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Homotropic Cooperativity from the Activation Pathway of the Allosteric Ligand-Responsive Regulatory Protein TRAP

机译:从变构配体响应调节蛋白TRAP的激活途径的同型合作性。

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摘要

The trp RNA-binding Attenuation Protein (TRAP) assembles into an 11-fold symmetric ring that regulates transcription and translation of trp-mRNA in bacilli via heterotropic allosteric activation by the amino acid tryptophan (Trp). Whereas nuclear magnetic resonance studies have revealed that Trp-induced activation coincides with both μs-ms rigidification and local structural changes in TRAP, the pathway of binding of the 11 Trp ligands to the TRAP ring remains unclear. Moreover, because each of eleven bound Trp molecules is completely surrounded by protein, its release requires flexibility of Trp-bound (holo) TRAP. Here, we used stopped-flow fluorescence to study the kinetics of Trp binding by Bacillus stearothermophilus TRAP over a range of temperatures and we observed well-separated kinetic steps. These data were analyzed using non-linear least-squares fitting of several two- and three-step models. We found that a model with two binding steps best describes the data, although the structural equivalence of the binding sites in TRAP implies a fundamental change in the time-dependent structure of the TRAP rings upon Trp binding. Application of the two binding step model reveals that Trp binding is much slower than the diffusion limit, suggesting a gating mechanism that depends on the dynamics of apo TRAP. These data also reveal that Trp dissociation from the second binding mode is much slower than after the first Trp binding mode, revealing insight into the mechanism for positive homotropic allostery, or cooperativity. Temperature dependent analyses reveal that both binding modes imbue increases in bondedness and order toward a more compressed active state. These results provide insight into mechanisms of cooperative TRAP activation, and underscore the importance of protein dynamics for ligand binding, ligand release, protein activation, and allostery.
机译:trp RNA结合衰减蛋白(TRAP)组装成11倍的对称环,该环通过氨基酸色氨酸(Trp)的异构变构活化来调节杆菌中trp-mRNA的转录和翻译。尽管核磁共振研究表明Trp诱导的激活与TRAP的μs-ms刚度和局部结构变化同时发生,但11种Trp配体与TRAP环的结合途径仍不清楚。此外,由于十一个结合的Trp分子中的每一个都被蛋白质完全包围,因此其释放需要Trp结合(全)TRAP的柔韧性。在这里,我们使用了停止流动的荧光来研究嗜热脂肪芽孢杆菌TRAP在一定温度范围内与Trp结合的动力学,并观察到了分离良好的动力学步骤。使用几个两步和三步模型的非线性最小二乘拟合分析了这些数据。我们发现具有两个结合步骤的模型最能描述数据,尽管TRAP中结合位点的结构等效性暗示Trp结合时TRAP环的时间依赖性结构发生了根本变化。两个结合步骤模型的应用表明,Trp结合要比扩散极限慢得多,这表明取决于apo TRAP动力学的门控机制。这些数据还表明,与第二种结合模式相比,Trp的解离要慢于第一种结合模式之后的Trp解离,这揭示了对正同向变构或协同作用机理的见解。与温度有关的分析表明,两种结合模式均会导致结合力和顺序朝着更压缩的活性状态增加。这些结果为合作TRAP激活的机制提供了见识,并强调了蛋白质动力学对配体结合,配体释放,蛋白质激活和变构作用的重要性。

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