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触发受体表达分子2(TREM2)的细胞外结构域具有两个不同的配体识别位点:机器学习引导对接和全原子分子动力学模拟的见解

Extracellular domain of TREM2 possess two distinct ligand recognition sites: Insights from machine-learning guided docking and all-atoms molecular dynamics simulations.

作者信息

Mishra Sarbani, Swain Preety Sthutika, Pati Sanghamitra, Dehury Budheswar

机构信息

ICMR-regional Medical Research Centre, Nalco Square, Chandrasekharpur, Bhubaneswar, 751023, Odisha, India.

Department of Bioinformatics, Manipal School of Life Sciences, Manipal Academy of Higher Education, Manipal, India.

出版信息

Heliyon. 2024 Dec 20;11(1):e41414. doi: 10.1016/j.heliyon.2024.e41414. eCollection 2025 Jan 15.

Abstract

The myeloid-specific triggering receptors expressed on myeloid cells 2 (TREM2) is a group of class I receptors expressed in brain microglia plays a decisive role in neurodegenerative diseases such as Alzheimer's disease (AD) and Nasu Hakola disease (NHD). The extracellular domain (ECD) of TREM2 interacts with a wide-range of ligands, yet the molecular mechanism underlying recognition of such ligands to this class I receptor remains underexplored. Herein, we undertook a systematic investigation for exploring the mode of ligand recognition in immunoglobulin-like ectodomain by employing both knowledge-based and machine-learning guided molecular docking approach followed by the state-of-the-art all atoms molecular dynamics (MD) simulations. Besides the known binding site formed by complementarity-determining regions (CDR) 1 and CDR2 loops, which enables the binding of different anionic ligands, our study identifies the presence of second binding site formed by β-strands towards the C-terminal end. We observe a dense network of hydrophobic contacts formed between the explored ligands and CDR loops and β-strands, specifically CDR1, CDR2, β-strand C', loop connecting β-strand D and E, and loop connecting β-strand E and F. Ligand binding in immunoglobulin-like ectodomain increases the conformational flexibility of CDR2 loop, thus most frequently observed pathogenic variants i.e. R47H and R62H in TREM2 may affect the development and progression of AD. Our knowledge-based and machine-learning guided docking and physics-based simulations study unveils deep insights into the endogenous ligand recognition by the positive surface ligand binding site and distant core site pave the way for exploration of other small molecules towards development of novel therapeutics against Alzheimer's disease.

摘要

髓系细胞2(TREM2)上表达的髓系特异性触发受体是一类在脑小胶质细胞中表达的I类受体,在阿尔茨海默病(AD)和那须–哈科拉病(NHD)等神经退行性疾病中起决定性作用。TREM2的细胞外结构域(ECD)与多种配体相互作用,然而,这类I类受体识别此类配体的分子机制仍未得到充分探索。在此,我们采用基于知识和机器学习引导的分子对接方法,随后进行最先进的全原子分子动力学(MD)模拟,对免疫球蛋白样胞外结构域中配体识别模式进行了系统研究。除了由互补决定区(CDR)1和CDR2环形成的已知结合位点,该位点能够结合不同的阴离子配体外,我们的研究还确定了在靠近C端的β链形成了第二个结合位点。我们观察到在探索的配体与CDR环和β链之间形成了密集的疏水接触网络,特别是CDR1、CDR2、β链C'、连接β链D和E的环以及连接β链E和F的环。免疫球蛋白样胞外结构域中的配体结合增加了CDR2环的构象灵活性,因此TREM2中最常观察到的致病变异体即R47H和R62H可能会影响AD的发展和进程。我们基于知识和机器学习引导的对接以及基于物理的模拟研究揭示了对阳性表面配体结合位点和远处核心位点内源性配体识别的深刻见解,为探索其他小分子以开发针对阿尔茨海默病的新型疗法铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fc55/11759634/ef3c8401e24d/ga1.jpg

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