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Modeling and Experimental Analyses Reveals Signaling Plasticity in a Bi-Modular Assembly of CD40 Receptor Activated Kinases

机译:建模和实验分析揭示了CD40受体激活的激酶的双模块组装中的信号可塑性。

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摘要

Depending on the strength of signal dose, CD40 receptor (CD40) controls ERK-1/2 and p38MAPK activation. At low signal dose, ERK-1/2 is maximally phosphorylated but p38MAPK is minimally phosphorylated; as the signal dose increases, ERK-1/2 phosphorylation is reduced whereas p38MAPK phosphorylation is reciprocally enhanced. The mechanism of reciprocal activation of these two MAPKs remains un-elucidated. Here, our computational model, coupled to experimental perturbations, shows that the observed reciprocity is a system-level behavior of an assembly of kinases arranged in two modules. Experimental perturbations with kinase inhibitors suggest that a minimum of two trans-modular negative feedback loops are required to reproduce the experimentally observed reciprocity. The bi-modular architecture of the signaling pathways endows the system with an inherent plasticity which is further expressed in the skewing of the CD40-induced productions of IL-10 and IL-12, the respective anti-inflammatory and pro-inflammatory cytokines. Targeting the plasticity of CD40 signaling significantly reduces Leishmania major infection in a susceptible mouse strain. Thus, for the first time, using CD40 signaling as a model, we show how a bi-modular assembly of kinases imposes reciprocity to a receptor signaling. The findings unravel that the signalling plasticity is inherent to a reciprocal system and that the principle can be used for designing a therapy.
机译:根据信号剂量的强度,CD40受体(CD40)控制ERK-1 / 2和p38MAPK激活。在低信号剂量下,ERK-1 / 2的磷酸化程度最高,而p38MAPK的磷酸化程度最低。随着信号剂量的增加,ERK-1 / 2磷酸化降低,而p38MAPK磷酸化则相互增强。这两个MAPK相互激活的机制仍未阐明。在这里,我们的计算模型,加上实验扰动,表明观察到的互惠性是安排在两个模块中的激酶集合的系统级行为。用激酶抑制剂进行的实验扰动表明,至少需要两个跨模块负反馈回路才能重现实验观察到的互惠性。信号通路的双模块结构使系统具有固有的可塑性,这在CD40诱导的IL-10和IL-12(分别为抗炎和促炎性细胞因子)产生的产物的偏斜中进一步表达。靶向CD40信号传导的可塑性可显着减少易感小鼠品系中的利什曼原虫重大感染。因此,首次使用CD40信号传导作为模型,我们展示了激酶的双模块组装如何对受体信号传导施加互惠性。该发现揭示了信号可塑性是对等系统固有的,并且该原理可用于设计疗法。

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