Active Diabetes, Hormones & Metabolism Cells, Biochemistry & Physiology

Investigating neural fine-tuning of pancreatic islet physiology in health and disease

In plain English

AI plain-English summary

The pancreas relies on signals from nerves to fine-tune insulin release, but how this neural wiring adapts in diabetes remains largely unknown. This project addresses a critical gap: while pancreatic hormones like insulin are known to fail in diabetes, the role of peripheral nerves in controlling their release on a minute-by-minute basis has been overlooked. Understanding this neural-pancreas crosstalk could reveal why hormone regulation breaks down in the disease. If successful, the research could identify molecular targets for therapies that prevent or delay diabetes progression by harnessing neural signalling to control hormone release. The work also examines sex differences in neural-pancreas interaction, which may explain why diabetes progresses differently in men and women—potentially leading to sex-specific treatments. This is primarily fundamental science. The researcher will use genetic tools in live zebrafish to map and manipulate pancreatic nerves, then validate findings in human islet cells. While no immediate clinical application exists, similar fundamental studies of neural control in other organs have led to bioelectronic medicine approaches now in clinical trials. A deeper understanding of how nerves tune pancreatic function could eventually open entirely new therapeutic avenues for diabetes.

View original technical description
The project will advance our understanding of neural-pancreas crosstalk by investigating peripheral neurobiology with precision on physiological time scales. Hormones from pancreatic islets are crucial for glucose homeostasis and loss of regulated insulin release leads to diabetes and its many co- morbidities. Secretion of other islet hormones is also dysregulated in diabetes. How neural input contributes to the fine-tuning of islet physiology is underexplored yet represents an opportunity to therapeutically control hormone release in diabetes. To achieve this, I will establish how peripheral nerves adapt to pathophysiological contexts by identifying molecular targets to prevent/delay diabetes progression. Critically for future therapeutic efficacy, I will study how sexual dichotomy impacts neural-pancreas interplay to better target the cellular mechanisms underlying the sex differences in disease progression. I will implement a genetic toolbox for live zebrafish analysis of pancreas physiology, neural tracing, and optogenetic control of neurons and signalling pathways to define fully the physiological roles of islet innervation for the maintenance of pancreas homeostasis in health and disease. Additionally, I will validate the translatability of my findings in primary human islets. These fundamental studies will allow us to understand how pancreatic innervation contributes to diabetes aetiology and to harness neural signalling for therapeutic means.

View the original record at the funder ↗

Researchers

Yu Hsuan Carol Yang (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Multicellular regulation of insulin secretion from pancreatic islets
Aims to identify how the neuropeptide galanin regulates the physiology and adaptation of pancreatic islets under healthy and diabetic states.
Investigating neural fine-tuning of pancreatic islet physiology in health and disease (305101/Z/23/Z)
Human-specific gene regulation in pancreatic beta-cell development
All-optical deconstruction of the islet wiring patterns underlying insulin secretion in health and disease

Original classification

Career Development Award

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