首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Crystal Structure of the Nephila clavipes Major Ampullate Spidroin 1A N-terminal Domain Reveals Plasticity at the Dimer Interface
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Crystal Structure of the Nephila clavipes Major Ampullate Spidroin 1A N-terminal Domain Reveals Plasticity at the Dimer Interface

机译:Nephila锁骨线虫主要壶腹部Spidroin 1A N末端域的晶体结构揭示了二聚体界面的可塑性。

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摘要

Spider dragline silk is a natural polymer harboring unique physical and biochemical properties that make it an ideal biomaterial. Artificial silk production requires an understanding of the in vivo mechanisms spiders use to convert soluble proteins, called spidroins, into insoluble fibers. Controlled dimerization of the spidroin N-terminal domain (NTD) is crucial to this process. Here, we report the crystal structure of the Nephila clavipes major ampullate spidroin NTD dimer. Comparison of our N. clavipes NTD structure with previously determined Euprosthenops australis NTD structures reveals subtle conformational alterations that lead to differences in how the subunits are arranged at the dimer interface. We observe a subset of contacts that are specific to each ortholog, as well as a substantial increase in asymmetry in the interactions observed at the N. clavipes NTD dimer interface. These asymmetric interactions include novel intermolecular salt bridges that provide new insights into the mechanism of NTD dimerization. We also observe a unique intramolecular “handshake” interaction between two conserved acidic residues that our data suggest adds an additional layer of complexity to the pH-sensitive relay mechanism for NTD dimerization. The results of a panel of tryptophan fluorescence dimerization assays probing the importance of these interactions support our structural observations. Based on our findings, we propose that conformational selectivity and plasticity at the NTD dimer interface play a role in the pH-dependent transition of the NTD from monomer to stably associated dimer as the spidroin progresses through the silk extrusion duct.
机译:蜘蛛拉铲丝是一种天然聚合物,具有独特的物理和生化特性,使其成为理想的生物材料。人造丝的生产需要了解蜘蛛用来将可溶性蛋白(称为蜘蛛蛋白)转化为不溶性纤维的体内机制。 spidroin N末端域(NTD)的受控二聚化对该过程至关重要。在这里,我们报告的Nephila锁骨主要壶腹spidroin NTD二聚体的晶体结构。我们的锁骨猪笼草NTD结构与先前确定的澳大利亚真人猿NTD结构的比较显示出微妙的构象变化,导致亚基在二聚体界面处的排列方式有所不同。我们观察到特定于每个直系同源物的接触的子集,以及在锁骨猪笼草NTD二聚体界面处观察到的相互作用中的不对称性显着增加。这些不对称的相互作用包括新颖的分子间盐桥,为NTD二聚化机理提供了新见解。我们还观察到两个保守的酸性残基之间的独特的分子内“握手”相互作用,我们的数据表明,pH敏感的NTD二聚化中继机制增加了一层复杂性。一组色氨酸荧光二聚化测定的结果探讨了这些相互作用的重要性,这些结果支持了我们的结构观察。根据我们的发现,我们建议,当spidroin通过丝挤压管前进时,NTD二聚体界面处的构象选择性和可塑性在NTD从单体到稳定缔合的二聚体的pH依赖性过渡中起作用。

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