Molecular interactions between a diphenyl scaffold and PED/PEA15: Implications for type II diabetes therapeutics targeting PED/PEA15 - Phospholipase D1 interaction

被引:0
|
作者
Mercurio, Ivan [1 ,3 ]
D'Abrosca, Gianluca [2 ,5 ]
della Valle, Maria
Malgieri, Gaetano [3 ]
Fattorusso, Roberto [3 ]
Isernia, Carla [3 ]
Russo, Luigi [3 ]
Di Gaetano, Sonia
Pedone, Emilia Maria [4 ]
Pirone, Luciano [4 ]
Del Gatto, Annarita [4 ]
Zaccaro, Laura [4 ]
Alberga, Domenico [1 ]
Saviano, Michele [5 ]
Mangiatordi, Giuseppe Felice [1 ]
机构
[1] CNR, Inst Crystallog, Via Amendola 122-o, I-70126 Bari, Italy
[2] Univ Foggia, Dept Clin & Expt Med, Viale Pinto 1, I-71122 Foggia, Italy
[3] Univ Campania Luigi Vanvitelli, Dept Environm Biol & Pharmaceut Sci & Technol, Via Vivaldi 43, I-81100 Caserta, Italy
[4] CNR, Inst Biostruct & Bioimaging, Via P Castellino 111, I-80131 Naples, Italy
[5] CNR, Inst Crystallog, Via Vivaldi 43, I-81100 Caserta, Italy
关键词
Phosphoprotein Enriched in Diabetes/; Phosphoprotein Enriched in Astrocytes 15; Type II diabetes; Molecular Dynamics; Cavity mapping; Nuclear Magnetic Resonance; PROTEIN-KINASE-C; INSULIN-SECRETION; ACCURATE DOCKING; FORCE-FIELD; PEA-15; EXPRESSION; DOMAIN; DYNAMICS; GLIDE; GENE;
D O I
10.1016/j.csbj.2024.04.063
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
In a recent study, we have identified BPH03 as a promising scaffold for the development of compounds aimed at modulating the interaction between PED/PEA15 (Phosphoprotein Enriched in Diabetes/Phosphoprotein Enriched in Astrocytes 15) and PLD1 (phospholipase D1), with potential applications in type II diabetes therapy. PED/PEA15 is known to be overexpressed in certain forms of diabetes, where it binds to PLD1, thereby reducing insulin -stimulated glucose transport. The inhibition of this interaction reestablishes basal glucose transport, indicating PED as a potential target of ligands capable to recover glucose tolerance and insulin sensitivity. In this study, we employ computational methods to provide a detailed description of BPH03 interaction with PED, evidencing the presence of a hidden druggable pocket within its PLD1 binding surface. We also elucidate the conformational changes that occur during PED interaction with BPH03. Moreover, we report new NMR data supporting the in-silico findings and indicating that BPH03 disrupts the PED/PLD1 interface displacing PLD1 from its interaction with PED. Our study represents a significant advancement toward the development of potential therapeutics for the treatment of type II diabetes.
引用
收藏
页码:2001 / 2010
页数:10
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