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Incorporating computational resources in a cancer research program.

机译:将计算资源整合到癌症研究程序中。

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摘要

Recent technological advances have transformed cancer genetics research. These advances have served as the basis for the generation of a number of richly annotated datasets relevant to the cancer geneticist. In addition, many of these technologies are now within reach of smaller laboratories to answer specific biological questions. Thus, one of the most pressing issues facing an experimental cancer biology research program in genetics is incorporating data from multiple sources to annotate, visualize, and analyze the system under study. Fortunately, there are several computational resources to aid in this process. However, a significant effort is required to adapt a molecular biology-based research program to take advantage of these datasets. Here, we discuss the lessons learned in our laboratory and share several recommendations to make this transition effective. This article is not meant to be a comprehensive evaluation of all the available resources, but rather highlight those that we have incorporated into our laboratory and how to choose the most appropriate ones for your research program.
机译:最近的技术进步已经改变了癌症遗传学研究。这些进展为生成与癌症遗传学家有关的许多注释丰富的数据集奠定了基础。另外,这些技术中的许多技术现在已经在较小的实验室可以解决的特定生物学问题上。因此,遗传学上的实验癌症生物学研究计划面临的最紧迫的问题之一是将来自多个来源的数据整合在一起,以对研究中的系统进行注释,可视化和分析。幸运的是,有多种计算资源可帮助此过程。但是,需要大量的精力来适应基于分子生物学的研究计划,以利用这些数据集。在这里,我们讨论在实验室中获得的经验教训,并分享一些建议以使这种转换有效。本文并不是要对所有可用资源进行全面评估,而是要强调我们已经整合到实验室中的资源,以及如何为您的研究计划选择最合适的资源。

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