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Clinical Assessment of a Closed-loop Insulin Delivery System

Clinical Assessment of a Closed-loop Insulin Delivery System

Status
Completed
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT01534013
Enrollment
23
Registered
2012-02-16
Start date
2011-08-31
Completion date
2018-08-31
Last updated
2020-10-30

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

Conditions

Type 1 Diabetes Mellitus

Keywords

Closed loop insulin delivery

Brief summary

The purpose of the study is to assess the safety and efficacy of the Imperial College closed loop insulin delivery system (artificial pancreas) in subjects with type 1 diabetes.

Detailed description

Background: Type 1 diabetes is caused by antibodies attacking insulin-producing β-cells in the pancreas. Treatment is usually by regular insulin injections, informed by glucose measurements from fingerprick blood samples. However, injections do not mimic the normal behaviour of the β-cell and this leads to suboptimal blood glucose control and complications including kidney failure, blindness, nerve damage and heart disease. Aggressive treatment can help but may lead to potentially-dangerous low blood glucose levels (hypoglycaemia). Glucose control is measured by HbA1c (normal range 4 to 6%), a measure of the amount of haemoglobin exposed to glucose over a period of around 3 months. Current regimens for treating Type 1 diabetes in clinical practice are mainly based on injections of subcutaneous insulin several times daily in dosages determined by intermittent blood glucose measurements. The DCCT (Diabetes Control and Complications Trial) demonstrated that intensive management using these principles reduced complications by 50-76%. This was at the expense of increased hypoglycaemia, especially at HbA1c levels \<7.5%. In other studies, intensive management resulted in people spending 30% of the day with glucose values \>10mM and \>2 hours/day in hypoglycaemia, often at night. A closed loop system provides the potential to improve HbA1c while avoiding hypoglycaemia. It requires continuous glucose measurement, a control device and a pump for insulin delivery. The subject has been extensively reviewed. Intelligent control devices have been developed by others, using the principles of feedback control or predictive modelling. These were initially cumbersome e.g. the 'biostator' but more recent systems have been miniaturised and are capable of achieving blood glucose control in the fasting state, when provided with an input of interstitial glucose levels. They have not yet proven robust, may be associated with hypoglycaemia and are not capable of achieving adequate post-prandial control nor of coping with intercurrent illness outside hospital environments. This clinical trial protocol assesses the Imperial College closed loop insulin delivery system. The closed loop insulin delivery comprises 3 main components: the glucose sensor, the control algorithm and the insulin delivery system. The glucose sensor that will be used throughout the clinical validation studies is a CE marked, MHRA approved device manufactured by Medtronic. It is a subcutaneous sensor which sits just under the skin and samples interstitial fluid using an enzyme electrode. A small voltage is applied across the sensor and a current is fed back to the sensor instrumentation. This current is proportional to the glucose concentration in interstitial fluid and is calibrated against blood glucose a minimum of 12 hourly. The control algorithm is derived from physiological experiments carried out by other groups which have demonstrated how the beta cells in the pancreas produce insulin in people without diabetes. Utilising the data from these experiments it has been possible to implement the behaviour of the beta cell in software and we have used a simulator with 200 virtual patients to demonstrate the safety and efficacy of the software. The data from the simulator is attached to this application as an appendix. The simulator was developed from human data and takes into account sensor errors, sensor placement, route of insulin administration and meal-time glucose absorption. It has been approved by the FDA in the United States as a step in the pathway of developing an artificial pancreas and has been validated against human data. In the clinical validation device the control algorithm is implemented on a printed circuit board using a programmable micro-controller. The insulin pump device used throughout the clinical validation is the Roche Accu-Check Combo Spirit. This is a CE marked MHRA approved device and will be supplied by Roche with capability for direct communication from the motor so that we can verify the pump is doing what the software commands and with a license to use the communications protocol for research purposes. This ensures safe communication between the control algorithm and the pump and provides a fail-safe to ensure that the pump motor is responding appropriately to the control algorithm. Clinical validation of the closed loop insulin delivery device follows a path of incremental challenges to the algorithm and hardware, starting with a fasting basal study in advisory mode and progressing to ambulatory, meal studies in full closed loop. The aim of this trial is to assess the safety and efficacy of the closed loop device by applying the technology to participants with type 1 diabetes in a variety of scenarios, starting with a fasting test and progressing to overnight control, mealtime control and, finally, an ambulatory test. Brief outline of each of the 5 visits within the trial period: * Visit 1: Screening including clinical examination, fasting blood tests, completion of diabetes quality of life questionnaire, continuous glucose monitor attached to subject * Visit 2: Review of continuous glucose monitoring results after 5 days * Visit 3: Short Duration Fasting Closed Loop (6 hours of closed-loop assessment) * Visit 4: Long Duration/ Overnight Fasting Closed Loop and Standard Meal Challenge (13 hours of closed-loop assessment) * Visit 5: 24 Hour Ambulatory Automatic Closed Loop During visits 3-5 blood sampling for capillary glucose & ketones, venous glucose and insulin levels will take place every 15-30 minutes while the closed-loop insulin delivery system is running.

Interventions

DEVICEThe Imperial College Closed-Loop Insulin Delivery System

The Imperial College closed-loop insulin delivery system comprises 3 main components: the glucose sensor, the control algorithm and the insulin delivery system.

DEVICEOpen loop

glucose sensor and pump

Sponsors

Imperial College London
Lead SponsorOTHER

Study design

Allocation
NON_RANDOMIZED
Intervention model
SINGLE_GROUP
Primary purpose
TREATMENT
Masking
NONE

Eligibility

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

Inclusion criteria

* Adults over 18 years of age * Type 1 diabetes confirmed on the basis of clinical features and a fasting c-peptide \<200nmol/L * Type 1 diabetes for greater than 1 year * Continuous subcutaneous insulin infusion for greater than 6 months * HbA1c \< 8.5% (69mmol/mol)

Exclusion criteria

* Recurrent severe hypoglycaemia * Pregnant or planning pregnancy * Breastfeeding * Enrolled in other clinical trials * Have active malignancy or under investigation for malignancy

Design outcomes

Primary

MeasureTime frameDescription
Percentage Time in Euglycaemia18 monthsInterstitial blood glucose will be measured every 5 minutes and venous blood glucose every 15 minutes during subject visits 3, 4 and 5 when insulin is being delivered using the closed-loop insulin delivery system. The % time in euglycaemia is to be calculated using these blood glucose values.

Secondary

MeasureTime frameDescription
% Time Spent in Hyperglycaemia18 monthsInterstitial blood glucose will be measured every 5 minutes and venous blood glucose every 15 minutes during patient visits 3, 4 and 5 when insulin is being delivered using the closed-loop insulin delivery system. The % time in euglycaemia is to be calculated using these blood glucose values.
Glycaemic Variability as Measured by MAGE and SD18 monthsGlycaemic variability as measured by MAGE and SD Calculation using CGM data
Glycaemic Risk as Measured by LBGI and HBG18 monthsGlycaemic risk as measured by LBGI and HBG Calculation using CGM data
% Time in Hypoglycaemia18 monthsInterstitial blood glucose will be measured every 5 minutes and venous blood glucose every 15 minutes during subject visits 3, 4 and 5 when insulin is being delivered using the closed-loop insulin delivery system. The % time in hypoglycaemia is to be calculated using these blood glucose values.
Glucose Area Under the Curve18 monthsGlucose area under the curve Calculation using CGM data
Insulin Requirement in Units/kg/hr18 monthsCalculation using average insulin delivered per hour and bodyweight
Closed Loop Error Grid Analysis18 monthsClosed loop error grid analysis Calculation using CGM data

Countries

United Kingdom

Participant flow

Participants by arm

ArmCount
Closed-loop Insulin Delivery
The closed loop device (bio-inspired artificial pancreas device, subcutaneous glucose monitor and insulin pump) will be applied to participants with type 1 diabetes The Imperial College Closed-Loop Insulin Delivery System: The Imperial College closed-loop insulin delivery system comprises 3 main components: the glucose sensor, the control algorithm and the insulin delivery system.
8
Open-loop Insulin Delivery
standard insulin pump therapy
6
Total14

Baseline characteristics

CharacteristicClosed-loop Insulin DeliveryOpen-loop Insulin DeliveryTotal
Age, Continuous45 years
STANDARD_DEVIATION 10
45 years
STANDARD_DEVIATION 10
45 years
STANDARD_DEVIATION 10
HbA1c7.4 percentage
STANDARD_DEVIATION 0.7
7.4 percentage
STANDARD_DEVIATION 0.7
7.4 percentage
STANDARD_DEVIATION 0.7
Race and Ethnicity Not Collected0 Participants
Sex: Female, Male
Female
5 Participants4 Participants9 Participants
Sex: Female, Male
Male
3 Participants2 Participants5 Participants

Adverse events

Event typeEG000
affected / at risk
EG001
affected / at risk
deaths
Total, all-cause mortality
— / —— / —
other
Total, other adverse events
0 / 120 / 12
serious
Total, serious adverse events
0 / 120 / 12

Outcome results

Primary

Percentage Time in Euglycaemia

Interstitial blood glucose will be measured every 5 minutes and venous blood glucose every 15 minutes during subject visits 3, 4 and 5 when insulin is being delivered using the closed-loop insulin delivery system. The % time in euglycaemia is to be calculated using these blood glucose values.

Time frame: 18 months

ArmMeasureValue (NUMBER)
Closed-loop Insulin DeliveryPercentage Time in Euglycaemia71 percentage of time
Open-loop Insulin DeliveryPercentage Time in Euglycaemia66.9 percentage of time
Secondary

Closed Loop Error Grid Analysis

Closed loop error grid analysis Calculation using CGM data

Time frame: 18 months

Secondary

Glucose Area Under the Curve

Glucose area under the curve Calculation using CGM data

Time frame: 18 months

Secondary

Glycaemic Risk as Measured by LBGI and HBG

Glycaemic risk as measured by LBGI and HBG Calculation using CGM data

Time frame: 18 months

Secondary

Glycaemic Variability as Measured by MAGE and SD

Glycaemic variability as measured by MAGE and SD Calculation using CGM data

Time frame: 18 months

Secondary

Insulin Requirement in Units/kg/hr

Calculation using average insulin delivered per hour and bodyweight

Time frame: 18 months

Secondary

% Time in Hypoglycaemia

Interstitial blood glucose will be measured every 5 minutes and venous blood glucose every 15 minutes during subject visits 3, 4 and 5 when insulin is being delivered using the closed-loop insulin delivery system. The % time in hypoglycaemia is to be calculated using these blood glucose values.

Time frame: 18 months

Secondary

% Time Spent in Hyperglycaemia

Interstitial blood glucose will be measured every 5 minutes and venous blood glucose every 15 minutes during patient visits 3, 4 and 5 when insulin is being delivered using the closed-loop insulin delivery system. The % time in euglycaemia is to be calculated using these blood glucose values.

Time frame: 18 months

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026