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Closed-loop Insulin Delivery in the General Ward

A Randomised Study to Assess the Efficacy and Safety of Automated Closed-loop Glucose Control in Insulin Treated Type 2 Diabetes (Phase 1), Inpatient Hyperglycaemia Requiring Subcutaneous Insulin Therapy (Phase 2 and Phase 3) and to Evaluate Use of Closed-loop Applying Faster Insulin Aspart Versus Standard Insulin Aspart (Phase 4)

Status
Completed
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT01774565
Acronym
ANGIE02
Enrollment
43
Registered
2013-01-24
Start date
2016-08-31
Completion date
2018-09-21
Last updated
2018-10-19

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

Conditions

Diabetes Mellitus

Keywords

Diabetes, Insulin, Closed-Loop, Real-time CGM, Subcutaneous insulin pump, Hospital

Brief summary

The study assesses the efficacy and safety of closed-loop glucose control in patients with insulin-treated type 2 diabetes. Phase 1 The study objective is to compare conventional insulin therapy with closed-loop glucose control combined with once daily basal insulin injection over 72 hours in hospitalised insulin treated T2D subjects. Phase 2 The study objective is to compare conventional insulin therapy with closed-loop glucose control up to maximum 15 days in hospitalised insulin treated T2D subjects. Phase 3 The study objective is to compare conventional insulin therapy with closed-loop glucose control applying faster insulin aspart up to maximum 15 days in insulin-treated inpatients receiving parenteral and/or enteral nutrition. Phase 4 The study objective is to compare automated closed-loop control using faster acting insulin aspart with closed-loop control using standard insulin aspart.

Detailed description

Hyperglycaemia in hospitalized patients is becoming a common clinical problem due to the increasing prevalence of diabetes mellitus . Hyperglycaemia in this cohort can also occur in patients with previously undiagnosed diabetes, or during acute illness in those with previously normal glucose tolerance. As a result, the prevalence of acute or stress hyperglycaemia in hospitalised patients has been widely reported. A growing body of evidence currently suggest that the degree of hyperglycaemia upon admission and the duration of hyperglycaemia during their illness are associated with adverse outcomes.In-patient hyperglycaemia is now widely recognised as a poor prognostic marker in terms of morbidity and mortality, increased length of stay and cost to the healthcare system. The current management of in-patient hyperglycaemia in non-critical care is still far from ideal, and vary widely between different centres. The discordance between clinical evidence and practice is due to a number of factors which could potentially undermine patient care and safety. Of these, hypoglycaemia remains one the biggest barriers to managing in-patient hyperglycaemia. There is therefore a need to develop and validate a more effective and safer system to manage in-patient hyperglycaemia. A closed-loop insulin infusion system has previously been tested and reported to be feasible and safe in intensive care patients. Its utilisation in non-critical patients in the general medical and surgical wards currently remains unproven. Its use in this cohort however could potentially be of significant practical and clinical value, especially in a busy ward environment. The Model Predictive Control (MPC) algorithm developed by our group at the University of Cambridge utilises fundamental glucoregulatory processes and predicts future glucose excursion resulting from projected insulin infusion rates. The algorithm can also account for the patient's meal intake and the duration of action of the short acting insulin used. This has the distinct advantage over the reactive approach of sliding scale insulin protocols, which treats hyperglycaemia after it has already occurred. The MPC algorithm has been studied in intensive care and cardiac surgery patients, and results from these studies to date have been encouraging. It is shown to be associated with a significantly higher percentage of time within the blood glucose target range, without increasing the risk of severe hypoglycaemia. The expectant role of a closed-loop system using the MPC algorithm in non-critical care patients would therefore be to provide clinicians with an effective and safe method to manage hyperglycaemia in hospital. In early 2017, faster-acting insulin aspart (Fiasp, Novo Nordisk, Copenhagen, Denmark) received marketing authorisation from the European Commission. Due to the more favourable pharmacokinetic profile, Fiasp has the potential to further improve safety and efficacy of fully automated closed-loop glucose control.

Interventions

DEVICEFully Automated Closed-Loop Insulin Delivery

Sponsors

Cambridge University Hospitals NHS Foundation Trust
CollaboratorOTHER
Insel Gruppe AG, University Hospital Bern
CollaboratorOTHER
University of Cambridge
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
TREATMENT
Masking
NONE

Intervention model description

Randomised parallel (phase 1-3) and randomised crossover (phase 4)

Eligibility

Sex/Gender
ALL
Age
18 Years to No maximum
Healthy volunteers
No

Inclusion criteria

* Aged 18 years or older * Type 2 Diabetes for at least 1 year as defined by WHO (phase 1 and 4) * Inpatient hyperglycaemia requiring subcutaneous insulin therapy (phase 2 and 3) * Treatment with subcutaneous insulin alone or in combination with oral glucose-lowering medication(s) (phase 4: basal bolus insulin regime for at least 3 months) * Receiving parenteral and/or enteral nutrition (phase 3) * HbA1c\<11.0% (phase 4)

Exclusion criteria

* Autoimmune type 1 diabetes * Known or suspected allergy against insulin * Known proliferative retinopathy * Current or planned pregnancy or breast feeding * Unstable or end-stage cardiac and renal disease (phase 1 only) * Planned surgery during study period (phase 1 only) * Current in-patient in intensive care unit * Any physical or psychological disease or medication(s) likely to interfere with the conduct of the study and interpretation of the study results, as judged by the study clinician * Likely discharge earlier than 72 hours (phase 1 only)

Design outcomes

Primary

MeasureTime frameDescription
Time spent in target glucose range (5.6-10.0mmol/l)Phase 1 (Pilot study) = 72-hours, Phase 2 (Follow-up study) = Up to 15 daysPrimary outcome will be measured using continuous subcutaneous glucose monitoring (CGM) data (Phase 1-3) and plasma (Phase 4).

Secondary

MeasureTime frameDescription
Average glucose levels, as recorded by CGMPhase 1 (Pilot study) = 72-hours, Phase 2 and Phase 3 (Follow-up study)= Up to 15 days, Phase 4=between 07:00 and 17:00CGM (Phase 1-4) and plasma glucose (Phase4)
Proportion of time with glucose levels below 3.9 mmol/l as recorded by CGMPhase 1 (Pilot study) = 72-hours, Phase 2 and Phase 3 (Follow-up study)= Up to 15 days, Phase 4=between 07:00 and 17:00CGM (Phase 1-4) and plasma glucose (Phase4)
Proportion of time with glucose levels below 3.0 mmol/l as recorded by CGMPhase 2 and Phase 3 (Follow-up study)= Up to 15 days, Phase 4= over 10 hoursCGM (Phase 1-4) and plasma glucose (Phase4)
Proportion of time with glucose levels below 2.8 mmol/l as recorded by CGMPhase 2 and Phase 3 (Follow-up study)= Up to 15 days, Phase 4= over 10 hoursCGM (Phase 1-4) and plasma glucose (Phase4)
Area under the curve of sensor glucose levels below 3.5 mmol/l as recorded by CGMPhase 1 (Pilot study) = 72-hours, Phase 2-3 (Follow-up study) = Up to 15 days, Phase 4= over 10 hoursCGM (Phase 1-4) and plasma glucose (Phase4)
Area under the curve of sensor glucose levels below 3.0 mmol/l as recorded by CGMPhase 2-3 (Follow-up study) = Up to 15 days, Phase 4= over 10 hoursCGM (Phase 1-4) and plasma glucose (Phase4)
Proportion of time with glucose levels below 5.6 mmol/l and above 10.0 mmol/l as recorded by CGMPhase 1 (Pilot study) = 72-hours, Phase 2 and Phase 3 (Follow-up study)= Up to 15 days, Phase 4=between 07:00 and 17:00CGM (Phase 1-4) and plasma glucose (Phase4)
Proportion of time with glucose levels in significant hyperglycaemic range (>20mmol/l) as recorded by CGMPhase 2-3 (Follow-up study) = Up to 15 days, Phase 4= over 10 hoursCGM (Phase 1-4) and plasma glucose (Phase4)
Total daily insulin dosePhase 2-3 (Follow-up study) = Up to 15 days, Phase 4= over 10 hours
Between 24 hour period variabilityPhase 2-3 (Follow-up study) = Up to 15 days, Phase 4= over 10 hoursCoefficient of variation of CGM glucose between 24 hour periods (08:00 to 08:00) (Phase 1-3)
Number of capillary glucose confirmed hypoglycaemic events <3.5mmol/lPhase 2-3 (Follow-up study) = Up to 15 days, Phase 4= over 10 hoursCapillary glucose measurements will be performed using hospital point of care devices
Pre-breakfast, pre-lunch, pre-dinner, and evening capillary glucose valuesPhase 2-3 (Follow-up study) = Up to 15 daysCapillary glucose measurements will be performed using hospital point of care devices (Phase 1-3)
Standard deviation and coefficient of variation of glucose levels, as recorded by CGMPhase 1 (Pilot study) = 72-hours, Phase 2-3 (Follow-up study) = Up to 15 days, Phase 4= over 10 hoursCGM (Phase 1-4) and plasma glucose (Phase4)

Other

MeasureTime frameDescription
Safety: Number of other (serious) adverse events (including adverse device effects) and device deficienciesPhase 2 (Follow-up study) = Up to 15 days, Phase 4 = up to 4 weeks
2-hour postprandial incremental plasma glucose (Phase 4 only)120min after meal intakeCGM and plasma glucose
Peak glucose (Phase 4 only)over 10 hoursCGM and plasma glucose
Overnight period: Proportion of time with Glucose levels in target range (5.6-10.0mmol/l) as recorded by CGMPhase 2-3 (Follow-up study) = Up to 15 daysBetween 24:00 and 08:00
Time to maximal insulin concentration (Phase 4 only)over 10 hoursTime (min) to maximal plasma insulin concentration
Maximal insulin concentration (Phase 4 only)over 10 hoursMaximal plasma insulin concentration
Total and endogenous insulin exposure within 1 hour postprandial period (Phase 4 only)over 10 hoursTotal and endogenous plasma insulin exposure within 1 hour post-meal (iAUC)
Mean insulin concentration (Phase 4 only)over 10 hoursPlasma insulin concentration
Overnight period: Average glucose levels, as recorded by CGMPhase 2-3 (Follow-up study) = Up to 15 daysBetween 24:00 and 08:00
Overnight period: Standard deviation and coefficient of variation of glucose levels, as recorded by CGMPhase 2-3 (Follow-up study) = Up to 15 daysBetween 24:00 and 08:00
Overnight period: Area under the curve of sensor glucose levels below 3.5 mmol/l as recorded by CGMPhase 2-3 (Follow-up study) = Up to 15 daysBetween 24:00 and 08:00
Between night variabilityPhase 2-3 (Follow-up study) = Up to 15 daysCoefficient of variation of CGM glucose between nights (24:00 and 08:00 ) (Phase 1-3)
Total insulin dose overnightPhase 2-3 (Follow-up study) = Up to 15 daysClosed-loop only (24:00 and 08:00 ) (Phase 1-3)
Day period: Proportion of time with glucose levels in target range (5.6-10.0mmol/l) as recorded by CGMPhase 2-3 (Follow-up study) = Up to 15 dayBetween 08:00 and 24:00 (Phase 1-3)
Day period: Average glucose levels, as recorded by CGMPhase 2-3 (Follow-up study) = Up to 15 dayBetween 08:00 and 24:00 (Phase 1-3)
Day period: Standard deviation and coefficient of variation of glucose levels, as recorded by CGMPhase 2-3 (Follow-up study) = Up to 15 dayBetween 08:00 and 24:00 (Phase 1-3)
Day period: Area under the curve of sensor glucose levels below 3.5 mmol/l as recorded by CGMPhase 2-3 (Follow-up study) = Up to 15 dayBetween 08:00 and 24:00 (Phase 1-3)
Between day variabilityPhase 2-3 (Follow-up study) = Up to 15 dayCoefficient of variation of CGM glucose between days (08:00 and 24:00 ) (Phase 1-3)
Total insulin dose during the dayPhase 2-3 (Follow-up study) = Up to 15 daysClosed-loop only (08:00 and 24:00 ) (Phase 1-3)
Safety: Number of subjects and number of occurences of severe hypoglycaemic events (capillary glucose <2.2mmol/l)Phase 2-3 (Follow-up study) = Up to 15 days, Phase 4 = up to 4 weeks
Safety: Significant hyperglycaemic events (capillary glucose >20mmol/l) with or without ketonaemia (B-OHB >0.6mmol/l)Phase 2 (Follow-up study) = Up to 15 days, Phase 4 = up to 4 weeks

Countries

Switzerland, United Kingdom

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Mar 11, 2026