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重组 Pvfp-5β 的溶液结构揭示了贻贝黏附的机制。

Solution structure of recombinant Pvfp-5β reveals insights into mussel adhesion.

机构信息

Structural Biology and Biophysics Unit, Fondazione Ri.MED, 90133, Palermo, Italy.

Department of Biological, Chemical and Pharmaceutical Sciences and Technologies (STEBICEF), University of Palermo, 90128, Palermo, Italy.

出版信息

Commun Biol. 2022 Jul 25;5(1):739. doi: 10.1038/s42003-022-03699-w.

Abstract

Some marine organisms can resist to aqueous tidal environments and adhere tightly on wet surface. This behavior has raised increasing attention for potential applications in medicine, biomaterials, and tissue engineering. In mussels, adhesive forces to the rock are the resultant of proteinic fibrous formations called byssus. We present the solution structure of Pvfp-5β, one of the three byssal plaque proteins secreted by the Asian green mussel Perna viridis, and the component responsible for initiating interactions with the substrate. We demonstrate that Pvfp-5β has a stably folded structure in agreement with the presence in the sequence of two EGF motifs. The structure is highly rigid except for a few residues affected by slow local motions in the µs-ms time scale, and differs from the model calculated by artificial intelligence methods for the relative orientation of the EGF modules, which is something where computational methods still underperform. We also show that Pvfp-5β is able to coacervate even with no DOPA modification, giving thus insights both for understanding the adhesion mechanism of adhesive mussel proteins, and developing of biomaterials.

摘要

一些海洋生物能够抵抗水的潮汐环境,并紧紧地附着在潮湿的表面上。这种行为引起了人们越来越多的关注,因为它可能有医学、生物材料和组织工程方面的潜在应用。在贻贝中,与岩石的粘附力是由称为足丝的蛋白质纤维形成的结果。我们展示了亚洲青口贻贝 Perna viridis 分泌的三种贻贝斑块蛋白之一 Pvfp-5β 的溶液结构,以及与底物相互作用的起始组分。我们证明 Pvfp-5β 具有稳定折叠的结构,与序列中存在两个 EGF 基序一致。该结构非常刚性,除了少数残基受到µs-ms 时间尺度上的缓慢局部运动的影响外,与人工智能方法计算的 EGF 模块相对取向的模型不同,这是计算方法仍然表现不佳的地方。我们还表明,即使没有 DOPA 修饰,Pvfp-5β 也能够凝聚,这为理解粘附贻贝蛋白的粘附机制和开发生物材料提供了见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ffbd/9314366/15649795c5f9/42003_2022_3699_Fig1_HTML.jpg

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