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通过扇贝足部的时空分泌蛋白质组分析解码足丝制造过程

Decoding the byssus fabrication by spatiotemporal secretome analysis of scallop foot.

作者信息

Dai Xiaoting, Zhu Xuan, Bao Lisui, Chen Xiaomei, Miao Yan, Li Yangping, Li Yuli, Lv Jia, Zhang Lingling, Huang Xiaoting, Bao Zhenmin, Wang Shi, Wang Jing

机构信息

Sars-Fang Centre & MOE Key Laboratory of Marine Genetics and Breeding, College of Marine Life Sciences, Ocean University of China, Qingdao 266003, China.

Institute of Evolution & Marine Biodiversity, Ocean University of China, Qingdao 266003, China.

出版信息

Comput Struct Biotechnol J. 2022 May 27;20:2713-2722. doi: 10.1016/j.csbj.2022.05.048. eCollection 2022.

Abstract

Secretome is involved in almost all physiological, developmental, and pathological processes, but to date there is still a lack of highly-efficient research strategy to comprehensively study the secretome of invertebrates. Adhesive secretion is a ubiquitous and essential physiological process in aquatic invertebrates with complicated protein components and unresolved adhesion mechanisms, making it a good subject for secretome profiling studies. Here we proposed a computational pipeline for systematic profiling of byssal secretome based on spatiotemporal transcriptomes of scallop. A total of 186 byssus-related proteins (BRPs) were identified, which represented the first characterized secretome of scallop byssal adhesion. Scallop byssal secretome covered almost all of the known structural elements and functional domains of aquatic adhesives, which suggested this secretome-profiling strategy had both high efficiency and accuracy. We revealed the main components of scallop byssus (including EGF-like domain containing proteins, the Tyr-rich proteins and 4C-repeats containing proteins) and the related modification enzymes primarily contributing to the rapid byssus assembly and adhesion. Spatiotemporal expression and co-expression network analyses of BRPs suggested a simultaneous secretion pattern of scallop byssal proteins across the entire region of foot and revealed their diverse functions on byssus secretion. In contrast to the previously proposed "root-initiated secretion and extension-based assembly" model, our findings supported a novel "foot-wide simultaneous secretion and in situ assembly" model of scallop byssus secretion and adhesion. Systematic analysis of scallop byssal secretome provides important clues for understanding the aquatic adhesive secretion process, as well as a common framework for studying the secretome of non-model invertebrates.

摘要

分泌组几乎参与了所有的生理、发育和病理过程,但迄今为止,仍缺乏一种高效的研究策略来全面研究无脊椎动物的分泌组。黏附性分泌是水生无脊椎动物中普遍存在且至关重要的生理过程,其蛋白质成分复杂,黏附机制尚未明确,这使其成为分泌组分析研究的良好对象。在此,我们基于扇贝的时空转录组提出了一种用于系统分析足丝分泌组的计算流程。共鉴定出186种与足丝相关的蛋白质(BRP),它们代表了扇贝足丝黏附的首个特征化分泌组。扇贝足丝分泌组几乎涵盖了水生黏附剂所有已知的结构元件和功能域,这表明这种分泌组分析策略具有高效性和准确性。我们揭示了扇贝足丝的主要成分(包括含表皮生长因子样结构域的蛋白质、富含酪氨酸的蛋白质和含4C重复序列的蛋白质)以及主要促成足丝快速组装和黏附的相关修饰酶。BRP的时空表达和共表达网络分析表明,扇贝足丝蛋白在足部整个区域呈现同步分泌模式,并揭示了它们在足丝分泌中的多种功能。与先前提出的“根部起始分泌和基于延伸的组装”模型不同,我们的研究结果支持了一种新颖的扇贝足丝分泌和黏附的“足部全区域同步分泌和原位组装”模型。对扇贝足丝分泌组的系统分析为理解水生黏附性分泌过程提供了重要线索,同时也为研究非模式无脊椎动物的分泌组提供了一个通用框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6a7a/9168380/ffd3001abaa7/ga1.jpg

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