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Aluminum's preferential binding site in proteins: sidechain of amino acids versus backbone interactions

机译:铝蛋白的优选粘合位点:氨基酸的侧链与骨干相互作用

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摘要

The interaction of aluminum ion Al(III) with polypeptides is a subject of paramount importance, since it is a central feature to understand its deleterious effects in biological systems. Various drastic effects have been attributed to aluminum in its interaction with polypeptides and proteins. These interactions are thought to be established mainly through the binding of aluminum to phosphorylated and non-phosphorylated amino acid sidechains. However, a new structural paradigm has recently been proposed, in which aluminum interacts directly with the backbone of the proteins, provoking drastic changes in their secondary structure and leading ultimately to their denaturation. In the present paper, we use computational methods to discuss the possibility of aluminum to interact with the backbone of peptides and compare it with the known ability of aluminum to interact with amino acid sidechains. To do so, we compare the thermodynamics of formation of prototype aluminum-backbone structures with prototype aluminum-sidechain structures, and compare these results with previous data generated in our group in which aluminum interacts with various types of polypeptides and known aluminum biochelators. Our results clearly points to a preference of aluminum towards amino acid sidechains, rather than towards the peptide backbone. Thus, structures in which aluminum is interacting with the carbonyl group are only slightly exothermic, and they become even less favorable if the interaction implies additionally the peptide nitrogen. However, structures in which aluminum is interacting with negatively-charged sidechains like aspartic acid, or phosphorylated serines are highly favored thermodynamically.
机译:铝离子(III)与多肽的相互作用是重要的重要性,因为它是理解其在生物系统中的有害作用的中心特征。各种激烈效应归因于铝与多肽和蛋白质的相互作用。认为这些相互作用主要通过铝与磷酸化和非磷酸化氨基酸侧链的结合来建立。然而,最近提出了一种新的结构范式,其中铝与蛋白质的骨干直接相互作用,引起其二级结构的激烈变化,最终导致其变性。在本文中,我们使用计算方法讨论铝的可能性与肽的骨干相互作用,并将其与铝的已知能力与氨基酸侧链相互作用。为此,我们将原型铝 - 骨架结构形成的热力学与原型铝 - 侧链结构进行比较,并将这些结果与我们的组中生成的先前数据进行比较,其中铝与各种类型的多肽和已知的铝生物螺旋蛋白相互作用。我们的结果显然指向铝朝向氨基酸侧链的偏好,而不是朝向肽骨架。因此,其中铝与羰基相互作用的结构仅略微放热,如果相互作用另外意味着肽氮气,它们变得更不利。然而,其中铝与诸如天冬氨酸等带负电的侧链相互作用的结构,或磷酸化丝氨酸热力学较高。

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    Euskal Herriko Unibertsitatea UPV EHU Kimika Fak Donostia Int Phys Ctr PK 1072 Donostia San Sebastian 20080 Euskadi Spain;

    Euskal Herriko Unibertsitatea UPV EHU Kimika Fak Donostia Int Phys Ctr PK 1072 Donostia San Sebastian 20080 Euskadi Spain;

    Euskal Herriko Unibertsitatea UPV EHU Kimika Fak Donostia Int Phys Ctr PK 1072 Donostia San Sebastian 20080 Euskadi Spain;

    Euskal Herriko Unibertsitatea UPV EHU Kimika Fak Donostia Int Phys Ctr PK 1072 Donostia San Sebastian 20080 Euskadi Spain;

    Euskal Herriko Unibertsitatea UPV EHU Kimika Fak Donostia Int Phys Ctr PK 1072 Donostia San Sebastian 20080 Euskadi Spain;

    Keele Univ Birchall Ctr Leonard Jones Labs Keele ST5 5BG Staffs England;

    Euskal Herriko Unibertsitatea UPV EHU Kimika Fak Donostia Int Phys Ctr PK 1072 Donostia San Sebastian 20080 Euskadi Spain;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

    Aluminum specificity; Binding energy; DFT; QTAIM;

    机译:铝特异性;结合能量;DFT;qtaim;

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