Ab'/> The allosteric site regulates the voltage sensitivity of muscarinic receptors
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The allosteric site regulates the voltage sensitivity of muscarinic receptors

机译:变构位点调节毒蕈碱受体的电压敏感性

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AbstractMuscarinic receptors (M-Rs) for acetylcholine (ACh) belong to the class A of G protein–coupled receptors. M-Rs are activated by orthosteric agonists that bind to a specific site buried in the M-R transmembrane helix bundle. In the active conformation, receptor function can be modulated either by allosteric modulators, which bind to the extracellular receptor surface or by the membrane potential via an unknown mechanism. Here, we compared the modulation of M1-Rs and M3-Rs induced by changes in voltage to their allosteric modulation by chemical compounds. We quantified changes in receptor signaling in single HEK 293 cells with a FRET biosensor for the Gqprotein cycle. In the presence of ACh, M1-R signaling was potentiated by voltage, similarly to positive allosteric modulation by benzyl quinolone carboxylic acid. Conversely, signaling of M3-R was attenuated by voltage or the negative allosteric modulator gallamine. Because the orthosteric site is highly conserved among M-Rs, but allosteric sites vary, we constructed “allosteric site” M3/M1-R chimeras and analyzed their voltage dependencies. Exchanging the entire allosteric sites eliminated the voltage sensitivity of ACh responses for both receptors, but did not affect their modulation by allosteric compounds. Furthermore, a point mutation in M3-Rs caused functional uncoupling of the allosteric and orthosteric sites and abolished voltage dependence. Molecular dynamics simulations of the receptor var
机译:<![cdata [ 抽象 乙酰胆碱(ACH)的毒蕈碱受体(M-RS)属于G蛋白偶联受体的A类。 M-RS由嵌合在M-R跨膜螺旋束中埋入的特定部位的正向激动剂激活。在主动构象中,可以通过构囊性调节剂来调节受体功能,其通过未知机构与细胞外受体表面结合或通过膜电位结合。在这里,我们比较了M 1 -RS和M 3 -RS通过化学化合物对其变构调制的电压变化。我们用FRET生物传感器在单HEK 293细胞中量化的受体信号传导的变化,用于G Q 蛋白质循环。在ACH的存在下,M 1 -R信号传导通过电压增强,类似于苄基喹诺酮羧酸的正变构调制。相反,M 3> 3 -R的信号传递通过电压或负变构调制器加仑衰减。因为矫形网站在M-RS中受到高度保守,但颠振站有所不同,我们构建了“变振站”M 3 / M 1 -R嵌合体并分析其电压依赖性。交换整个变构位点消除了对两个受体的ACH反应的电压敏感性,但不影响其通过构囊化化合物的调节。此外,M 3 -RS的点突变导致变构和近似点的功能解耦并取消了电压依赖性。受体var的分子动力学模拟

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