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Towards genochemistry: Harnessing the power of biocatalysis for research in the life sciences

机译:迈向基因化学:利用生物催化的力量进行生命科学的研究

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The annotation of the sequences that encode enzymes to their functions is a significant step towards better understanding of the world's biological systems. This is precisely the body of knowledge that Biocatalysis has been building throughout the 20~(th) century on a case-by-case basis. Candidate technologies and methodologies to accomplish this goal are largely available, yet they have not been brought into practice for this purpose. Combining the knowledge, technologies, and methodologies for this renewed purpose constitutes in fact, a new distinctive science which rests on the foundation of biocatalysis. We henceforth shall refer to it as Genomic Chemistry, or Genochemistry in short, the study of chemistry based on genomic information, resulting from numerous emerging disciplines in the 'omics' cascade. Genochemistry is expected to supply more detailed and descriptive information in order to reveal the relationships of enzymes and their catalytic function and annotation of the genomic sequences. Unlike other 'omics' investigations, Genochemistry cannot be conducted by any single technology platform. It requires the building of databases on the basis of experimental data and the use of computational methods as well as bioinformatics tools. In this article, we provide a discussion of a framework, a guideline, and the problems that Genochemistry can tackle from distilled information and amassed literatures, with emphasis on the potentially useful technologies.
机译:注释编码酶功能的序列是迈向更好地了解世界生物系统的重要一步。这正是生物催化在整个20世纪建立的个案基础。可以广泛使用实现该目标的候选技术和方法,但尚未为此目的将其付诸实践。实际上,将知识,技术和方法学结合起来以实现这一新的目的就构成了一种新的独特科学,它立足于生物催化。此后,我们将其称为基因组化学,或简称为基因组化学,即基于“组学”级联中众多新兴学科的基于基因组信息的化学研究。期望基因化学能够提供更详细的描述性信息,以揭示酶及其催化功能的关系以及基因组序列的注释。与其他“组学”研究不同,基因化学不能由任何单一技术平台进行。它要求在实验数据的基础上建立数据库,并使用计算方法以及生物信息学工具。在本文中,我们讨论了基因组化学可以从提炼的信息和大量的文献中解决的框架,指南和问题,重点是潜在的有用技术。

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