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Allosteric pluripotency as revealed by protein kinase A

机译:蛋白激酶A揭示的颠覆多能性

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The functional response of a signaling system to an allosteric stimulus often depends on subcellular conditions, a phenomenon known as pluripotent allostery. For example, a single allosteric modulator, Rp-cAMPS, of the prototypical protein kinase A (PKA) switches from antagonist to agonist depending on MgATP levels. However, the mechanism underlying such pluripotent allostery has remained elusive for decades. Using nuclear magnetic resonance spectroscopy, ensemble models, kinase assays, and molecular dynamics simulations, we show that allosteric pluripotency arises from surprisingly divergent responses of highly homologous tandem domains. The differential responses perturb domain-domain interactions and remodel the free-energy landscape of inhibitory excited states sampled by the regulatory subunit of PKA. The resulting activation threshold values are comparable to the effective free energy of regulatory and catalytic subunit binding, which depends on metabolites, substrates, and mutations, explaining pluripotent allostery and warranting a general redefinition of allosteric targets to include specific subcellular environments.
机译:信号系统对变构刺激的功能响应通常取决于亚细胞条件,该现象称为多能簇生。例如,根据MgATP水平,从拮抗剂到激动剂的原型蛋白激酶A(PKA)的单个变构调制器A(PKA)切换。然而,这些多能七星世体的潜在机制已经难以困惑。使用核磁共振光谱法,集合模型,激酶测定和分子动力学模拟,我们表明颠覆多能程度从高度同源串联域的令人惊讶的伴随反应中出现。差异响应扰动域域相互作用并改造PKA调节亚基采样的抑制激发态的自由能景观。得到的激活阈值与调节和催化亚基结合的有效自由能相当,这取决于代谢物,底物和突变,解释多能构象生,并保证一般重新定义颠覆靶标以包括特定的亚细胞环境。

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