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Updated: Jun 4, 2025

Differentiation of Human Pluripotent Stem Cells Into Pancreatic Beta-Cell Precursors in a 2D Culture System
Published on: December 16, 2021
Gain of pancreatic beta cell-specific SCD1 improves glucose homeostasis by maintaining functional beta cell mass
Wenyue Yin1, Suyun Zou1, Min Sha2
1Key Laboratory of Human Functional Genomics of Jiangsu Province, Nanjing Medical University, Nanjing, Jiangsu, China.
Aims/Hypothesis:
The key pancreatic beta cell transcription factor v-maf musculoaponeurotic fibrosarcoma oncogene homologue A (MafA) is critical for the maintenance of mature beta cell function and phenotype. The expression levels and/or activities of MafA are reduced when beta cells are chronically exposed to diabetogenic stress, such as hyperglycaemia (i.e. glucotoxicity). Interventional targets and adjuvant therapies to abate MafA loss in beta cells may provide evidence to support the effective treatment of diabetes. In this study, we aimed to investigate the function of stearoyl-CoA desaturase 1 (SCD1) in the stabilisation of MafA expression and activity in order to maintain functional beta cell mass, with a view to suppressing the development of type 2 diabetes.
Methods:
SCD1 expression levels were analysed in islets obtained from humans with type 2 diabetes, hyperglycaemic db/db mice, and a high-fat diet (HFD)-induced mouse model of diabetes. Pancreatic beta cell-specific Scd1 knockin (βSCD1KI) mice were generated to study the role of SCD1 in beta cell function and identity. The protein-to-protein interactions between SCD1 and MafA were detected in MIN6 and HEK293A cells. We used experiments including chromatin immunoprecipitation, cell-based ubiquitination assay and fatty acid composition analysis to investigate the specific molecular mechanism underlying the effect of SCD1 on the restoration of MafA and beta cell function under glucotoxic conditions.
Results:
SCD1 expression was reduced in beta cells of humans with type 2 diabetes and in HFD-fed and db/db mice compared with healthy controls, which was attributed to glucotoxicity-induced Scd1 promoter histone deacetylation. Gain-of-function of SCD1 in beta cells improved insulin deficiency, glucose intolerance and beta cell dedifferentiation/transdifferentiation in the HFD-induced mouse model of diabetes. Mechanistically, SCD1 directly bound to the E3 ubiquitin ligase HMG-CoA reductase degradation 1 (HRD1) and stabilised nuclear MafA through interrupting MafA-HRD1 interactions in mouse islets and MIN6 cells, which inhibited the ubiquitination-mediated degradation of MafA. Moreover, the products of SCD enzyme reactions (mainly oleic acid) also alleviated glucotoxicity-mediated oxidative stress in MIN6 cells.
Conclusions/Interpretation:
Our findings indicate that SCD1 stabilises beta cell MafA both in desaturase-dependent and -independent manners, thus improving glucose homeostasis under metabolic stress. This provides a potential novel target for precision medicine for the treatment of diabetes.
Insights
Stearoyl-CoA desaturase 1 (SCD1) stabilizes the key beta cell factor MafA, improving glucose homeostasis under metabolic stress. This finding offers a potential new target for precision diabetes treatment.
Area of Science:
- * Molecular endocrinology
- * Diabetes research
- * Beta cell biology
Background:
- * The transcription factor MafA is crucial for pancreatic beta cell function and phenotype.
- * MafA expression and activity decrease under diabetogenic stress like hyperglycemia (glucotoxicity).
- * Targeting MafA loss in beta cells could offer effective diabetes treatments.
Purpose of the Study:
- * To investigate the role of stearoyl-CoA desaturase 1 (SCD1) in maintaining MafA expression and activity.
- * To explore SCD1's potential in preserving functional beta cell mass.
- * To assess SCD1 as a therapeutic target for preventing type 2 diabetes.
Main Methods:
- * Analyzed SCD1 expression in human diabetic islets and mouse models (db/db, HFD).
- * Generated beta cell-specific Scd1 knockin (βSCD1KI) mice.
- * Investigated SCD1-MafA interactions, ubiquitination, and fatty acid effects in beta cells.
Main Results:
- * Reduced SCD1 expression in diabetic human and mouse beta cells, linked to glucotoxicity.
- * SCD1 restoration improved glucose intolerance and beta cell dedifferentiation in a mouse model.
- * SCD1 stabilized nuclear MafA by inhibiting its ubiquitination and degradation via HRD1.
- * SCD1 products, like oleic acid, reduced glucotoxicity-induced oxidative stress.
Conclusions:
- * SCD1 stabilizes beta cell MafA through desaturase-dependent and -independent mechanisms.
- * SCD1 enhances glucose homeostasis under metabolic stress.
- * SCD1 represents a potential novel therapeutic target for precision diabetes medicine.
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