A Service Computing Framework for Proteomics Analysis and Collaboration of Pathogenic Mechanism Studies

Huaming Chen, Fucun Li, G. Sun, Xuyun Zhang, Xianjun Dong, Lei Wang, Kewen Liao, Haifeng Shen, Jun Shen
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引用次数: 1

Abstract

The booming of proteomics data has positioned multiple disciplines and research areas in a more complicated and challenging place. Moreover, the proteomics data of any defined research interests, such as for pathogenic mechanism studies of infectious diseases, have presented unstructured and heterogeneous characteristics. Thus, a service computing framework for proteomics analysis is desired to bring biologists and computer scientists into this area seamlessly and efficiently. With this regard, this work is dedicated to detail the proteomics analysis and collaboration process of pathogenic mechanism studies. We articulate this framework to serve the requirements and ease the task design by broadly reviewing the state-of-the- art research and development efforts and collectively designing different informative stages. Thus, the framework has a focus of distilling different aspects, including data curation, resources distribution, standard construction and computational tasks identification, into the proteomics analysis. The framework is designed as Proteomics Analysis as a Service to deepen the understanding of the interdisciplinary research.
蛋白质组学分析与致病机制协同研究的服务计算框架
蛋白质组学数据的蓬勃发展将多个学科和研究领域置于一个更加复杂和具有挑战性的地方。此外,任何明确的研究兴趣的蛋白质组学数据,如传染病的致病机制研究,都呈现出非结构化和异质性的特征。因此,需要一个蛋白质组学分析的服务计算框架,使生物学家和计算机科学家无缝地、高效地进入这一领域。为此,本工作致力于详细阐述蛋白质组学分析和致病机制研究的协作过程。我们通过广泛地回顾最先进的研究和开发工作以及集体设计不同的信息阶段来阐明这个框架,以满足需求并简化任务设计。因此,该框架的重点是将数据管理、资源分配、标准构建和计算任务识别等不同方面提炼到蛋白质组学分析中。该框架被设计为蛋白质组学分析服务,以加深对跨学科研究的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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