首页> 美国卫生研究院文献>Frontiers in Physiology >Research Topic: From structural to molecular systems biology: experimental and computational approaches to unravel mechanisms of kinase activity regulation in cancer and neurodegeneration: Crosstalk and Signaling Switches in Mitogen-Activated Protein Kinase Cascades
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Research Topic: From structural to molecular systems biology: experimental and computational approaches to unravel mechanisms of kinase activity regulation in cancer and neurodegeneration: Crosstalk and Signaling Switches in Mitogen-Activated Protein Kinase Cascades

机译:研究主题:从结构到分子系统生物学:揭示癌症和神经变性中激酶活性调节机制的实验和计算方法:丝裂原活化蛋白激酶级联反应中的串扰和信号转导

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摘要

Mitogen-activated protein kinase (MAPK) cascades control cell fate decisions, such as proliferation, differentiation, and apoptosis by integrating and processing intra- and extracellular cues. However, similar MAPK kinetic profiles can be associated with opposing cellular decisions depending on cell type, signal strength, and dynamics. This implies that signaling by each individual MAPK cascade has to be considered in the context of the entire MAPK network. Here, we develop a dynamic model of feedback and crosstalk for the three major MAPK cascades; extracellular signal-regulated kinase (ERK), p38 mitogen-activated protein kinase (p38), c-Jun N-terminal kinase (JNK), and also include input from protein kinase B (AKT) signaling. Focusing on the bistable activation characteristics of the JNK pathway, this model explains how pathway crosstalk harmonizes different MAPK responses resulting in pivotal cell fate decisions. We show that JNK can switch from a transient to sustained activity due to multiple positive feedback loops. Once activated, positive feedback locks JNK in a highly active state and promotes cell death. The switch is modulated by the ERK, p38, and AKT pathways. ERK activation enhances the dual specificity phosphatase (DUSP) mediated dephosphorylation of JNK and shifts the threshold of the apoptotic switch to higher inputs. Activation of p38 restores the threshold by inhibiting ERK activity via the PP1 or PP2A phosphatases. Finally, AKT activation inhibits the JNK positive feedback, thus abrogating the apoptotic switch and allowing only proliferative signaling. Our model facilitates understanding of how cancerous deregulations disturb MAPK signal processing and provides explanations for certain drug resistances. We highlight a critical role of DUSP1 and DUSP2 expression patterns in facilitating the switching of JNK activity and show how oncogene induced ERK hyperactivity prevents the normal apoptotic switch explaining the failure of certain drugs to induce apoptosis.
机译:丝裂原激活的蛋白激酶(MAPK)级联通过整合和处理细胞内和细胞外线索来控制细胞命运的决定,例如增殖,分化和凋亡。但是,取决于细胞类型,信号强度和动力学,相似的MAPK动力学特征可能与相反的细胞决定相关。这意味着必须在整个MAPK网络的上下文中考虑每个单独的MAPK级联发出的信号。在这里,我们为三个主要的MAPK级联建立了反馈和串扰的动态模型。细胞外信号调节激酶(ERK),p38丝裂原活化蛋白激酶(p38),c-Jun N端激酶(JNK),并且还包括来自蛋白激酶B(AKT)信号的输入。着眼于JNK通路的双稳态激活特性,该模型解释了通路串扰如何协调不同的MAPK反应,从而导致关键的细胞命运决定。我们显示,由于多个正反馈回路,JNK可以从瞬时活动切换为持续活动。激活后,正反馈会将JNK锁定在高度活跃的状态并促进细胞死亡。开关由ERK,p38和AKT途径调节。 ERK激活增强了JNK的双重特异性磷酸酶(DUSP)介导的去磷酸化作用,并将凋亡开关的阈值移至更高的输入。 p38的激活通过抑制PP1或PP2A磷酸酶的ERK活性来恢复阈值。最终,AKT激活抑制了JNK阳性反馈,从而消除了凋亡开关并仅允许增殖信号。我们的模型有助于理解癌症的异常调节如何干扰MAPK信号处理,并为某些耐药性提供解释。我们强调了DUSP1和DUSP2表达模式在促进JNK活性转换中的关键作用,并显示了癌基因诱导的ERK过度活跃如何阻止正常的细胞凋亡转换,从而解释了某些药物诱导凋亡的失败。

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