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Computational tools for exploring sequence databases as a resource for antimicrobial peptides

机译:用于探索序列数据库作为抗微生物肽的资源的计算工具

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摘要

Data mining has been recognized by many researchers as a hot topic in different areas. In the post-genomic era, the growing number of sequences deposited in databases has been the reason why these databases have become a resource for novel biological information. In recent years, the identification of antimicrobial peptides (AMPs) in databases has gained attention. The identification of unannotated AMPs has shed some light on the distribution and evolution of AMPs and, in some cases, indicated suitable candidates for developing novel antimicrobial agents. The data mining process has been performed mainly by local alignments and/or regular expressions. Nevertheless, for the identification of distant homologous sequences, other techniques such as antimicrobial activity prediction and molecular modelling are required. In this context, this review addresses the tools and techniques, and also their limitations, for mining AMPs from databases. These methods could be helpful not only for the development of novel AMPs, but also for other kinds of proteins, at a higher level of structural genomics. Moreover, solving the problem of unannotated proteins could bring immeasurable benefits to society, especially in the case of AMPs, which could be helpful for developing novel antimicrobial agents and combating resistant bacteria. (C) 2017 Elsevier Inc. All rights reserved.
机译:许多研究人员都以不同领域的热门话题认可的数据挖掘。在后基因组时代,在数据库中存放的越来越多的序列是这些数据库已成为新型生物信息资源的原因。近年来,数据库中的抗菌肽(AMP)的鉴定受到关注。未经讨论的安培的鉴定已经阐明了安培的分布和演化,并且在某些情况下表明了开发新型抗微生物剂的合适候选者。数据挖掘过程主要由局部对齐和/或正则表达式执行。然而,对于遥控同源序列的鉴定,需要其他技术,例如抗微生物活性预测和分子建模。在此上下文中,此审查解决了从数据库中挖掘放大器的工具和技术以及它们的限制。这些方法不仅可以有助于开发新型安培,也有助于其他种类的蛋白质,在较高水平的结构基因组学中。此外,解决未经讨犯的蛋白质问题可能对社会带来无法估量的益处,特别是在AMPS的情况下,这可能有助于开发新型抗微生物剂和打击抗性细菌。 (c)2017年Elsevier Inc.保留所有权利。

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