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作为GTP合酶的配体-受体-G蛋白三元复合物。β-肾上腺素能受体的稳态质子泵浦及剂量反应关系。

The ligand-receptor-G-protein ternary complex as a GTP-synthase. steady-state proton pumping and dose-response relationships for beta -adrenoceptors.

作者信息

Broadley K J, Nederkoorn P H, Timmerman H, Timms D, Davies R H

机构信息

Welsh School of Pharmacy, University of Wales at Cardiff, Redwood Building, King Edward VII Avenue, Cardiff, CF1 3XF, U.K.

出版信息

J Theor Biol. 2000 Jul 21;205(2):297-320. doi: 10.1006/jtbi.2000.2067.

Abstract

Steady-state solutions are developed for the rate of G alpha.GTP production in a synthase model of the ligand-receptor-G-protein ternary complex activated by a ligand-receptor proton pumping mechanism. The effective rate, k(31), defining the proton transfer, phosphorylation and G alpha.GTP release is a controlling rate of the synthase in the presence of a ligand with an efficient mode of signal activation, the ligand-receptor interaction taking place under effectively equilibrium conditions. The composite rate, however, becomes an amplifying factor in any dose-response relationship. The amplification is a triple product of the rate, k(31), the equilibrium constant associated with the activation of the proton signal, K(act)and the fraction of agonist conformer transmitting the signal, f(). Where the rate of activation of the proton signal becomes critically inefficient, the rate of activation, k(act 1)replaces k(31)K(act). A correlation between beta(1)-adrenergic receptor-stimulated GDP release and adenylate cyclase activation shows that this correlation is not unique to an exchange reaction. Within the initiating Tyr-Arg-Tyr receptor proton shuttle mechanism, the position of Arg(r156) paralleldictates the high-(R(p)) and low-(R(u)) ligand-binding affinities. These states are close to R()and R(0)of the equilibrium model (De Lean et al., 1980, J. Biol. Chem.255, 7108-7117). An increased rate of hydrogen ion diffusion into a receptor mutant can give rise to constitutive activity while increased rates of G-protein release and changes in receptor state balance can contribute to the resultant level of action. Constitutive action will arise from a faster rate of G-protein release alone if proton diffusion in the wild-type receptor contributes to a basal level of G-protein activation. Competitive ligand-receptor occupancy for constitutive mutants shows that, where the rate of G-protein activation from the proportion of ligand-occupied receptors is less than the equivalent rate that would be generated from this fraction by proton diffusion, inverse agonism will occur. Rate-dependent dose-responses developed for the proposed synthase mechanism give explicit definition to the operational model for partial agonism (Black & Leff, 1983, Proc. Roy. Soc. Lond. B220, 141-162). When comparable ligands have effectively identical conformational states at the transition state for signal activation, the antagonist component of the binding "in vitro" can be derived by multiplying the apparent binding constant by (1-e) where e is the maximum stimulatory response. This component should be consistent throughout the tissues.

摘要

针对由配体 - 受体质子泵浦机制激活的配体 - 受体 - G蛋白三元复合物的合成酶模型,推导了Gα·GTP生成速率的稳态解。定义质子转移、磷酸化和Gα·GTP释放的有效速率k(31),在存在具有高效信号激活模式的配体时,是合成酶的控制速率,配体 - 受体相互作用在有效平衡条件下发生。然而,复合速率在任何剂量 - 反应关系中都成为一个放大因子。放大是速率k(31)、与质子信号激活相关的平衡常数K(act)以及传递信号的激动剂构象体分数f()的三重乘积。当质子信号的激活速率变得极其低效时,激活速率k(act 1)取代k(31)K(act)。β1 - 肾上腺素能受体刺激的GDP释放与腺苷酸环化酶激活之间的相关性表明,这种相关性并非交换反应所特有。在起始的Tyr - Arg - Tyr受体质子穿梭机制中,Arg(r156)的位置平行决定了高(R(p))和低(R(u))配体结合亲和力。这些状态接近平衡模型的R()和R(0)(De Lean等人,1980年,《生物化学杂志》255,7108 - 7117)。氢离子扩散到受体突变体中的速率增加可导致组成性活性,而G蛋白释放速率的增加和受体状态平衡的变化可导致最终的作用水平。如果野生型受体中的质子扩散有助于G蛋白激活的基础水平,那么仅G蛋白释放速率加快就会产生组成性作用。组成性突变体的竞争性配体 - 受体占据情况表明,当来自被配体占据的受体比例的G蛋白激活速率小于质子扩散从该比例产生的等效速率时,就会发生反向激动作用。为所提出的合成酶机制建立的速率依赖性剂量 - 反应明确了部分激动作用的操作模型(Black和Leff,1983年,《伦敦皇家学会学报》B220,141 - 162)。当可比配体在信号激活的过渡态具有有效相同的构象状态时,“体外”结合的拮抗剂成分可通过将表观结合常数乘以(1 - e)来推导,其中e是最大刺激反应。该成分在所有组织中应是一致的。

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