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首页> 外文期刊>Scientific reports. >Structure-Activity Relationship in TLR4 Mutations: Atomistic Molecular Dynamics Simulations and Residue Interaction Network Analysis
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Structure-Activity Relationship in TLR4 Mutations: Atomistic Molecular Dynamics Simulations and Residue Interaction Network Analysis

机译:TLR4突变中的结构 - 活性关系:原子分子动力学模拟和残留互动网络分析

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摘要

Toll-like receptor 4 (TLR4), a vital innate immune receptor present on cell surfaces, initiates a signaling cascade during danger and bacterial intrusion. TLR4 needs to form a stable hexamer complex, which is necessary to dimerize the cytoplasmic domain. However, D299G and T399I polymorphism may abrogate the stability of the complex, leading to compromised TLR4 signaling. Crystallography provides valuable insights into the structural aspects of the TLR4 ectodomain; however, the dynamic behavior of polymorphic TLR4 is still unclear. Here, we employed molecular dynamics simulations (MDS), as well as principal component and residue network analyses, to decipher the structural aspects and signaling propagation associated with mutations in TLR4. The mutated complexes were less cohesive, displayed local and global variation in the secondary structure, and anomalous decay in rotational correlation function. Principal component analysis indicated that the mutated complexes also exhibited distinct low-frequency motions, which may be correlated to the differential behaviors of these TLR4 variants. Moreover, residue interaction networks (RIN) revealed that the mutated TLR4/myeloid differentiation factor (MD) 2 complex may perpetuate abnormal signaling pathways. Cumulatively, the MDS and RIN analyses elucidated the mutant-specific conformational alterations, which may help in deciphering the mechanism of loss-of-function mutations.
机译:Toll样受体4(TLR4)是在细胞表面上存在的重要内生先天免疫受体,在危险和细菌侵入期间起始信号传导级联。 TLR4需要形成稳定的六聚体复合物,这是指细胞质结构域的必要条件。然而,D299G和T399I多态性可以消除复合物的稳定性,导致TLR4信号传导受损。晶体学提供有价值的见解,进入TLR4突突的结构方面;然而,多态TLR4的动态行为尚不清楚。这里,我们使用分子动力学模拟(MDS),以及主成分和残留网络分析,以破译与TLR4中的突变相关的结构方面和信号传播。突变的复合物较少,均匀地显示局部和全局变化,旋转相关函数中的异常衰变。主成分分析表明,突变的复合物还表现出不同的低频运动,这可以与这些TLR4变体的差异行为相关。此外,残留物相互作用网络(RIN)显示突变的TLR4 /髓鞘分化因子(MD)2复合物可以使信号传导途径永久性。累积地,MDS和RIN分析阐明了突变特异性构象改变,这可能有助于破译功能丧失突变的机制。

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