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首页> 外文期刊>Nucleic acids research >Basal Transcription Factors TBP and TFIIB and the Viral Coactivator E1A 13S Bind with Distinct Affinities and Kinetics to the Transactivation Domain of NF-κB p65
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Basal Transcription Factors TBP and TFIIB and the Viral Coactivator E1A 13S Bind with Distinct Affinities and Kinetics to the Transactivation Domain of NF-κB p65

机译:基础转录因子TBP,TFIBB和病毒共激活因子E1A 13S与NF-κBp65反式激活域具有不同的亲和力和动力学

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摘要

Transactivation domains (TADs) are able to contact several components of the basal transcription apparatus and co-activator molecules. In order to study these interactions in biophysical detail, binding of the well-characterized TAD from the human transcription factor NF-κB p65 (RelA) to the basal transcription factors TBP and TFIIB and the viral co-activator protein E1A 13S was chosen as a model system to investigate the kinetics and affinities of such protein-protein interactions by surface plasmon resonance analysis. The TAD of NF-κB p65 showed remarkably different affinities and kinetics in binding to the various proteins. The real-time kinetic measurements revealed an association rate constant (kass) of 2.3 × 106/M/s for the interaction between the p65 TAD and TBP. The association rate constants of the p65 TAD were much weaker for TFIIB (6.8 × 104/M/s) and for the E1A 13S protein (4.9 × 104/M/s). The dissociation rate constants (kdiss) were determined to be 7.9 × 10?4/s for TBP, 1.6 × 10?3/s for TFIIB and 1.3 × 10?3/s for the E1A protein. Accordingly, the calculated dissociation constants (Kd) differed between 3.4 × 10?10 M for the strongly binding TBP protein and 2.3 × 10?8 M and 2.6 × 10?8 M for the weaker binding TFIIB and E1A 13S proteins respectively. Non-linear analysis of the appropriate part of the sensorgrams revealed monophasic association and dissociation kinetics for binding between the p65 TAD and all three interaction partners. The remarkable differences in protein affinities add another aspect to a more detailed understanding of formation of the transcription preinitiation complex. The co-transfection of TBP and E1A 13S stimulated NF-κB p65-dependent gene expression, showing the biological significance of these interactions.
机译:反式激活结构域(TAD)能够接触基础转录装置和辅助激活剂分子的几个组成部分。为了详细研究这些相互作用,我们选择了特征明确的TAD与人转录因子NF-κBp65(RelA)与基础转录因子TBP和TFIIB以及病毒共激活蛋白E1A 13S的结合。模型系统通过表面等离振子共振分析研究此类蛋白质相互作用的动力学和亲和力。 NF-κBp65的TAD在与各种蛋白质结合时显示出明显不同的亲和力和动力学。实时动力学测量显示,p65 TAD与TBP相互作用的缔合速率常数(k ass )为2.3×10 6 / M / s。 p65 TAD的缔合速率常数对于TFIIB(6.8×10 4 / M / s)和E1A 13S蛋白(4.9×10 4 / M)弱得多。 / s)。对于TBP,解离速率常数(k diss )确定为7.9×10 ?4 /s,1.6×10 ?3 / s对于TFIIB而言,E1A蛋白为1.3×10 ?3 / s。因此,对于强结合的TBP蛋白,计算的解离常数(K d )在3.4×10 ?10 M和2.3×10 ?8 M和2.6×10 ?8 M分别用于弱结合的TFIIB和E1A 13S蛋白。传感图的适当部分的非线性分析显示了p65 TAD与所有三个相互作用伴侣之间结合的单相缔合和解离动力学。蛋白质亲和力的显着差异为更详细地了解转录预起始复合物的形成增加了另一个方面。 TBP和E1A 13S的共转染刺激了NF-κBp65依赖的基因表达,显示了这些相互作用的生物学意义。

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