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Modeling domain formation of MARCKS and protein kinase C at cellular membranes

机译:在细胞膜上模拟MARCKS和蛋白激酶C的结构域形成

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Background Phosphorylation and dephosphorylation of proteins are mechanisms of activation and deactivation which regulate many cellular processes. Both mechanisms have been usually described in well mixed environments. MARCKS is a protein which binds to the membrane by electrostatic interaction. It is translocated from the membrane and phosphorylated by Protein Kinase C. Back in the cytoplasm the translocated MARCKS proteins are dephosphorylated by the enzyme phosphatase and can reattach to the membrane. These three processes (membrane binding, translocation, dephosphorylation) give rise to a cyclic dynamics known as the myristoyl-electrostatic switch. Methods We employ a reaction-diffusion model for the concentrations of MARCKS and PKC in the cell in a circular domain. Results Herein, we start from a reaction-diffusion model taking into account mass conservation of the MARCKS proteins. Then, we extend the model by including the dynamics of binding and unbinding of PKC enzymes, which are in turn activated by spikes of calcium. Furthermore, we show that the model fits previous experimental results well and predicts, in addition, the formation of domains with high concentration of MARCKS proteins at the membrane. Conclusions We have developed a simple model of binding, phosphorylation and desphosphorylation for MARCKS protein. The main prediction emerging from numerical simulations of the model is the spontaneous appearance of domains of high concentration of membrane proteins.
机译:背景技术蛋白质的磷酸化和去磷酸化是调节许多细胞过程的活化和失活机制。通常在充分混合的环境中描述了这两种机制。 MARCKS是一种通过静电相互作用与膜结合的蛋白质。它从膜上移位,并被蛋白激酶C磷酸化。回到细胞质中的移位后的MARCKS蛋白被磷酸酶脱磷酸,并可以重新附着在膜上。这三个过程(膜结合,易位,去磷酸化)产生了一种被称为肉豆蔻酰基静电开关的循环动力学。方法我们采用反应扩散模型计算圆形域中细胞中MARCKS和PKC的浓度。结果在此,我们从反应扩散模型开始,考虑了MARCKS蛋白的质量守恒。然后,我们通过包括PKC酶的结合和未结合动力学来扩展模型,而PKC酶又被钙的尖峰激活。此外,我们显示该模型非常适合先前的实验结果,并预测膜上具有高浓度MARCKS蛋白的域的形成。结论我们已经建立了一个简单的模型,用于MARCKS蛋白的结合,磷酸化和去磷酸化。从模型的数值模拟得出的主要预测是高浓度膜蛋白域的自发出现。

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