首页> 外文OA文献 >The antibodies against the computationally designed mimic of the glycoprotein hormone receptor transmembrane domain provide insights into receptor activation and suppress the constitutively activated receptor Mutants
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The antibodies against the computationally designed mimic of the glycoprotein hormone receptor transmembrane domain provide insights into receptor activation and suppress the constitutively activated receptor Mutants

机译:针对糖蛋白激素受体跨膜结构域的计算机模拟设计的抗体可深入了解受体激活并抑制组成型激活受体突变体

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摘要

The exoloops of glycoprotein hormone receptors (GpHRs) transduce the signal generated by the ligand-ectodomain interactions to the transmembrane helices either through direct hormonal contact and/or by modulating the interdomain interactions between the hinge region (HinR) and the transmembrane domain (TMD). The ligand-induced conformational alterations in the HinRs and the interhelical loops of luteinizing hormone receptor/follicle stimulating hormone receptor/thyroid stimulating hormone receptor were mapped using exoloop-specific antibodies generated against a mini-TMD protein designed to mimic the native exoloop conformations that were created by joining the thyroid stimulating hormone receptor exoloops constrained through helical tethers and library-derived linkers. The antibody against the mini-TMD specifically recognized all three GpHRs and inhibited the basal and hormone-stimulated cAMP production without affecting hormone binding. Interestingly, binding of the antibody to all three receptors was abolished by prior incubation of the receptors with the respective hormones, suggesting that the exoloops are buried in the hormone-receptor complexes. The antibody also suppressed the high basal activities of gain-of-function mutations in the HinRs, exoloops, and TMDs such as those involved in precocious puberty and thyroid toxic adenomas. Using the antibody and point/deletion/chimeric receptor mutants, we demonstrate that changes in the HinR-exoloop interactions play an important role in receptor activation. Computational analysis suggests that the mini-TMD antibodies act by conformationally locking the transmembrane helices by means of restraining the exoloops and the juxta-membrane regions. Using GpHRs as a model, we describe a novel computational approach of generating soluble TMD mimics that can be used to explain the role of exoloops during receptor activation and their interplay with TMDs.
机译:糖蛋白激素受体(GpHRs)的外环通过直接激素接触和/或调节铰链区(HinR)和跨膜结构域(TMD)之间的结构域间相互作用,将配体-胞外域相互作用产生的信号转导至跨膜螺旋。 。使用针对微型TMD蛋白生成的exoloop特异性抗体,对HinRs中的配体诱导的构象变化以及黄体生成激素受体/卵泡刺激素受体/甲状腺刺激激素受体的螺旋间环作图,以模拟天然的exoloop构象。通过加入受螺旋束缚和文库衍生的连接子限制的甲状腺刺激激素受体外环而产生的。针对mini-TMD的抗体可特异性识别所有三个GpHR,并抑制基础和激素刺激的cAMP产生,而不会影响激素结合。有趣的是,通过将受体与相应的激素预先孵育,抗体与所有三个受体的结合被取消,这表明外环被掩埋在激素-受体复合物中。该抗体还抑制了HinR,exoloop和TMD中功能获得性突变的高基础活性,例如参与性早熟和甲状腺毒性腺瘤的那些。使用抗体和点/删除/嵌合受体突变体,我们证明了HinR-exoloop相互作用的变化在受体激活中起重要作用。计算分析表明,mini-TMD抗体通过限制外环和近膜区域,构象锁定跨膜螺旋而起作用。使用GpHRs作为模型,我们描述了一种生成可溶性TMD模拟物的新颖计算方法,该方法可用于解释外环在受体激活过程中的作用及其与TMD的相互作用。

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