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Structure and Dynamics of the First Archaeal Parvulin Reveal a New Functionally Important Loop in Parvulin-type Prolyl Isomerases

机译:第一种古细菌细小蛋白的结构和动力学揭示了细小蛋白型脯氨酰异构酶中一个新的功能重要的循环

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摘要

Parvulins are a group of peptidyl-prolyl isomerases (PPIases) responsible for important biological processes in all kingdoms of life. The PinA protein from the psychrophilic archaeon Cenarchaeum symbiosum is a parvulin-like PPIase. Due to its striking similarity to the human parvulins Pin1 and Par14, PinA constitutes an interesting subject for structural and functional studies. Here, we present the first high resolution NMR structure of an archaeal parvulin, PinA, based on 1798 conformational restraints. Structure calculation yields an ensemble of 20 convergent low energy structures with a backbone r.m.s.d. value of 0.6 Å within the secondary structure elements. The overall fold of PinA comprises the β-α3-β-α-β2 fold typical for all parvulin structures known so far, but with helix III being a short 310-helix. A detailed comparison of this high resolution structure of the first archaeal PinA protein with bacterial and eukaryotic parvulin PPIase structures reveals an atypically large catalytic binding site. This feature provides an explanation for cold-adapted protein function. Moreover, the residues in and around 310-helix III exhibit strong intramolecular dynamics on a microsecond to millisecond timescale and display structural heterogeneity within the NMR ensemble. A putative peptide ligand was found for PinA by phage display and was used for 1H-15N-HSQC titrations. Again, the flexible region around 310-helix III as well as residues of the peptide binding pocket showed the strongest chemical shift perturbations upon peptide binding. The local flexibility of this region also was modulated by ligand binding. A glycine and two positively charged residues are conserved in most parvulin proteins in this flexible loop region, which may be of general functional importance for parvulin-type PPIases.
机译:细小蛋白是一组肽基脯氨酰异构酶(PPIase),负责所有生命王国中的重要生物过程。嗜冷古生Cenarchaeum symbiosum的PinA蛋白是一种细小蛋白样的PPIase。由于其与人细小蛋白Pin1和Par14惊人的相似性,PinA构成了结构和功能研究的有趣主题。在这里,我们根据1798年的构象约束,提出了古细菌细小蛋白PinA的第一个高分辨率NMR结构。结构计算得出20个收敛的低能量结构的集合,其主干r.m.s.d.二级结构元素中的值为0.6.。 PinA的整体折叠包含迄今为止已知的所有细小蛋白结构典型的β-α3-β-α-β2折叠,但螺旋III是短的310螺旋。第一个古细菌PinA蛋白的高分辨率结构与细菌和真核小蛋白PPIase结构的详细比较揭示了一个非典型的大催化结合位点。此功能为冷适应的蛋白质功能提供了解释。此外,在310螺旋III中及其周围的残基在微秒至毫秒的时间尺度上显示出强大的分子内动力学,并在NMR集合内显示出结构异质性。通过噬菌体展示发现了PinA的推定肽配体,并用于 1 H- 15 N-HSQC滴定。再次,在310-螺旋III周围的柔性区域以及肽结合袋的残基在肽结合后显示出最强的化学位移扰动。该区域的局部柔性也受到配体结合的调节。一个甘氨酸和两个带正电荷的残基在这个柔性环区域的大多数小肠蛋白中是保守的,这对于小肠蛋白型PPIase可能具有一般的功能重要性。

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