Wellcome Trust Clinical Research Facility, Addenbrookes Hospital
Cambridge, Cambridgeshire, CB2 0QQ, United Kingdom
NCT Number: NCT02265809
Type 1 diabetes (T1D) is the most common severe autoimmune disease worldwide and is caused by the body's immune destruction of its own insulin producing pancreatic beta cells leading to insulin deficiency and development of elevated blood sugars. Currently, medical management of T1D focuses on intensive insulin replacement therapy to limit complications (retinopathy, nephropathy, neuropathy); nevertheless clinical outcomes remain suboptimal. There are intensive efforts to design novel immunotherapies that can arrest the autoimmune process and thereby preserve residual insulin production leading to fewer complications and better clinical outcomes.
Genetics are in part the cause of T1D and the majority of genes contributing to T1D produce proteins involved in immune regulation (called "tolerance"). A key player in immune tolerance is a molecule called interleukin-2 (IL-2) which enhances the ability of cells called T regulatory (Treg) cells to suppress the destruction the insulin producing beta cells. Aldesleukin is a human recombinant IL-2 product produced by recombinant DNA technology using a genetically engineered E. coli strain expressing an analogue of the human IL-2 gene. There is substantial data to suggest that ultra-low doses (ULD) of IL-2 (aldesleukin) can arrest the autoimmune mediated destruction of pancreatic beta cells by the induction of functional Treg cells.
The former study "Adaptive study of IL-2 dose on regulatory T cells in type 1 diabetes" (DILT1D) (NCT 01827735) was a single dose mechanistic study designed to establish the doses of IL-2 (aldesleukin) required to induce a minimal Treg increase (0.1 fold from baseline) or to induce a slightly larger Treg increase (0.2 fold from baseline) (maximal increase). Following on from the DILT1D study, the goal of the DILfrequency study is to use an adaptive design to determine the optimal dose and frequency of ULD IL-2 (aldesleukin) to maximize Treg function by frequently injecting ultra-low doses of IL-2 (aldesleukin). The responsiveness of each T1D participant to a particular frequency of IL-2 (aldesleukin) administration informs the frequency of dosing given to the next patient. This strategy focuses on improving the function of regulatory T cells that are exquisitely sensitive to IL-2 (aldesleukin).
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Notify Me18 year–70 year
All sexes
Interventional
Phase 1 / Phase 2
Cambridge, Cambridgeshire, CB2 0QQ, United Kingdom
Healthy volunteers accepted: No
Only the study team can determine whether someone qualifies for participation.
Inclusion criteria
Exclusion criteria
Other names: Proleukin, IL-2
Time frame: Visits 2-12 (day 0 up to a maximum of approximately day 98 depending on treatment assignment)
Fluorescence-activated cell sorting
Time frame: Visits 2-12 (day 0 up to a maximum of approximately day 98 depending on treatment assignment)
Measured by fluorescence-activated cell sorting
Time frame: Visits 2-12 (day 0 up to a maximum of approximately day 98 depending on treatment assignment)
Measured by fluorescence-activated cell sorting
Time frame: Visits 2-12 (day 0 up to a maximum of approximately day 98 depending on treatment assignment)
Measured by fluorescence-activated cell sorting
Time frame: Visits 2-12 (day 0 up to a maximum of approximately day 98 depending on treatment assignment)
Measured by fluorescence-activated cell sorting
Time frame: Visits 2-12 (day 0 up to a maximum of approximately day 98 depending on treatment assignment)
Measured by fluorescence-activated cell sorting
Time frame: Visits 1-12 (between day -30 and day -1 up to a maximum of approximately day 98 depending on treatment assignment)
Measured by automatic analyser
Time frame: Visits 2-12 (day 0 up to a maximum of approximately day 98 depending on treatment assignment)
Measured by enzyme-linked immunosorbent assay
Time frame: Visits 1-12 (between day -30 and day -1 up to a maximum of approximately day 98 depending on treatment assignment)
Blood glucose, HbA1c, C-peptide, insulin use and autoantibody status
Time frame: Visits 1-12 (between day -30 and day -1 up to a maximum of approximately day 98 depending on treatment assignment)
Assessed by clinical history, physical examination, temperature, blood pressure, heart rate, 12-Lead electrocardiogram (ECGs), clinical laboratory tests, and adverse event recording
Time frame: Visit 1 (between day -30 and day -1)
Measured by immunochip
Time frame: Visits 2-12 (day 0 up to a maximum of approximately day 98 depending on treatment assignment)
Measured by RNA sequencing
Time frame: Visits 2-12 (day 0 up to a maximum of approximately day 98 depending on treatment assignment)
Measured by fluorescence-activated cell sorting
Time frame: Visits 2-12 (day 0 up to a maximum of approximately day 98 depending on treatment assignment)
Measured by radioactive thymidine assay and/or fluorescence-activated cell sorting
Time frame: Visits 2-12 (day 0 up to a maximum of approximately day 98 depending on treatment assignment)
Measured fluorescence-activated cell sorting and/or Enzyme-Linked ImmunoSpot (ELISPOT) assay
Time frame: Visits 2-12 (day 0 up to a maximum of approximately day 98 depending on treatment assignment)
Measured by automatic analyser
Time frame: Visits 2-12 (day 0 up to a maximum of approximately day 98 depending on treatment assignment)
Measured by Bisulphite sequencing of DNA
Time frame: Visits 2-12 (day 0 up to a maximum of approximately day 98 depending on treatment assignment)
Measured by enzyme-linked immunosorbent assay
Time frame: Visits 1-12 (between day -30 and day -1 up to a maximum of approximately day 98 depending on treatment assignment)
Mass spectrometry
Time frame: Visit 1 (between day -30 and day -1)
Analysis of DILfrequency recruitment database
Cambridge University Hospitals NHS Foundation Trust
Other
Adaptive Study of IL-2 Dose Frequency on Regulatory T Cells in Type 1 Diabetes (DILfrequency)
Acronym: DILfrequency
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