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循着海星的足迹:揭开水下临时附着相关蛋白的目录。

In the footsteps of sea stars: deciphering the catalogue of proteins involved in underwater temporary adhesion.

机构信息

Laboratory of Biology of Marine Organisms and Biomimetics, Research Institute for Biosciences, University of Mons, Place du Parc 23, Mons 7000, Belgium.

Laboratory of Cell Biology, Research Institute for Biosciences, University of Mons, Place du Parc 23, Mons 7000, Belgium.

出版信息

Open Biol. 2022 Aug;12(8):220103. doi: 10.1098/rsob.220103. Epub 2022 Aug 17.

Abstract

Sea stars adhere strongly but temporarily to underwater substrata via the secretion of a blend of proteins, forming an adhesive footprint that they leave on the surface after detachment. Their tube feet enclose a duo-gland adhesive system comprising two types of adhesive cells, contributing different layers of the footprint and de-adhesive cells. In this study, we characterized the catalogue of sea star footprint proteins (Sfps) in the species to gain insights in their potential function. We identified 16 Sfps and mapped their expression to type 1 and/or type 2 adhesive cells or to de-adhesive cells by double fluorescent hybridization. Based on their cellular expression pattern and their conserved functional domains, we propose that the identified Sfps serve different functions during attachment, with two Sfps coupling to the surface, six providing cohesive strength and the rest forming a binding matrix. Immunolabelling of footprints with antibodies directed against one protein of each category confirmed these roles. A de-adhesive gland cell-specific astacin-like proteinase presumably weakens the bond between the adhesive material and the tube foot surface during detachment. Overall, we provide a model for temporary adhesion in sea stars, including a comprehensive list of the proteins involved.

摘要

海星通过分泌蛋白质混合物牢固但暂时地附着在水下基质上,形成一个粘性足迹,在脱离后留在表面上。它们的管足包含一个双腺粘性系统,由两种类型的粘性细胞组成,为足迹的不同层和去粘性细胞做出贡献。在这项研究中,我们对物种的海星足迹蛋白(Sfps)进行了特征描述,以深入了解其潜在功能。我们鉴定了 16 种 Sfps,并通过双荧光杂交将其表达映射到 1 型和/或 2 型粘性细胞或去粘性细胞上。根据它们的细胞表达模式和保守的功能域,我们提出,鉴定出的 Sfps 在附着过程中具有不同的功能,其中两种 Sfps 与表面结合,六种提供内聚强度,其余的形成结合基质。用针对每个类别的一种蛋白质的抗体对足迹进行免疫标记证实了这些作用。一种去粘性腺细胞特异性星虫蛋白酶可能在脱离过程中削弱粘性材料与管足表面之间的结合。总的来说,我们提供了一个海星暂时附着的模型,包括涉及的蛋白质的综合列表。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/22c7/9382459/2167ee6b234a/rsob220103f01.jpg

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