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含RGD配体对整合素αVβ3分子识别的结构见解:特异性决定环(SDL)的作用。

Structural insights into the molecular recognition of integrin αVβ3 by RGD-containing ligands: The role of the specificity-determining loop (SDL).

作者信息

Mariasoosai Charles, Bose Santanu, Natesan Senthil

机构信息

College of Pharmacy and Pharmaceutical Sciences, Washington State University, Spokane, WA 99202, USA.

Department of Veterinary Microbiology and Pathology, College of Veterinary Medicine, Washington State University, Pullman, WA 99164, USA.

出版信息

bioRxiv. 2024 Sep 25:2024.09.23.614545. doi: 10.1101/2024.09.23.614545.

Abstract

Integrin αVβ3 is a prominent member of the "RGD-recognizing" integrin family of cell surface receptors. αVβ3 binds to various extracellular matrix (ECM) proteins and oxysterols such as 25-hydroxycholesterol, is implicated in several diseases, including cancer metastasis, lung fibrosis, inflammation, and autoimmune diseases, and is pursued as a valuable therapeutic target. Despite enormous efforts to seek a pure antagonist, to date, no single drug candidate has successfully reached clinics due to associated partial agonism and toxicity issues. Developing effective and safe inhibitors require a thorough understanding of the molecular interactions and structural changes related to the receptor's activation and inhibition mechanisms. This study offers a comprehensive residue-residue contact and network analyses of the ligand-binding β-propeller βI domains (headpiece) based on all available experimental structures of integrin αVβ3 in unliganded, agonist-, antagonist-, and antibody-bound states. The analyses reveal many critical interactions that were not reported before and show that specific orientation and interactions of residues from the specificity-determining loop (SDL) are critical in molecular recognition and regulation. Also, the network analysis reveals that residues from the nearby allosteric site (site II) connect to the primary RGD-binding site via SDL, which likely acts as an interface between the two sites. Our results provide valuable insights into molecular interactions, structural changes, distinct features of the active and inactive headpiece conformations, the role of SDL in ligand recognition, and SDL-mediated allostery. Thus, the insights from this study may facilitate the designing of pure antagonists or site II-mediated allosteric modulators to integrin αVβ3 to treat various diseases.

摘要

整合素αVβ3是细胞表面受体“RGD识别”整合素家族的重要成员。αVβ3可与多种细胞外基质(ECM)蛋白和氧化甾醇(如25-羟基胆固醇)结合,与包括癌症转移、肺纤维化、炎症和自身免疫性疾病在内的多种疾病有关,是一个有价值的治疗靶点。尽管人们付出了巨大努力来寻找一种纯拮抗剂,但由于相关的部分激动作用和毒性问题,迄今为止,还没有一种候选药物成功进入临床。开发有效且安全的抑制剂需要深入了解与受体激活和抑制机制相关的分子相互作用和结构变化。本研究基于整合素αVβ3在未结合配体、激动剂、拮抗剂和抗体结合状态下的所有可用实验结构,对配体结合β-螺旋桨βI结构域(头部)进行了全面的残基-残基接触和网络分析。分析揭示了许多以前未报道的关键相互作用,并表明来自特异性决定环(SDL)的残基的特定取向和相互作用在分子识别和调节中至关重要。此外,网络分析表明,来自附近变构位点(位点II)的残基通过SDL连接到主要的RGD结合位点,SDL可能作为这两个位点之间的界面。我们的结果为分子相互作用、结构变化、活性和非活性头部构象的独特特征、SDL在配体识别中的作用以及SDL介导的变构作用提供了有价值的见解。因此,本研究的见解可能有助于设计针对整合素αVβ3的纯拮抗剂或位点II介导的变构调节剂,以治疗各种疾病。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c27b/11463590/f590305f4ae7/nihpp-2024.09.23.614545v1-f0001.jpg

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