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Crystal Structure of Tryptophanyl-tRNA Synthetase Complexed with Adenosine-5′ Tetraphosphate: Evidence for Distributed Use of Catalytic Binding Energy in Amino Acid Activation by Class I Aminoacyl-tRNA Synthetases

机译:色氨酸-tRNA合成酶与腺苷5四磷酸复合的晶体结构:催化结合能在通过I类氨酰基-tRNA合成氨基酸激活中的分布式使用的证据。

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摘要

Tryptophanyl-tRNA synthetase (TrpRS) is a functionally dimeric ligase, which specifically couples hydrolysis of ATP to AMP and pyrophosphate to the formation of an ester bond between tryptophan and the cognate tRNA. TrpRS from Bacillus stearothermophilus binds the ATP analogue, adenosine-5′ tetraphosphate, AQP, competitively with ATP during pyrophosphate exchange. Estimates of binding affinity from this competitive inhibition and from isothermal titration calorimetry show that AQP binds 200 times more tightly than ATP both under conditions of induced-fit, where binding is coupled to an unfavourable conformational change, and under exchange conditions, where there is no conformational change. These binding data provide an indirect experimental measurement of +3.0 kcal/mole for the conformational free energy change associated with induced-fit assembly of the active site. Thermodynamic parameters derived from the calorimetry reveal very modest enthalpic changes, consistent with binding driven largely by a favorable entropy change. The 2.5 Å structure of the TrpRS:AQP complex, determined de novo by X-ray crystallography, resembles that of the previously described, pre-transition state TrpRS:ATP complexes. The anticodon-binding domain untwists relative to the Rossmann-fold domain by 20% of the way toward the orientation observed for the Products complex. An unexpected tetraphosphate conformation allows the γ̃ and δ̃ phosphate groups to occupy positions equivalent to those occupied by the β̃ and γ̃ phosphates of ATP. The β-phosphate effects a 1.11 Å extension that relocates the α-phosphate toward the tryptophan carboxylate while the PPi mimic moves deeper into the KMSKS loop. This configuration improves interactions between enzyme and nucleotide significantly and uniformly in the adenosine and PPi binding subsites. A new hydrogen bond forms between S194 from the class I KMSKS signature sequence and the PPi mimic. These complementary thermodynamic and structural data are all consistent with the conclusion that the tetraphosphate mimics a transition-state in which the KMSKS loop develops increasingly tight bonds to the PPi leaving group, weakening linkage to the Pα as it is relocated by an energetically favourable domain movement. Consistent with extensive mutational data on Tyrosyl-tRNA synthetase, this aspect of the mechanism develops high transition-state affinity for the adenosine and pyrophosphate moieties, which move significantly, relative to one another, during the catalytic step.
机译:色氨酸tRNA合成酶(TrpRS)是一种功能性二聚体连接酶,可特异性地将ATP水解为AMP和焦磷酸,从而在色氨酸和相关的tRNA之间形成酯键。嗜热脂肪芽孢杆菌的TrpRS在焦磷酸盐交换过程中与ATP竞争性地与ATP类似物腺苷5'四磷酸腺苷AQP结合。这种竞争性抑制作用和等温滴定热法对结合亲和力的估计表明,在诱导契合条件下(结合与不良构象变化耦合)和交换条件下(在无结合条件下),AQP的结合力都比ATP高200倍。构象变化。这些结合数据为与活动位点的感应装配相关的构象自由能变化提供了+3.0 kcal / mol的间接实验测量。从量热法得出的热力学参数显示出非常适度的焓变,这与主要由有利的熵变驱动的结合相一致。由X射线晶体学从头确定的TrpRS:AQP络合物的2.5Å结构类似于先前描述的过渡前状态TrpRS:ATP络合物的结构。反密码子结合结构域相对于Rossmann-fold结构域解旋的方向接近Products复合物所观察到的方向的20%。意外的四磷酸构象允许 γ ̃ δ ̃ 磷酸基团所占据的位置与 < mi>β ̃ γ ̃ ATP的磷酸盐。 β-磷酸盐的作用是1.11Å的延伸,使PP-i模拟物更深地进入KMSKS环,从而使α-磷酸盐重新定位于色氨酸羧酸盐。该构型显着且均匀地改善了腺苷和PPi结合亚位点中酶与核苷酸之间的相互作用。 I类KMSKS签名序列的S194与PPi模拟物之间形成新的氢键。这些互补的热力学和结构数据均与以下结论一致:四磷酸酯模拟过渡态,其中KMSKS环与PPi离开基团形成越来越紧密的键,从而削弱了与Pα的键合,因为它通过能量有利的畴运动而重新定位。与有关酪氨酰-tRNA合成酶的大量突变数据一致,该机制的这一方面对腺苷和焦磷酸部分产生了较高的过渡态亲和力,它们在催化步骤中相对于彼此发生显着移动。

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