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首页> 外文期刊>The Journal of biological chemistry >Thermodynamic Analysis of the CSL·Notch Interaction
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Thermodynamic Analysis of the CSL·Notch Interaction

机译:CSL·Notch互动的热力学分析

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The Notch signaling pathway is a cell-cell communication network giving rise to cell differentiation during metazoan development. Activation of the pathway releases the intracellular portion of the Notch receptor to translocate to the nucleus, where it is able to interact with the effector transcription factor CSL, converting CSL from a transcriptional repressor to an activator. This conversion is dependent upon the high affinity binding of the RAM region of the Notch receptor to the β-trefoil domain (BTD) of CSL. Here we probe the energetics of binding to BTD of each conserved residue of RAM through the use of isothermal titration calorimetry and single residue substitution. We find that although the highly conserved ΦWΦP motif is the largest determinant of binding, energetically significant interactions are contributed by N-terminal residues, including a conserved Arg/Lys-rich region. Additionally, we present a thermodynamic analysis of the interaction between the Epstein-Barr virus protein EBNA2 with BTD and explore the extent to which the EBNA2- and RAM-binding sites on BTD are nonoverlapping, as proposed by Fuchs et al. (Fuchs, K. P., Bommer, G., Dumont, E., Christoph, B., Vidal, M., Kremmer, E., and Kempkes, B. (2001) Eur. J. Biochem. 268, 4639–4646). Combining these results with displacement isothermal titration calorimetry, we propose a mechanism by which the ΦWΦP motif of RAM and EBNA2 compete with one another for binding at the hydrophobic pocket of BTD using overlapping but specific interactions that are unique to each BTD ligand.
机译:陷波信令路径是一种细胞 - 细胞通信网络,其在美化的开发期间引起细胞分化。途径的激活释放凹口受体的细胞内部分以将其易于核,其中能够与效应转录因子CSL相互作用,将CSL从转录压缩机转化为活化剂。该转化率取决于凹口受体的RAM区域的高亲和力结合到CSL的β-三轴域(BTD)。在这里,我们通过使用等温滴定热量和单残留物取代来探讨与RAM的每个保守残留物的结合的能量学。我们发现,尽管高度保守的φWΦP基序是最大的结合的决定因素,但是能量上显着的相互作用由N末端残基贡献,包括富含保守的Arg / Lys的区域。另外,我们具有BTD的Epstein-Barr病毒蛋白EBNA2与BTD之间的相互作用的热力学分析,并探讨了BTD上的EBNA2和Ram结合位点的程度,如Fuchs等人所提出的。 (Fuchs,Kp,Bommer,G.,Dumont,E.,Christoph,B.,Vidal,M.,Kremmer,E.和Kempkes,B。(2001)EUR。J. Biochem。268,4639-4646) 。将这些结果与位移等温滴定热量相结合,我们提出了一种机制,RAM和EBNA2的φWφP基序使用重叠但特异性相互作用在BTD的疏水袋中彼此结合而彼此匹配。

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