Type 1 diabetes is the most common severe chronic autoimmune disease worldwide and is caused by the autoimmune (loss of self tolerance) mediated destruction of the insulin producing pancreatic beta cells thus leading to insulin deficiency and development of hyperglycaemia. Currently, medical management of type 1 diabetes focuses on intensive insulin replacement therapy to limit complications (retinopathy, nephropathy, neuropathy); nevertheless clinical outcomes remain sub optimal. 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. The vast majority of genes that contribute to susceptibility to type 1 diabetes have been found to encode proteins involved in immune regulation and function. In particular, several susceptibility proteins are involved in the interleukin 2 (IL-2) pathway that regulates T cell activation and tolerance to self antigens. Aldesleukin is a human recombinant IL-2 product produced by recombinant DNA technology using genetically engineered E. coli stain containing an analog of the human interleukin-2 gene. There is substantial nonclinical, preclinical and clinical data that ultra low dose IL-2 (aldesleukin) therapy can arrest the autoimmune mediated destruction of pancreatic beta cells by induction of functional T regulatory cells. However, prior to embarking on large proof of concept trials in type 1 diabetes it is essential that the optimum dose of IL-2 (aldesleukin) is determined. The objective of this study is to establish in patients with type 1 diabetes the optimal dose of IL-2 (aldesleukin) to administer in order to increase T regulatory cell response.
Study Type
INTERVENTIONAL
Allocation
NA
Purpose
BASIC_SCIENCE
Masking
NONE
Enrollment
40
A single, subcutaneous dose will be given administered with the maximum dose allowed 1.5 X 106 IU/M2.
Wellcome Trust Clinical Research Facility, Addenbrooke's Hospital
Cambridge, United Kingdom
The primary endpoint is based upon the percentage of CD4+T regulatory (defined as CD3+CD4+CD25highCD127low) cells within the CD3+CD4+T cell gate following treatment with IL-2.
Fluorescence-activated cell sorting assay
Time frame: From Day 0 to Day 60
T regulatory cell phenotype and stability
Fluorescence-activated cell sorting assay
Time frame: From Day 0 to Day 60
T effector cell number and phenotype
Fluorescence-activated cell sorting assay
Time frame: From Day 0 - Day 60
T cell subset proliferation and populations
Fluorescence-activated cell sorting assay
Time frame: From Day 0 - Day 60
Intracellular T cell and natural killer(NK) cell signalling
Fluorescence-activated cell sorting assay
Time frame: From Day 0 - Day 60
T regulatory cell function
T suppression assay
Time frame: From Day 0 - Day 60
IL-2 pathway genotype
DNA sequencing
Time frame: From Day 0 - Day 60
Lymphocyte Subsets
Complete blood count
Time frame: From Day 0 to Day 60
Serum Cytokines
Enzyme-linked immuno sorbent assay
Time frame: From Day 0 to Day 60
Glycaemic control
Self monitoring blood glucose readings, HbA1c, insulin usage
Time frame: From Day 0 to Day 60
Number of Participants with Adverse Events as a Measure of Safety and Tolerability
Time frame: From Day O to Day 60
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