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Updated: Nov 20, 2025

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Published on: June 16, 2011
DNAJC3 deficiency induces β-cell mitochondrial apoptosis and causes syndromic young-onset diabetes
Maria Lytrivi1,2, Valérie Senée3, Paraskevi Salpea1
1ULB Center for Diabetes Research, Medical Faculty, Université Libre de Bruxelles, Brussels, Belgium.
Objective:
DNAJC3, also known as P58IPK, is an Hsp40 family member that interacts with and inhibits PKR-like ER-localized eIF2α kinase (PERK). Dnajc3 deficiency in mice causes pancreatic β-cell loss and diabetes. Loss-of-function mutations in DNAJC3 cause early-onset diabetes and multisystemic neurodegeneration. The aim of our study was to investigate the genetic cause of early-onset syndromic diabetes in two unrelated patients, and elucidate the mechanisms of β-cell failure in this syndrome.
Methods:
Whole exome sequencing was performed and identified variants were confirmed by Sanger sequencing. DNAJC3 was silenced by RNAi in INS-1E cells, primary rat β-cells, human islets, and induced pluripotent stem cell-derived β-cells. β-cell function and apoptosis were assessed, and potential mediators of apoptosis examined.
Results:
The two patients presented with juvenile-onset diabetes, short stature, hypothyroidism, neurodegeneration, facial dysmorphism, hypoacusis, microcephaly and skeletal bone deformities. They were heterozygous compound and homozygous for novel loss-of-function mutations in DNAJC3. DNAJC3 silencing did not impair insulin content or secretion. Instead, the knockdown induced rat and human β-cell apoptosis and further sensitized cells to endoplasmic reticulum stress, triggering mitochondrial apoptosis via the pro-apoptototic Bcl-2 proteins BIM and PUMA.
Conclusions:
This report confirms previously described features and expands the clinical spectrum of syndromic DNAJC3 diabetes, one of the five monogenic forms of diabetes pertaining to the PERK pathway of the endoplasmic reticulum stress response. DNAJC3 deficiency may lead to β-cell loss through BIM- and PUMA-dependent activation of the mitochondrial pathway of apoptosis.
Insights
Mutations in DNAJC3 cause a rare syndromic diabetes by promoting pancreatic beta-cell apoptosis through the PERK pathway. This study identifies new DNAJC3 mutations and clarifies the mechanism of beta-cell failure in this genetic diabetes.
Area of Science:
- Endocrinology
- Genetics
- Molecular Biology
Background:
- DNAJC3 (P58IPK) is an Hsp40 protein that inhibits the PERK kinase.
- Dnajc3 deficiency in mice leads to pancreatic beta-cell loss and diabetes.
- Loss-of-function DNAJC3 mutations cause early-onset diabetes and neurodegeneration.
Observation:
- Two patients with juvenile diabetes, short stature, hypothyroidism, neurodegeneration, and other anomalies were identified.
- These patients were compound heterozygous or homozygous for novel loss-of-function DNAJC3 mutations.
- DNAJC3 silencing in beta-cells did not affect insulin secretion but induced apoptosis.
Findings:
- DNAJC3 knockdown sensitized rat and human beta-cells to ER stress, inducing apoptosis.
- Apoptosis was mediated by the mitochondrial pathway, involving Bcl-2 proteins BIM and PUMA.
- This identifies a novel mechanism of beta-cell failure in syndromic diabetes.
Implications:
- This study expands the clinical spectrum of DNAJC3-related syndromic diabetes.
- It highlights the role of the PERK pathway in endoplasmic reticulum stress response and beta-cell survival.
- Understanding this pathway is crucial for developing targeted therapies for monogenic diabetes forms.
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