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Updated: Jul 8, 2025

Homogeneous Time-resolved Förster Resonance Energy Transfer-based Assay for Detection of Insulin Secretion
Published on: May 10, 2018
Validating Fractalkine receptor as a target and identifying candidates for drug discovery against type 2 diabetes
1Department of Biotechnology, Babasaheb Bhimrao Ambedkar University, Lucknow, Uttar Pradesh, India.
Abstract:
Type 2 diabetes mellitus (T2DM) is one of the most common chronic diseases employing abnormal levels of insulin. Enhancing the insulin production is greatly aided by the regulatory mechanisms of the Fractalkine receptor (CX3CR1) system in islet β-cell function. However, elements including a high-fat diet, obesity, and ageing negatively impact the expression of CX3CR1 in islets. CX3CL1/CX3CR1 receptor-ligand complex is now recognized as a novel therapeutic target. It suggests that T2DM-related β-cell dysfunction may result from lower amount of these proteins. We analyzed the differential expression of CX3CR1 gene samples taken from persons with T2DM using data obtained from the Gene Expression Omnibus database. Homology modeling enabled us to generate the three-dimensional structure of CX3CR1 and a possible binding pocket. The optimized CX3CR1 structure was subjected to rigorous screening against a massive library of 693 million drug-like molecules from the ZINC15 database. This screening process led to the identification of three compounds with strong binding affinity at the identified binding pocket of CX3CR1. To further evaluate the potential of these compounds, molecular dynamics simulations were conducted over a 50 ns time scale to assess the stability of the protein-ligand complexes. These simulations revealed that ZINC000032506419 emerged as the most promising drug-like compound among the three potent molecules. The discovery of ZINC000032506419 holds exciting promise as a potential therapeutic agent for T2D and other related metabolic disorders. These findings pave the way for the development of effective medications to address the complexities of T2DM and its associated metabolic diseases.
Insights
Researchers identified a potential new drug, ZINC000032506419, to treat type 2 diabetes. This compound targets the Fractalkine receptor (CX3CR1) system, which is crucial for insulin production and is often impaired in diabetes.
Area of Science:
- Endocrinology and Metabolism
- Computational Biology
- Pharmacology
Background:
- Type 2 diabetes mellitus (T2DM) is characterized by insulin dysregulation, impacting islet beta-cell function.
- The Fractalkine receptor (CX3CR1) system plays a key role in regulating insulin production, but its expression is reduced by factors like high-fat diets, obesity, and aging.
- The CX3CL1/CX3CR1 complex is a potential therapeutic target, as reduced levels may contribute to T2DM-related beta-cell dysfunction.
Purpose of the Study:
- To investigate the differential expression of CX3CR1 in T2DM patients.
- To identify potential therapeutic compounds targeting the CX3CR1 receptor for T2DM treatment.
Main Methods:
- Analyzed CX3CR1 gene expression data from T2DM patients using the Gene Expression Omnibus database.
- Generated a 3D structure of CX3CR1 via homology modeling to identify a potential drug-binding pocket.
- Screened 693 million drug-like molecules from the ZINC15 database against the CX3CR1 binding pocket.
- Performed 50 ns molecular dynamics simulations to assess the stability of protein-ligand complexes.
Main Results:
- Identified three compounds with high binding affinity to the CX3CR1 binding pocket.
- ZINC000032506419 demonstrated the most stable and promising interaction among the identified compounds.
- The study highlights the potential of targeting the CX3CR1 system for T2DM therapy.
Conclusions:
- The identified compound ZINC000032506419 shows significant promise as a therapeutic agent for T2DM.
- This research opens avenues for developing novel medications to combat T2DM and associated metabolic disorders by targeting the CX3CR1 pathway.
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