Mahita Jarjapu, Sowdhamini Ramanathan
National Centre for Biological Sciences, GKVK Campus, Bellary Road, Bangalore, 560065, India.
Proteins. 2018 Apr;86(4):475-490. doi: 10.1002/prot.25467. Epub 2018 Feb 9.
The Toll-like receptors (TLRs) are critical components of the innate immune system due to their ability to detect conserved pathogen-associated molecular patterns, present in bacteria, viruses, and other microorganisms. Ligand detection by TLRs leads to a signaling cascade, mediated by interactions among TIR domains present in the receptors, the bridging adaptors and sorting adaptors. The BB loop is a highly conserved region present in the TIR domain and is crucial for mediating interactions among TIR domain-containing proteins. Mutations in the BB loop of the Toll-like receptors, such as the A795P mutation in TLR3 and the P712H mutation (Lps mutation) in TLR4, have been reported to disrupt or alter downstream signaling. While the phenotypic effect of these mutations is known, the underlying effect of these mutations on the structure, dynamics and interactions with other TIR domain-containing proteins is not well understood. Here, we have attempted to investigate the effect of the BB loop mutations on the dimer form of TLRs, using TLR2 and TLR3 as case studies. Our results based on molecular dynamics simulations, protein-protein interaction analyses and protein structure network analyses highlight significant differences between the dimer interfaces of the wild-type and mutant forms and provide a logical reasoning for the effect of these mutations on adaptor binding to TLRs. Furthermore, it also leads us to propose a hypothesis for the differential requirement of signaling and bridging adaptors by TLRs. This could aid in further understanding of the mechanisms governing such signaling pathways.
Toll样受体(TLRs)是天然免疫系统的关键组成部分,因为它们能够检测存在于细菌、病毒和其他微生物中的保守病原体相关分子模式。TLRs检测配体后会引发信号级联反应,该反应由受体、衔接子和分选衔接子中存在的TIR结构域之间的相互作用介导。BB环是TIR结构域中一个高度保守的区域,对于介导含TIR结构域的蛋白质之间的相互作用至关重要。据报道,Toll样受体BB环中的突变,如TLR3中的A795P突变和TLR4中的P712H突变(Lps突变),会破坏或改变下游信号传导。虽然这些突变的表型效应是已知的,但这些突变对结构、动力学以及与其他含TIR结构域的蛋白质相互作用的潜在影响尚不清楚。在这里,我们以TLR2和TLR3为例,试图研究BB环突变对TLRs二聚体形式的影响。我们基于分子动力学模拟、蛋白质-蛋白质相互作用分析和蛋白质结构网络分析的结果突出了野生型和突变型二聚体界面之间的显著差异,并为这些突变对衔接子与TLRs结合的影响提供了合理的解释。此外,这也使我们提出了一个关于TLRs对信号传导和衔接子不同需求的假设。这有助于进一步理解控制此类信号通路的机制。