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来自澳大利亚漏斗网蜘蛛的一种蛛丝蛋白动态扰动且二聚化受抑制的N端结构域变体的核磁共振信号归属

NMR assignments of a dynamically perturbed and dimerization inhibited N-terminal domain variant of a spider silk protein from E. australis.

作者信息

Goretzki Benedikt, Heiby Julia C, Hacker Carolin, Neuweiler Hannes, Hellmich Ute A

机构信息

Institute for Pharmacy and Biochemistry, Johannes-Gutenberg-University Mainz, Johann-Joachim Becher-Weg 30, 55128, Mainz, Germany.

Center for Biomolecular Magnetic Resonance, Goethe-University, Max-von-Laue-Strasse 9, 60438, Frankfurt, Germany.

出版信息

Biomol NMR Assign. 2020 Apr;14(1):67-71. doi: 10.1007/s12104-019-09922-w. Epub 2019 Nov 30.

DOI:10.1007/s12104-019-09922-w
PMID:31786743
Abstract

Web spiders use specialized glands to produce silk proteins, so-called spidroins, which assemble into extraordinarily tough silk fibers through tightly regulated phase and structural transitions. A crucial step in the polymerization of spidroins is the pH-triggered assembly of their N-terminal domains (NTDs) into tight dimers. Major ampullate spidroin NTDs contain an unusually high content of the amino acid methionine. We previously showed that the simultaneous mutation of the six hydrophobic core methionine residues to leucine in the NTD of the major ampullate spidroin 1 from Euprosthenops australis, a nursery web spider, yields a protein (L6-NTD) retaining a three-dimensional fold identical to the wildtype (WT) domain, yet with a significantly increased stability. Further, the dynamics of the L6-NTD are significantly reduced and the ability to dimerize is severely impaired compared to the WT domain. These properties lead to significant changes in the NMR spectra between WT and L6-NTD so that the previously available WT-NTD assignments cannot be transferred to the mutant protein. Here, we thus report the de novo NMR backbone and side chain assignments of the major ampullate spidroin 1 L6-NTD variant from E. australis as a prerequisite for obtaining further insights into protein structure and dynamics.

摘要

蜘蛛利用特殊腺体产生丝蛋白,即所谓的蛛丝蛋白,这些蛋白通过严格调控的相转变和结构转变组装成异常坚韧的丝纤维。蛛丝蛋白聚合的关键步骤是其N端结构域(NTDs)在pH触发下组装成紧密的二聚体。大壶腹蛛丝蛋白NTDs中氨基酸甲硫氨酸的含量异常高。我们之前表明,将澳大利亚育儿网蛛大壶腹蛛丝蛋白1的NTD中六个疏水核心甲硫氨酸残基同时突变为亮氨酸,会产生一种蛋白质(L6-NTD),其保留了与野生型(WT)结构域相同的三维折叠,但稳定性显著提高。此外,与WT结构域相比,L6-NTD的动力学显著降低,二聚化能力严重受损。这些特性导致WT和L6-NTD的NMR光谱发生显著变化,因此先前可用的WT-NTD归属无法转移到突变蛋白上。因此,在此我们报告了澳大利亚大壶腹蛛丝蛋白1 L6-NTD变体的从头NMR主链和侧链归属,这是进一步深入了解蛋白质结构和动力学的前提条件。

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