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Updated: Jul 10, 2026

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Published on: April 10, 2026
[Anatomical and functional plasticity of pancreatic beta-cells and type 2 diabetes]
1Service d'Endocrinologie et Métabolisme, Département de Médecine Interne, Centre Médical Hadassa, Université Hébraïque de Jérusalem, 91120 Jérusalem, Israël. Erol.Cerasi@huji.ac.il
Abstract:
The most common form of diabetes, type 2 diabetes (T2D) is a major Public Health issue which is receiving a great deal of attention both in industrial and public research, in order to develop new and more effective drugs. The hyperglycaemia of T2D is the result of two interdependent defects : decreased biological efficacy of insulin in target tissues (insulin resistance), and a decreased capacity for beta cells to secrete insulin in response to glucose. Furthermore, hyperglycaemia evolves with time and even with rigorous treatment there is a progressive deterioration of glucose homeostasis. Seventy five percent of DT2 patients are obese and show a perturbed lipid profile. beta-cell plasticity is a unique property of these cells to adapt their number and volume (beta-cell mass) and their function to the increased secretory demand linked to insulin resistance. This is well documented in physiological (pregnancy) as well in pathophysiological conditions (obesity, acromegaly). Although the lack of reliable techniques makes it very difficult to document it in humans, this property is likely altered in DT2, mainly as a consequence of the prolonged exposure of islet cells to high plasma levels of glucose and free fatty acids (gluco-lipotoxicity). The mechanisms by which hyperglycaemia and hyperlipidemia exert their deleterious effects on the beta-cell include the generation of Reactive Oxygen Species (ROS) and Reactive Nitrogen Species (RNS) and Advanced Glycosylation End Products (AGE). Altogether the prevailing clinical and experimental data urge us to consider that the pathophysiology of DT2 lies, at least in part, the inability of beta-cells to adapt their functional mass to the prevailing insulin demand. This re-evaluation of the pathophysiology of DT2 stimulates the research of new therapeutic approaches aimed at maintaining and/or restoring the functional beta-cell mass by targeting the mechanisms responsible for its decrease.
Insights
Type 2 diabetes (T2D) involves insulin resistance and reduced insulin secretion. Beta-cell dysfunction, due to high glucose and fatty acids, impairs the ability to adapt, driving T2D progression and necessitating new therapeutic targets.
Area of Science:
- Endocrinology
- Metabolic Diseases
- Public Health
Background:
- Type 2 diabetes (T2D) is a prevalent public health concern characterized by hyperglycemia.
- T2D results from insulin resistance and impaired pancreatic beta-cell insulin secretion.
- Hyperglycemia and hyperlipidemia contribute to progressive glucose homeostasis deterioration.
Purpose of the Study:
- To investigate the role of beta-cell plasticity in T2D pathophysiology.
- To understand the mechanisms underlying beta-cell dysfunction in T2D.
- To identify new therapeutic strategies targeting beta-cell mass and function.
Main Methods:
- Review of existing clinical and experimental data on T2D.
- Analysis of beta-cell adaptation in physiological and pathophysiological states.
- Examination of the impact of hyperglycemia and hyperlipidemia on beta-cells.
Main Results:
- Beta-cell plasticity is crucial for adapting to insulin resistance.
- Prolonged exposure to high glucose and fatty acids (gluco-lipotoxicity) impairs beta-cell function.
- Reactive Oxygen Species (ROS), Reactive Nitrogen Species (RNS), and Advanced Glycosylation End Products (AGE) mediate beta-cell damage.
Conclusions:
- The pathophysiology of T2D involves an inability of beta-cells to adapt their functional mass to meet insulin demand.
- Maintaining or restoring functional beta-cell mass is a promising therapeutic avenue for T2D.
- Targeting mechanisms of beta-cell mass reduction is key for novel T2D drug development.
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