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Autologous Adult Stem Cells to Patients With Type 1 Diabetes and a Successful Renal Transplant

A Phase I Safety and Tolerability Study Following the Infusion of Autologous Expanded Progeny of an Adult CD34+ Stem Cell Subset (InsulinCytes) to Patients With Type I Diabetes Mellitus and a Successful Renal Transplant

Status
Completed
Phases
Phase 1
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT00788827
Enrollment
7
Registered
2008-11-11
Start date
2008-11-30
Completion date
2013-05-31
Last updated
2019-11-18

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

Conditions

Type 1 Diabetes, Type 2 Diabetes

Keywords

diabetes type I, diabetes type 2, renal transplant, stem cells, successful renal transplant

Brief summary

This is a phase I study to assess the safety and tolerability of infusing expanded stem cells into the pancreas of patients with type I diabetes and a successful renal transplant. The stem cells used in this study occur naturally in the body and are collected from each recipient by a procedure called leukapheresis. The cells are then expanded and differentiated into insulin-like cells in a sterile suite before being injected into the body or tail of the pancreas of the recipient.

Detailed description

Islet transplantation as a potential treatment for diabetes has been investigated extensively over the past 10 years. Such an approach, however, will always be limited mainly because it is difficult to obtain sufficiently large numbers of purified islets from cadaveric donors. One alternative to organ or tissue transplantation is to use a renewable source of cells. Adult stem cells are clonogenic cells capable of both self-renewal and multilineage differentiation. These cells have the potential to proliferate and differentiate into any type of cell and to be genetically modified in vitro, thus providing cells, which can be isolated and used for transplantation. Recent studies have given well-defined differentiation protocols, which can be used to guide stem cells into specific cell lineages as neurons, cardiomyocytes and insulin-secreting cells. Moreover, these derived cells have been useful in different animal models. In this regard, insulin-secreting cells derived from R1 mouse embryonic stem cells restore blood glucose concentrations to normal when they are transplanted into streptozotocin-induced diabetic animals. Our group has isolated stem cells (Cluster Designated (CD) 34 positive subset of stem cells) that are capable of differentiating into multiple tissue types ex vivo. In defined conditions, in culture, about 40 percent of the cells produce insulin and reduce blood sugar levels in streptozotocin-induced mice. Clinically, we have performed a phase I trial of stem cell administration to patients with liver insufficiency. The procedure was well tolerated with no specific side effects and with sustained signs of clinical benefit. These results support this protocol for the application of adult stem cell therapy in the treatment of diabetes. In order to evaluate potential clinical applications for these recent advances we have designed a prospective Phase I clinical study of the expanded progeny of an adult CD34 positive subset (InsulinCytes) injected directly into the body and tail of the pancreas of the participants via selective catheterisation of the splenic artery. The study group consists of patients with complicated diabetes mellitus type I plus kidney transplantation with the aim of ascertaining whether this confers clinical benefit as a treatment model for diabetes. Granulocyte colony-stimulating factor (G-CSF) will be administered to suitable patients to mobilise their haematopoietic stem cells (HSCs) from the bone marrow into the peripheral circulation. These blood cells will be collected from each patient by leukapheresis. CD34 positive stem cells will then be isolated by immunoselection and introduced into a Nunc cell factory where the subset of CD34 positive stem cells will be allowed to attach to the plastic trays within the cell factory for 2 hours at 37 degrees C in 5 percent carbon dioxide. After this period the non-attached CD34 positive cells will be washed from the system and the progeny of the attached cells secreted into the supernatant media expanded in the presence of growth medium supplemented with growth factors. At the end of 6 days expansion, the stem cells will be differentiated into insulin and c-peptide protein excreting cells over the next 14 days by the addition of specified reagents/growth factors and continued incubation at 37 degrees C in 5 percent carbon dioxide in accordance with the principles of Good Manufacturing Practice (GMP). As an optional step the cells can be labelled with iron oxide to allow tracking of the cells by Magnetic Resonance Imaging (MRI) scan, before being infused into the patient. An ongoing institute experience with liver failure patients who have been infused with undifferentiated stem cells has shown that an administered dose of up to 2 x 10 log 9 cells was well tolerated. The proposed study group will consist of 10 Type I or Type 2 diabetic patients who have had a successful previous kidney transplant. The primary purpose of the study is to assess the safety and tolerance of stem cell infusion into the pancreas and then to assess the impact of this new modality in the treatment of diabetes.

Interventions

BIOLOGICALAutologous CD34+ stem cells

Up to 5 x 10 log 8 of autologous stem cells on a single occasion

Sponsors

Imperial College London
Lead SponsorOTHER

Study design

Allocation
NA
Intervention model
SINGLE_GROUP
Primary purpose
TREATMENT
Masking
NONE

Intervention model description

Autologous stem cells

Eligibility

Sex/Gender
ALL
Age
16 Years to 65 Years
Healthy volunteers
No

Inclusion criteria

* Male or female patients aged from 16 to 65 years of age * Patient with Type I or Type 2 diabetes mellitus plus: * Successful previous kidney transplant. * Good kidney allograft function /no episodes of rejection for at least one year post-transplant * Not taking steroids as part of standard immuno-suppression * Has a WHO performance score of less than 2 * Has a life expectancy of at least 3 months * Ability to give written consent * Women of childbearing potential may be included, but must use a reliable and appropriate contraceptive method

Exclusion criteria

* Patients below the age of 16 or above the age of 65 years * Patients with chronic pancreatitis and poor exocrine pancreatic function * Pregnant or lactating women * Patients with recent recurrent GI bleeding or spontaneous bacterial peritonitis * Patients with evidence of HIV or other life threatening infection * Patients unable to give written consent * Patients with a history of hypersensitivity to G-CSF * Patients who have been included in any other clinical trial within the previous month

Design outcomes

Primary

MeasureTime frameDescription
Number of Participants Who Experienced Adverse Events14 daysSafety will be evaluated in terms of adverse events graded according to CTCTAE toxicity criteria and laboratory test results. All adverse events will also be graded for relationship to treatment and as expected and unexpected.

Secondary

MeasureTime frameDescription
Hba1C Data of Pre and Post Stem Cell Infusion12 weeksMean HbA1c laboratory measurements pre and post stem cell infusion
Insulin Level12 weeksMean insulin requirement was calculated for each participant pre and post stem cell infusion
Amylase Level12 weeksEach participant had mean amylase data analysed to give a pre and post mean result
Serum Creatinine12 weeksEach participant had serum creatinine analysis pre and post stem cell infusion to give mean result

Countries

United Kingdom

Participant flow

Participants by arm

ArmCount
Single Arm
Autologous CD34+ Stem Cells
7
Total7

Withdrawals & dropouts

PeriodReasonFG000
Overall StudyLack of Efficacy2

Baseline characteristics

CharacteristicSingle Arm
Age, Categorical
<=18 years
0 Participants
Age, Categorical
>=65 years
0 Participants
Age, Categorical
Between 18 and 65 years
7 Participants
Age, Continuous54.6 years
STANDARD_DEVIATION 4.2
Race and Ethnicity Not Collected— Participants
Region of Enrollment
United Kingdom
7 participants
Sex: Female, Male
Female
2 Participants
Sex: Female, Male
Male
5 Participants

Adverse events

Event typeEG000
affected / at risk
deaths
Total, all-cause mortality
0 / 7
other
Total, other adverse events
7 / 7
serious
Total, serious adverse events
0 / 7

Outcome results

Primary

Number of Participants Who Experienced Adverse Events

Safety will be evaluated in terms of adverse events graded according to CTCTAE toxicity criteria and laboratory test results. All adverse events will also be graded for relationship to treatment and as expected and unexpected.

Time frame: 14 days

ArmMeasureGroupValue (NUMBER)
Autologous Stem CellsNumber of Participants Who Experienced Adverse EventsHaematoma at femoral catheter insertion1 participants
Autologous Stem CellsNumber of Participants Who Experienced Adverse EventsFatigue7 participants
Secondary

Amylase Level

Each participant had mean amylase data analysed to give a pre and post mean result

Time frame: 12 weeks

Population: Participants who received a stem cell infusion

ArmMeasureValue (MEAN)Dispersion
Autologous Stem CellsAmylase Level48.49 units/LStandard Deviation 25.2
Post Infusion of Stem CellsAmylase Level75.52 units/LStandard Deviation 34.2
Secondary

Hba1C Data of Pre and Post Stem Cell Infusion

Mean HbA1c laboratory measurements pre and post stem cell infusion

Time frame: 12 weeks

Population: Patients who were infused with stem cells

ArmMeasureValue (MEAN)Dispersion
Autologous Stem CellsHba1C Data of Pre and Post Stem Cell Infusion7.2 percentageStandard Deviation 1.3
Post Infusion of Stem CellsHba1C Data of Pre and Post Stem Cell Infusion7.24 percentageStandard Deviation 1.2
Comparison: Each participants Hba1c (%) lab result was analysed pre and post stem cell infusion to achieve 2 mean readings per participant.p-value: <0.05Mixed Models Analysis
Secondary

Insulin Level

Mean insulin requirement was calculated for each participant pre and post stem cell infusion

Time frame: 12 weeks

Population: Participants who received a stem cell infusion

ArmMeasureValue (MEAN)Dispersion
Autologous Stem CellsInsulin Level59.4 iu/dayStandard Deviation 25.7
Post Infusion of Stem CellsInsulin Level54.06 iu/dayStandard Deviation 18.2
Secondary

Serum Creatinine

Each participant had serum creatinine analysis pre and post stem cell infusion to give mean result

Time frame: 12 weeks

Population: Participants who received stem cell infusion

ArmMeasureValue (MEAN)Dispersion
Autologous Stem CellsSerum Creatinine128.22 umol/LStandard Deviation 11.9
Post Infusion of Stem CellsSerum Creatinine118.64 umol/LStandard Deviation 15.5

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