the glucose/ insulin curves
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Baseline
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Area Under the Curve Assessed by Oral Glucose Tolerance Test (OGTT)
Time Frame: 2 month after intervention
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Results of the oral glucose tolerance test will be analyzed using indices derived from the serial glucose and insulin levels over a 2 hour period 2 months post intervention.
This will be the area under the glucose/ insulin curves
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2 month after intervention
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Collaborators and Investigators
Sponsor
Sponsor
Collaborators
Collaborators
Investigators
Investigators
- Principal Investigator: Naresh M Punjabi, MD, PhD, Johns Hopkins University
Publications and helpful links
General Publications
- Young T, Peppard PE, Gottlieb DJ. Epidemiology of obstructive sleep apnea: a population health perspective. Am J Respir Crit Care Med. 2002 May 1;165(9):1217-39. doi: 10.1164/rccm.2109080.
- Tasali E, Mokhlesi B, Van Cauter E. Obstructive sleep apnea and type 2 diabetes: interacting epidemics. Chest. 2008 Feb;133(2):496-506. doi: 10.1378/chest.07-0828.
- Punjabi NM, Ahmed MM, Polotsky VY, Beamer BA, O'Donnell CP. Sleep-disordered breathing, glucose intolerance, and insulin resistance. Respir Physiol Neurobiol. 2003 Jul 16;136(2-3):167-78. doi: 10.1016/s1569-9048(03)00079-x.
- Punjabi NM; Workshop Participants. Do sleep disorders and associated treatments impact glucose metabolism? Drugs. 2009;69 Suppl 2:13-27. doi: 10.2165/11531150-000000000-00000.
- Aurora RN, Swartz R, Punjabi NM. Misclassification of OSA severity with automated scoring of home sleep recordings. Chest. 2015 Mar;147(3):719-727. doi: 10.1378/chest.14-0929.
Study record dates
Study Major Dates
Study Start (Actual)
Study Start
Primary Completion (Actual)
Primary Completion
Study Completion (Actual)
Study Completion
Study Registration Dates
First Submitted
First Submitted
First Submitted That Met QC Criteria
First Submitted That Met QC Criteria
First Posted (Estimate)
First Posted
Study Record Updates
Last Update Posted (Actual)
Last Update Posted
Last Update Submitted That Met QC Criteria
Last Update Submitted That Met QC Criteria
Last Verified
Last Verified
More Information
Terms related to this study
Keywords
Additional Relevant MeSH Terms
Other Study ID Numbers
Other Study ID Numbers
- NA_00036672
- 2R01HL075078 (U.S. NIH Grant/Contract)
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