The Role of ER Stress in Diabetes: Exploring Pathological Mechanisms Using Wolfram Syndrome
Abstract
:1. Introduction
2. ER Stress in Diabetes and Pancreatic β-Cell Dysfunction
3. Genetic Risk Factors for T2DM: Findings from GWAS and the Involvement of UPR Genes
3.1. Monogenic and Syndromic Diabetes Derived from UPR Impairment
3.2. SNPs in UPR-Related Genes and Their Contribution to the Development of T2DM
3.3. Wolfram Syndrome and WFS1-Related Disorders: A Prototype of ER-Related Disease
4. Therapeutics Targeting ER Stress as Treatments for Wolfram Syndrome and T2DM
4.1. Pharmacological Agents to Treat Wolfram Syndrome and T2DM
4.2. Regenerative Therapy
5. Conclusions and Future Perspectives
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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UPR Pathway | Gene | Protein | Syndrome | Symptoms Other than Diabetes |
---|---|---|---|---|
PERK | EIF2AK3 [32,33,34] | PERK | Walcott–Rallison syndrome | Liver dysfunction Skeletal dysplasia |
EIF2S3 [44,45] | eIF2 γ subunit | Mental retardation, epileptic seizures, hypogonadism, Hypogenitalism, microcephaly, and obesity (MEHMO) syndrome | Mental retardation Epilepsy Hypogonadism/hypogenitalism Microcephaly and obesity | |
EIF2B1 [46] | eIF2B | Liver dysfunction | ||
DNAJC3 [47] | p58IPK | Ataxia, combined cerebellar and peripheral, with hearing loss, and diabetes mellitus (ACPHD) | Combined cerebellar Afferent ataxia Mild upper motor neuron damage Peripheral neuropathy Sensorineural hearing loss | |
PPP1R15B [48] | CReP | Short stature Intellectual disability Microcephaly | ||
IRE1 | ERN1 [36,37] #1 | IRE1α | ||
Other | WFS1 [49] | Wolframin | Wolfram syndrome, Wolfram syndrome-related disorder | Optic nerve atrophy, hearing loss, diabetes insipidus, neurodegeneration |
IER3IP1 [50,51] | IER3IP1 | Microcephaly with simplified gyration, epilepsy, and permanent neonatal diabetes syndrome (MEDS) | Microcephaly Epilepsy | |
CISD2 [52] | ERIS | Wolfram syndrome (type 2) | Upper gastrointestinal ulceration and bleeding | |
MANF [42,43] | MANF | Short stature, hearing loss, developmental delay, microcephaly | ||
CREBRF [53] #2 | CREB3 | |||
YIPF5 [54] | YIPF5 | Microcephaly Epilepsy | ||
TANGO1 [55] | TANGO1 | Dentinogenesis imperfecta Short stature Skeletal abnormalities | ||
SIL1 [56] #1 | SIL1 | Marinesco–Sjögren syndrome | Early-onset cerebellar ataxia Short stature | |
ERDJ4 [57] #1 | ERDJ4 |
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Morikawa, S.; Urano, F. The Role of ER Stress in Diabetes: Exploring Pathological Mechanisms Using Wolfram Syndrome. Int. J. Mol. Sci. 2023, 24, 230. https://doi.org/10.3390/ijms24010230
Morikawa S, Urano F. The Role of ER Stress in Diabetes: Exploring Pathological Mechanisms Using Wolfram Syndrome. International Journal of Molecular Sciences. 2023; 24(1):230. https://doi.org/10.3390/ijms24010230
Chicago/Turabian StyleMorikawa, Shuntaro, and Fumihiko Urano. 2023. "The Role of ER Stress in Diabetes: Exploring Pathological Mechanisms Using Wolfram Syndrome" International Journal of Molecular Sciences 24, no. 1: 230. https://doi.org/10.3390/ijms24010230
APA StyleMorikawa, S., & Urano, F. (2023). The Role of ER Stress in Diabetes: Exploring Pathological Mechanisms Using Wolfram Syndrome. International Journal of Molecular Sciences, 24(1), 230. https://doi.org/10.3390/ijms24010230