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Neuropeptide Y1 receptor antagonism protects β-cells and improves glycemic control in type 2 diabetes
Chieh-Hsin Yang1, Danise Ann-Onda1, Xuzhu Lin1
1St. Vincent's Institute of Medical Research, Fitzroy, VIC, 3065, Australia.
Objectives:
Loss of functional β-cell mass is a key factor contributing to poor glycemic control in advanced type 2 diabetes (T2D). We have previously reported that the inhibition of the neuropeptide Y1 receptor improves the islet transplantation outcome in type 1 diabetes (T1D). The aim of this study was to identify the pathophysiological role of the neuropeptide Y (NPY) system in human T2D and further evaluate the therapeutic potential of using the Y1 receptor antagonist BIBO3304 to improve β-cell function and survival in T2D.
Methods:
The gene expression of the NPY system in human islets from nondiabetic subjects and subjects with T2D was determined and correlated with the stimulation index. The glucose-lowering and β-cell-protective effects of BIBO3304, a selective orally bioavailable Y1 receptor antagonist, in high-fat diet (HFD)/multiple low-dose streptozotocin (STZ)-induced and genetically obese (db/db) T2D mouse models were assessed.
Results:
In this study, we identified a more than 2-fold increase in NPY1R and its ligand, NPY mRNA expression in human islets from subjects with T2D, which was significantly associated with reduced insulin secretion. Consistently, the pharmacological inhibition of Y1 receptors by BIBO3304 significantly protected β cells from dysfunction and death under multiple diabetogenic conditions in islets. In a preclinical study, we demonstrated that the inhibition of Y1 receptors by BIBO3304 led to reduced adiposity and enhanced insulin action in the skeletal muscle. Importantly, the Y1 receptor antagonist BIBO3304 treatment also improved β-cell function and preserved functional β-cell mass, thereby resulting in better glycemic control in both HFD/multiple low-dose STZ-induced and db/db T2D mice.
Conclusions:
Our results revealed a novel causal link between increased islet NPY-Y1 receptor gene expression and β-cell dysfunction and failure in human T2D, contributing to the understanding of the pathophysiology of T2D. Furthermore, our results demonstrate that the inhibition of the Y1 receptor by BIBO3304 represents a potential β-cell-protective therapy for improving functional β-cell mass and glycemic control in T2D.
Insights
Increased neuropeptide Y (NPY) Y1 receptor expression in type 2 diabetes (T2D) impairs beta-cell function. Blocking this receptor with BIBO3304 protects beta cells and improves glycemic control in T2D models.
Area of Science:
- Endocrinology
- Metabolic Diseases
- Pharmacology
Background:
- Loss of functional beta-cell mass is a primary driver of poor glycemic control in advanced type 2 diabetes (T2D).
- Previous research indicated that inhibiting the neuropeptide Y1 receptor (NPY1R) benefits islet transplantation in type 1 diabetes (T1D).
Purpose of the Study:
- To elucidate the pathophysiological role of the neuropeptide Y (NPY) system in human T2D.
- To assess the therapeutic potential of the Y1 receptor antagonist BIBO3304 for enhancing beta-cell function and survival in T2D.
Main Methods:
- Gene expression analysis of the NPY system in human islets from non-diabetic and T2D subjects.
- Evaluation of BIBO3304's glucose-lowering and beta-cell protective effects in diet-induced and genetically obese T2D mouse models.
Main Results:
- Human T2D islets showed over a 2-fold increase in NPY and NPY1R mRNA, correlating with reduced insulin secretion.
- BIBO3304 treatment protected beta cells from dysfunction and death and reduced adiposity in T2D mouse models.
- BIBO3304 improved beta-cell function, preserved functional beta-cell mass, and enhanced glycemic control in T2D mouse models.
Conclusions:
- A novel causal link exists between elevated islet NPY-Y1 receptor expression and beta-cell dysfunction/failure in human T2D.
- Inhibition of the Y1 receptor using BIBO3304 shows promise as a beta-cell-protective therapy for T2D.
- BIBO3304 treatment improves functional beta-cell mass and glycemic control, offering a potential therapeutic strategy for T2D.
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