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Computational Insight Into the Structural Organization of Full-Length Toll-Like Receptor 4 Dimer in a Model Phospholipid Bilayer

机译:计算洞察力模型磷脂双层中全长收费象受体4二聚体的结构组织。

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摘要

Toll-like receptors (TLRs) are a unique category of pattern recognition receptors that recognize distinct pathogenic components, often utilizing the same set of downstream adaptors. Specific molecular features of extracellular, transmembrane (TM), and cytoplasmic domains of TLRs are crucial for coordinating the complex, innate immune signaling pathway. Here, we constructed a full-length structural model of TLR4—a widely studied member of the interleukin-1 receptor/TLR superfamily—using homology modeling, protein–protein docking, and molecular dynamics simulations to understand the differential domain organization of TLR4 in a membrane-aqueous environment. Results showed that each functional domain of the membrane-bound TLR4 displayed several structural transitions that are biophysically essential for plasma membrane integration. Specifically, the extracellular and cytoplasmic domains were partially immersed in the upper and lower leaflets of the membrane bilayer. Meanwhile, TM domains tilted considerably to overcome the hydrophobic mismatch with the bilayer core. Our analysis indicates an alternate dimerization or a potential oligomerization interface of TLR4-TM. Moreover, the helical properties of an isolated TM dimer partly agree with that of the full-length receptor. Furthermore, membrane-absorbed or solvent-exposed surfaces of the toll/interleukin-1 receptor domain are consistent with previous X-ray crystallography and biochemical studies. Collectively, we provided a complete structural model of membrane-bound TLR4 that strengthens our current understanding of the complex mechanism of receptor activation and adaptor recruitment in the innate immune signaling pathway.
机译:Toll样受体(TLR)是模式识别受体的独特类别,可识别不同的致病成分,通常利用同一组下游适配器。 TLR的胞外,跨膜(TM)和胞质域的特定分子特征对于协调复杂的先天免疫信号通路至关重要。在这里,我们使用同源性建模,蛋白质-蛋白质对接和分子动力学模拟来构建TLR4的全长结构模型(白介素1受体/ TLR超家族的一个被广泛研究的成员),以了解TLR4在细胞中的差异域组织。膜水环境。结果表明,与膜结合的TLR4的每个功能域都显示出几个结构转变,这是质膜整合在生物学上必不可少的。具体而言,将胞外和胞质结构域部分浸没在膜双层的上部和下部小叶中。同时,TM结构域明显倾斜以克服与双层核心的疏水性错配。我们的分析表明了TLR4-TM的另一种二聚化或潜在的低聚界面。此外,分离的TM二聚体的螺旋性质部分与全长受体的螺旋性质一致。此外,收费/白介素-1受体域的膜吸收或溶剂暴露的表面与以前的X射线晶体学和生化研究一致。总的来说,我们提供了膜结合的TLR4的完整结构模型,从而加强了我们对先天免疫信号通路中受体激活和衔接子募集的复杂机制的当前了解。

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