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An overview of the sequence features of N- and C-terminal segments of the human chemokine receptors

机译:人类趋化因子受体N和C末端片段的序列特征概述

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Chemokine receptors play a crucial role in the cellular signaling enrolling extracellular ligands chemotactic proteins which recruit immune cells. They possess seven trans-membrane helices, an extracellular N-terminal region with three extracellular hydrophilic loops being important for search and recognition of specific ligand(s), and an intracellular C-terminal region with three intracellular loops that couple G-proteins. Although the functional aspects of the terminal segments of the extra-and intra-cellular G proteins are universally identified, the molecular basis on which they rest are still unclear because they are not definable by means of X-rays due to their high mobility and are not easy to study in the membrane. The purpose of this work is to define which physical-chemical properties of the terminal segments of the human chemokine receptors are at the basis of their functional mechanisms. Therefore, we have evaluated their physical-chemical properties in terms of amino acid composition, local flexibility, disorder propensity, net charge distribution and putative sites of post-translational modifications.Our results support the conclusion that all 19 C-terminal and N-terminal segments of human chemokine receptors are very flexible due to the systematic presence of intrinsic disorder. Although, the purpose of this plasticity clearly appears that of controlling and modulating the binding of ligands, we provide evidence that the overlap of linearly charged stretches, intrinsic disorder and post-translational modification sites, consistently found in these motives, is a necessary feature to exert the function. The role of the intrinsic disorder has been discussed considering the structural information coming from intrinsically disordered model compounds which support the view that the chemokine terminals have to be considered as strong polyampholytes or polyelectrolytes where conformational ensembles and structural transitions between them are modulated by charge fraction variations. Also the role of post-translational modifications has been found coherent with this view because, changing the charge fraction, they guide structural transitions between ensembles. Moreover, we have also considered our results from an evolutionary point of view in order to understand if the features found in humans were also present in other species. Our data evidenced that the structural features of the human terminals of the chemokine receptors were shared and evolutionarily conserved particularly among mammals. This means that the various organisms not only tolerate but select intrinsic disorder for the terminal regions of their receptors, reflecting constraints that point to molecular recognition.In conclusion the terminal segments of chemokine receptors must be considered as strong polyampholytes where the charge fraction variations induced by post-translational modifications are the driving physico-chemical feature able to adapt the conformations of the terminal segments to their functions.
机译:趋化因子受体在募集免疫细胞的细胞外配体趋化蛋白的细胞信号传导中起关键作用。它们具有七个跨膜螺旋,一个具有三个胞外亲水环的细胞外N端区域,这些环对于寻找和识别特定的配体很重要,以及一个具有三个与G蛋白偶联的胞内环的细胞内C端区域。尽管细胞外和细胞内G蛋白末端片段的功能方面已得到普遍鉴定,但它们所依赖的分子基础仍然不清楚,因为它们的高迁移率无法通过X射线确定,并且在膜上不容易研究。这项工作的目的是确定人类趋化因子受体末端片段的哪些物理化学性质是其功能机制的基础。因此,我们从氨基酸组成,局部柔韧性,无序倾向,净电荷分布和翻译后修饰的假定位点等方面评估了它们的理化特性。我们的结果支持所有19个C端和N端的结论。由于内在失调的系统性存在,人趋化因子受体的片段非常灵活。虽然,这种可塑性的目的显然是控制和调节配体的结合,但我们提供的证据表明,在这些动机中始终存在的线性荷电的延伸,内在无序和翻译后修饰位点的重叠是发挥作用。考虑到来自内在无序模型化合物的结构信息已经讨论了内在无序的作用,这些信息支持以下观点:趋化因子末端必须视为强多两性电解质或聚电解质,其中构象集合和它们之间的结构转变受电荷分数变化的调节。还发现翻译后修饰的作用与此观点相吻合,因为改变电荷分数可指导整合体之间的结构转变。此外,我们还从进化的角度考虑了我们的结果,以便了解在其他物种中是否也存在人类发现的特征。我们的数据证明趋化因子受体的人类末端的结构特征是共享的,并且在进化上尤其是在哺乳动物之间是保守的。这意味着各种生物体不仅能够耐受其受体的末端区域,而且还能选择内在的紊乱,反映出指向分子识别的限制条件。总而言之,趋化因子受体的末端片段必须被认为是强多聚体,其中由电荷诱导的电荷分数变化翻译后修饰是能够使末端片段的构型适应其功能的驱动物理化学特征。

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