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Side-Chain to Main-Chain Hydrogen Bonding Controls the Intrinsic Backbone Dynamics of the Amyloid Precursor Protein Transmembrane Helix

机译:侧链至主链氢键控制淀粉样前体蛋白跨膜螺旋的内在主链动力学。

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摘要

Many transmembrane helices contain serine and/or threonine residues whose side chains form intrahelical H-bonds with upstream carbonyl oxygens. Here, we investigated the impact of threonine side-chain/main-chain backbonding on the backbone dynamics of the amyloid precursor protein transmembrane helix. This helix consists of a N-terminal dimerization region and a C-terminal cleavage region, which is processed by γ-secretase to a series of products. Threonine mutations within this transmembrane helix are known to alter the cleavage pattern, which can lead to early-onset Alzheimer’s disease. Circular dichroism spectroscopy and amide exchange experiments of synthetic transmembrane domain peptides reveal that mutating threonine enhances the flexibility of this helix. Molecular dynamics simulations show that the mutations reduce intrahelical amide H-bonding and H-bond lifetimes. In addition, the removal of side-chain/main-chain backbonding distorts the helix, which alters bending and rotation at a diglycine hinge connecting the dimerization and cleavage regions. We propose that the backbone dynamics of the substrate profoundly affects the way by which the substrate is presented to the catalytic site within the enzyme. Changing this conformational flexibility may thus change the pattern of proteolytic processing.
机译:许多跨膜螺旋含有丝氨酸和/或苏氨酸残基,它们的侧链与上游的羰基氧形成螺旋内的H键。在这里,我们调查了苏氨酸侧链/主链回键对淀粉样蛋白前体蛋白跨膜螺旋的主链动力学的影响。该螺旋结构由一个N端二聚区和一个C端裂解区组成,该区域由γ分泌酶加工成一系列产物。众所周知,跨膜螺旋内的苏氨酸突变会改变切割模式,从而导致早发的阿尔茨海默氏病。合成跨膜结构域肽的圆二色光谱和酰胺交换实验表明,苏氨酸突变可增强该螺旋的柔性。分子动力学模拟表明,突变降低了螺旋内酰胺的H键和H键寿命。另外,侧链/主链反向键的去除使螺旋变形,这改变了连接二聚化和切割区域的二甘氨酸铰链处的弯曲和旋转。我们建议底物的主链动力学深刻影响底物被呈现给酶内催化位点的方式。改变这种构象灵活性可以因此改变蛋白水解加工的模式。

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