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首页> 外文期刊>Biochemistry >Expression, folding, and thermodynamic properties of the bovine oxytocin-neurophysin precursor: relationships to the intermolecular oxytocin-neurophysin complex.
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Expression, folding, and thermodynamic properties of the bovine oxytocin-neurophysin precursor: relationships to the intermolecular oxytocin-neurophysin complex.

机译:牛催产素-神经素前体的表达,折叠和热力学性质:与分子间催产素-神经素复合物的关系。

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摘要

Earlier thermodynamic studies of the intermolecular interactions between mature oxytocin and neurophysin, and of the effects of these interactions on neurophysin folding, raised questions about the intramolecular interactions of oxytocin with neurophysin within their common precursor. To address this issue, the disulfide-rich precursor of oxytocin-associated bovine neurophysin was expressed in Escherichia coli and folded in vitro to yield milligram quantities of purified protein; evidence of significant impediments to yield resulting from damage to Cys residues is presented. The inefficiency associated with the refolding of reduced mature neurophysin in the presence of oxytocin was found not to be alleviated in the precursor. Consistent with this, the effects of pH on the spectroscopic properties of the precursor and on the relative stabilities of the precursor and mature neurophysin to guanidine denaturation indicated that noncovalent intramolecular bonding between oxytocin and neurophysin in the precursor had only a small thermodynamic advantage over the corresponding bonding in the intermolecular complex. Loss of the principal interactions between hormone and protein, and of the enhanced stability of the precursor relative to that of the mature unliganded protein, occurred reversibly upon increasing the pH, with a midpoint at pH 10. Correlation of these results with evidence from NMR studies of structural differences between the precursor and the intermolecular complex, which persist beyond the pH 10 transition, suggests that the covalent attachment of the hormone in the precursor necessitates a conformational change in its neurophysin segment and leads to properties of the system that are distinct from those of either the liganded or unliganded mature protein.
机译:较早的关于成熟催产素和神经物理之间的分子间相互作用以及这些相互作用对神经物理折叠的影响的热力学研究提出了关于催产素与它们共同的前体中的神经物理之间的分子内相互作用的问题。为了解决这个问题,催产素相关的牛神经素的富含二硫键的前体在大肠杆菌中表达,并在体外折叠以产生毫克量的纯化蛋白。提出了对Cys残基的破坏导致产量显着障碍的证据。发现在催产素存在下与还原的成熟神经体重新折叠有关的无效在前体中并未得到缓解。与此相一致,pH对前体的光谱性质以及前体和成熟神经物理对胍变性的相对稳定性的影响表明,前体中催产素和神经物理之间的非共价分子内键合仅具有较小的热力学优势。键合在分子间复合物中。相对于成熟的未配体蛋白质,激素和蛋白质之间主要相互作用的丧失以及相对于未结合的成熟蛋白质而言,前体稳定性的提高是可逆的,发生在pH值为10的中点时。这些结果与NMR研究的相关性前驱体与分子间复合物之间的结构差异(持续超过pH 10的变化)的结果表明,前驱体中激素的共价附着需要其神经元节段发生构象变化,并导致系统特性不同于那些配体或未配体的成熟蛋白。

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