Department of Medicine, Vanderbilt University School of Medicine, Nashville, TN, USA.
J Lipid Res. 2013 May;54(5):1182-91. doi: 10.1194/jlr.R034801. Epub 2013 Mar 15.
MicroRNAs (miRNAs) are key posttranscriptional regulators of biological pathways that govern lipid metabolic phenotypes. Recent advances in high-throughput small RNA sequencing technology have revealed the complex and dynamic repertoire of miRNAs. Specifically, it has been demonstrated that a single genomic locus can give rise to multiple, functionally distinct miRNA isoforms (isomiR). There are several mechanisms by which isomiRs can be generated, including processing heterogeneity and posttranscriptional modifications, such as RNA editing, exonuclease-mediated nucleotide trimming, and/or nontemplated nucleotide addition (NTA). NTAs are dominant at the 3'-end of a miRNA, are most commonly uridylation or adenlyation events, and are catalyzed by one or more of several nucleotidyl transferase enzymes. 3' NTAs can affect miRNA stability and/or activity and are physiologically regulated, whereas modifications to the 5'-ends of miRNAs likely alter miRNA targeting activity. Recent evidence also suggests that the biogenesis of specific miRNAs, or small RNAs that act as miRNAs, can occur through unconventional mechanisms that circumvent key canonical miRNA processing steps. The unveiling of miRNA diversity has significantly added to our view of the complexity of miRNA function. In this review we present the current understanding of the biological relevance of isomiRs and their potential role in regulating lipid metabolism.
微小 RNA(miRNA)是调控脂质代谢表型的生物途径的关键转录后调控因子。高通量小 RNA 测序技术的最新进展揭示了 miRNA 的复杂和动态组成。具体来说,已经证明单个基因组位点可以产生多个具有不同功能的 miRNA 同种型(isomiR)。有几种产生 isomiR 的机制,包括加工异质性和转录后修饰,如 RNA 编辑、核酸外切酶介导的核苷酸修剪和/或非模板核苷酸添加(NTA)。NTA 位于 miRNA 的 3'-末端,最常见的是尿苷酸化或腺苷酸化事件,由一个或多个核酶转移酶酶催化。3'NTA 可以影响 miRNA 的稳定性和/或活性,并受到生理调节,而 miRNA 5'-末端的修饰可能改变 miRNA 的靶向活性。最近的证据还表明,特定 miRNA 的生物发生,或作为 miRNA 起作用的小 RNA,可以通过规避关键的典型 miRNA 加工步骤的非常规机制发生。miRNA 多样性的揭示大大增加了我们对 miRNA 功能复杂性的认识。在这篇综述中,我们介绍了对 isomiR 的生物学相关性及其在调节脂质代谢中的潜在作用的现有理解。