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Data-Driven Modeling Identifies TIRAP-Independent MyD88 Activation Complex and Myddosome Assembly Strategy in LPS/TLR4 Signaling

机译:数据驱动的建模可识别LPS / TLR4信号中独立于TIRAP的MyD88激活复合物和Myddosome组装策略

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摘要

TLR4 complexes are essential for the initiation of the LPS-induced innate immune response. The Myddosome, which mainly contains TLR4, TIRAP, MyD88, IRAK1/4 and TRAF6 proteins, is regarded as a major complex of TLR4. Although the Myddosome has been well studied, a quantitative description of the Myddosome assembly dynamics is still lacking. Furthermore, whether some unknown TLR4 complexes exist remains unclear. In this study, we constructed a SWATH-MS data-based mathematical model that describes the component assembly dynamics of TLR4 complexes. In addition to Myddosome, we suggest that a TIRAP-independent MyD88 activation complex is formed upon LPS stimulation, in which TRAF6 is not included. Furthermore, quantitative analysis reveals that the distribution of components in TIRAP-dependent and -independent MyD88 activation complexes are LPS stimulation-dependent. The two complexes compete for recruiting IRAK1/4 proteins. MyD88 forms higher-order assembly in the Myddosome and we show that the strategy to form higher-order assembly is also LPS stimulation-dependent. MyD88 forms a long chain upon weak stimulation, but forms a short chain upon strong stimulation. Higher-order assembly of MyD88 is directly determined by the level of TIRAP in the Myddosome, providing a formation mechanism for efficient signaling transduction. Taken together, our study provides an enhanced understanding of component assembly dynamics and strategies in TLR4 complexes.
机译:TLR4复合物对于启动LPS诱导的先天性免疫反应至关重要。 Myddosome主要包含TLR4,TIRAP,MyD88,IRAK1 / 4和TRAF6蛋白,被认为是TLR4的主要复合体。尽管对Myddosome进行了深入研究,但仍缺乏对Myddosome装配动力学的定量描述。此外,尚不清楚是否存在一些未知的TLR4复合物。在这项研究中,我们构建了一个基于SWATH-MS数据的数学模型,该模型描述了TLR4配合物的组件组装动力学。除了Myddosome,我们建议在LPS刺激下形成不依赖TIRAP的MyD88激活复合物,其中不包括TRAF6。此外,定量分析表明,在依赖TIRAP和不依赖于MyD88的激活复合物中,组分的分布是依赖LPS刺激的。两种复合物竞争招募IRAK1 / 4蛋白。 MyD88在Myddosome中形成高阶装配,我们证明了形成高阶装配的策略也是LPS刺激依赖性的。 MyD88在弱刺激下形成长链,但在强刺激下形成短链。 MyD88的高阶装配直接由Myddosome中TIRAP的水平决定,为有效的信号转导提供了形成机制。两者合计,我们的研究提供了对TLR4配合物中组件装配动力学和策略的加深理解。

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