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Published on: May 6, 2013
Persistently autoantibody negative (PAN) type 1 diabetes mellitus in children
Shihab Hameed1, Sian Ellard, Helen J Woodhead
1Endocrinology, Sydney Children's Hospital, Randwick, NSW, Australia. shihab.hameed@sesiahs.health.nsw.gov.au
Insights
Autoantibody-negative type 1 diabetes diagnoses require reevaluation. Some children have monogenic or type 2 diabetes, while others show slower beta-cell destruction and high-risk HLA types.
Area of Science:
- Pediatric Endocrinology
- Autoimmune Diseases
- Genetics of Diabetes
Background:
- Autoantibody-negative children diagnosed with type 1 diabetes may have undiagnosed monogenic or type 2 diabetes.
- Distinguishing these forms is crucial for appropriate management.
Purpose of the Study:
- To investigate the underlying causes of type 1 diabetes in autoantibody-negative pediatric patients.
- To re-evaluate diagnostic criteria and identify alternative diabetes types.
Main Methods:
- Retrospective analysis of 470 children diagnosed with type 1 diabetes.
- Autoantibody testing, HLA typing, C-peptide measurement, and genetic sequencing (HNF4A, HNF1A, KCNJ11, INS) in autoantibody-negative cases.
- Comparison with autoantibody-positive type 1 diabetes patients.
Main Results:
- Nineteen of 367 (5%) persistently autoantibody-negative (PAN) patients were identified.
- One PAN patient had an HNF1A mutation, and another was reclassified with type 2 diabetes.
- PAN and persistently positive on repeat testing (PORT) groups showed higher C-peptide levels and a high frequency of diabetogenic HLA genotypes compared to autoantibody-positive cases.
Conclusions:
- Reevaluation of type 1 diabetes diagnosis is necessary for PAN patients.
- A subset of PAN patients have monogenic or type 2 diabetes.
- Remaining PAN patients exhibit characteristics suggesting slower beta-cell destruction and a high prevalence of type 1 diabetes-associated HLA, indicating type 1B (idiopathic) diabetes is uncommon.
Background:
Autoantibody-negative children diagnosed with type 1 diabetes might have unrecognized monogenic or type 2 diabetes.
Research Design And Methods:
At diagnosis of type 1 diabetes (between ages 0.5 and 16.3 yr, n = 470), autoantibodies [glutamic acid decarboxylase (GAD), insulinoma-associated protein 2 (IA2), insulin autoantibodies (IAA), and/or islet cell antibody (ICA)] were positive (ab+) in 330 and negative in 37 (unknown in 103). Autoantibody-negative patients were retested at median diabetes duration of 3.2 yr (range 0.9-16.2) for autoantibodies (GAD, IA2, ZnT8), human leukocyte antigen (HLA) typing, non-fasting C-peptide, and sequencing of HNF4A, HNF1A, KCNJ11, and INS.
Results:
Nineteen (5% of 367) remained persistently autoantibody negative (PAN), 17 were positive on repeat testing (PORT), and 1 refused retesting. No mutations were found in PORT. One PAN was heterozygous for P112L mutation in HNF1A and transferred from insulin to oral gliclazide. Another PAN transferred to metformin and the diagnosis was revised to type 2 diabetes. The remaining 17 PAN were indistinguishable from the ab+ group by clinical characteristics. HLA genotype was at high risk for type 1 diabetes in 82% of remaining PAN and 100% of PORT. After excluding patients with diabetes duration <1 yr, C-peptide was detectable more frequently in the remaining PAN (7/16) and PORT (6/17) than in a random selection of ab+ (3/28, p = 0.03).
Conclusions:
The diagnosis of type 1 diabetes should be reevaluated in PAN patients, because a subset has monogenic or type 2 diabetes. The remaining PAN have relatively preserved C-peptide compared with ab+, suggesting slower β-cell destruction, but a very high frequency of diabetogenic HLA, implying that type 1B (idiopathic) diabetes is rare.
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