Bioinformatics and Systems Biology Group, Universidad Nacional de Colombia, Bogotá 111221, Colombia.
Centro de Investigaciones en Microbiología y Biotecnología-UR (CIMBIUR), Facultad de Ciencias Naturales, Universidad del Rosario, Bogotá 111221, Colombia.
Int J Mol Sci. 2021 Oct 22;22(21):11397. doi: 10.3390/ijms222111397.
Noncoding RNAs (ncRNAs) play prominent roles in the regulation of gene expression via their interactions with other biological molecules such as proteins and nucleic acids. Although much of our knowledge about how these ncRNAs operate in different biological processes has been obtained from experimental findings, computational biology can also clearly substantially boost this knowledge by suggesting possible novel interactions of these ncRNAs with other molecules. Computational predictions are thus used as an alternative source of new insights through a process of mutual enrichment because the information obtained through experiments continuously feeds through into computational methods. The results of these predictions in turn shed light on possible interactions that are subsequently validated experimentally. This review describes the latest advances in databases, bioinformatic tools, and new in silico strategies that allow the establishment or prediction of biological interactions of ncRNAs, particularly miRNAs and lncRNAs. The ncRNA species described in this work have a special emphasis on those found in humans, but information on ncRNA of other species is also included.
非编码 RNA(ncRNA)通过与其他生物分子(如蛋白质和核酸)的相互作用,在基因表达调控中发挥着重要作用。尽管我们对这些 ncRNA 在不同生物过程中的作用的大部分了解都是通过实验发现获得的,但计算生物学也可以通过提出这些 ncRNA 与其他分子可能的新相互作用,显著增强这方面的知识。因此,计算预测被用作通过相互丰富过程获得新见解的替代来源,因为通过实验获得的信息不断反馈到计算方法中。这些预测的结果反过来又揭示了可能的相互作用,随后这些相互作用会被实验验证。这篇综述描述了数据库、生物信息学工具和新的计算策略的最新进展,这些进展允许建立或预测 ncRNA(特别是 miRNA 和 lncRNA)的生物学相互作用。本文所述的 ncRNA 物种特别强调了在人类中发现的 ncRNA,但也包括了其他物种的 ncRNA 信息。