Completed Diabetes, Hormones & Metabolism Cells, Biochemistry & Physiology

Understanding pancreatic beta cell connectivity

In plain English

AI plain-English summary

A tiny minority of insulin-producing beta cells—roughly 5%—act as pacemakers that orchestrate the activity of the rest of the islet, and this coordination breaks down in diabetes. Type 2 diabetes affects about 8% of adults worldwide, driven by failures in both insulin secretion and action. While pancreatic islets are known to be the sole source of insulin, why their size and composition are so consistent across species has remained unclear. The researchers have discovered that a small subset of beta cells, called hubs, control the timing and spread of insulin release across the islet. In diabetic models, these hubs are fewer and less effective. This project aims to identify the molecular signature of hub cells, track their behaviour in living animals after transplantation into the eye, and test how diabetes risk genes and remission treatments—such as bariatric surgery—alter hub-follower communication. If successful, this work would reveal whether disrupted beta cell connectivity is a fundamental cause of type 2 diabetes, not just a consequence. That could open the door to entirely new therapeutic strategies—drugs or interventions that restore or replace hub cell function—rather than simply managing blood sugar. For now, this is fundamental science: understanding how a micro-organ coordinates its cells. But similar discoveries about pacemaker cells in the heart led directly to pacemakers and anti-arrhythmic drugs. A deeper grasp of beta cell connectivity could eventually reshape how diabetes is treated.

View original technical description
Type 2 diabetes currently affects ~8 % of the adult population worldwide and involves both impaired insulin secretion and action. Pancreatic islets are the sole source of circulating insulin in man. The remarkable conservation of islet size, and broadly similar cellular composition across different mammalian species, suggests that intercellular communication is critical for the regulation of hormone secretion from these micro-organs. Recent massive parallel sequencing data have revealed that considerable heterogeneity exists between individual insulin-secreting beta cells. By combining optogenetic and photopharmacological approaches to study islets in vitro, we have demonstrated that a small number (typically ~5%) of these cells serve as hubs to control overall islet dynamics, and this number is reduced in models of diabetes. Here, we seek to characterize these pacemaker cells in molecular terms, to explore their roles and properties in vivo after engraftment into the anterior chamber of the eye, and to examine how hub-follower behaviour is affected by GWAS-identified risk genes for type 2 diabetes and in models of disease remission including bariatric surgery. In this way, we will assess whether changes in connectivity are fundamental to the disease process and may ultimately be targeted by novel therapeutic strategies in man.

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Researchers

Guy Rutter (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Multicellular regulation of insulin secretion from pancreatic islets
Intercellular communication in pseudoislets: shaping the dynamics of insulin secretion
All-optical deconstruction of the islet wiring patterns underlying insulin secretion in health and disease
Genetic and nutritional control of pancreatic beta cell identity.
Recapitulating beta cell development adjacent to the islet vascular niche to advance beta cell replacement therapies for type 1 diabetes.

Original classification

Investigator Award in Science

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