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软体动物(蓝贻贝、软壳蛤、东部牡蛎和大西洋刀蛤)中的细胞外囊泡与翻译后蛋白质脱亚胺化特征

Extracellular Vesicles and Post-Translational Protein Deimination Signatures in Mollusca-The Blue Mussel (), Soft Shell Clam (), Eastern Oyster () and Atlantic Jacknife Clam ().

作者信息

Bowden Timothy J, Kraev Igor, Lange Sigrun

机构信息

Aquaculture Research Institute, School of Food & Agriculture, University of Maine, Orono, ME 04469-5735, USA.

Electron Microscopy Suite, Faculty of Science, Technology, Engineering and Mathematics, Open University, Milton Keynes MK7 6AA, UK.

出版信息

Biology (Basel). 2020 Nov 25;9(12):416. doi: 10.3390/biology9120416.

Abstract

Oysters and clams are important for food security and of commercial value worldwide. They are affected by anthropogenic changes and opportunistic pathogens and can be indicators of changes in ocean environments. Therefore, studies into biomarker discovery are of considerable value. This study aimed at assessing extracellular vesicle (EV) signatures and post-translational protein deimination profiles of hemolymph from four commercially valuable Mollusca species, the blue mussel (), soft shell clam (), Eastern oyster (), and Atlantic jacknife clam (). EVs form part of cellular communication by transporting protein and genetic cargo and play roles in immunity and host-pathogen interactions. Protein deimination is a post-translational modification caused by peptidylarginine deiminases (PADs), and can facilitate protein moonlighting in health and disease. The current study identified hemolymph-EV profiles in the four Mollusca species, revealing some species differences. Deiminated protein candidates differed in hemolymph between the species, with some common targets between all four species (e.g., histone H3 and H4, actin, and GAPDH), while other hits were species-specific; in blue mussel these included heavy metal binding protein, heat shock proteins 60 and 90, 2-phospho-D-glycerate hydrolyase, GTP cyclohydrolase feedback regulatory protein, sodium/potassium-transporting ATPase, and fibrinogen domain containing protein. In soft shell clam specific deimination hits included dynein, MCM3-associated protein, and SCRN. In Eastern oyster specific deimination hits included muscle LIM protein, beta-1,3-glucan-binding protein, myosin heavy chain, thaumatin-like protein, vWFA domain-containing protein, BTB domain-containing protein, amylase, and beta-catenin. Deiminated proteins specific to Atlantic jackknife clam included nacre c1q domain-containing protein and PDZ domain-containing protein In addition, some proteins were common as deiminated targets between two or three of the Bivalvia species under study (e.g., EP protein, C1q domain containing protein, histone H2B, tubulin, elongation factor 1-alpha, dominin, extracellular superoxide dismutase). Protein interaction network analysis for the deiminated protein hits revealed major pathways relevant for immunity and metabolism, providing novel insights into post-translational regulation via deimination. The study contributes to EV characterization in diverse taxa and understanding of roles for PAD-mediated regulation of immune and metabolic pathways throughout phylogeny.

摘要

牡蛎和蛤蜊对全球粮食安全至关重要且具有商业价值。它们受到人为变化和机会性病原体的影响,可作为海洋环境变化的指标。因此,生物标志物发现的研究具有相当大的价值。本研究旨在评估四种具有商业价值的软体动物物种,即蓝贻贝、软壳蛤、东部牡蛎和大西洋刀蛏的血淋巴的细胞外囊泡(EV)特征和翻译后蛋白质脱亚胺化谱。细胞外囊泡通过运输蛋白质和遗传物质构成细胞通讯的一部分,并在免疫和宿主 - 病原体相互作用中发挥作用。蛋白质脱亚胺化是由肽基精氨酸脱亚氨酶(PADs)引起的一种翻译后修饰,在健康和疾病状态下可促进蛋白质的兼职功能。当前研究确定了这四种软体动物物种的血淋巴 - EV谱,揭示了一些物种差异。不同物种血淋巴中的脱亚胺化蛋白质候选物有所不同,所有四个物种之间有一些共同靶点(例如组蛋白H3和H4、肌动蛋白和甘油醛 - 3 - 磷酸脱氢酶),而其他靶点具有物种特异性;在蓝贻贝中,这些包括重金属结合蛋白、热休克蛋白60和90、2 - 磷酸 - D - 甘油酸水解酶、GTP环化水解酶反馈调节蛋白、钠/钾转运ATP酶和含纤维蛋白原结构域的蛋白质。在软壳蛤中,特异性脱亚胺化靶点包括动力蛋白、MCM3相关蛋白和SCRN。在东部牡蛎中,特异性脱亚胺化靶点包括肌肉LIM蛋白、β - 1,3 - 葡聚糖结合蛋白、肌球蛋白重链、类thaumatin蛋白、含vWFA结构域的蛋白、含BTB结构域的蛋白、淀粉酶和β - 连环蛋白。大西洋刀蛏特有的脱亚胺化蛋白质包括含珍珠层c1q结构域的蛋白和含PDZ结构域的蛋白。此外,一些蛋白质是所研究的两到三种双壳贝类物种之间共同的脱亚胺化靶点(例如EP蛋白、含C1q结构域的蛋白、组蛋白H2B、微管蛋白、延伸因子1 - α、dominin、细胞外超氧化物歧化酶)。对脱亚胺化蛋白质靶点的蛋白质相互作用网络分析揭示了与免疫和代谢相关的主要途径,为通过脱亚胺化进行的翻译后调控提供了新的见解。该研究有助于不同分类群中细胞外囊泡的表征,并有助于理解PAD介导的免疫和代谢途径调控在整个系统发育中的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/759f/7760292/8f1e27cf9e9a/biology-09-00416-g001.jpg

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