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Beta Cell 5′-Shifted isomiRs Are Candidate Regulatory Hubs in Type 2 Diabetes

机译:Beta细胞5移位的isomiRs是2型糖尿病的候选调节中心

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摘要

Next-generation deep sequencing of small RNAs has unveiled the complexity of the microRNA (miRNA) transcriptome, which is in large part due to the diversity of miRNA sequence variants (“isomiRs”). Changes to a miRNA’s seed sequence (nucleotides 2–8), including shifted start positions, can redirect targeting to a dramatically different set of RNAs and alter biological function. We performed deep sequencing of small RNA from mouse insulinoma (MIN6) cells (widely used as a surrogate for the study of pancreatic beta cells) and developed a bioinformatic analysis pipeline to profile isomiR diversity. Additionally, we applied the pipeline to recently published small RNA-seq data from primary human beta cells and whole islets and compared the miRNA profiles with that of MIN6. We found that: (1) the miRNA expression profile in MIN6 cells is highly correlated with those of primary human beta cells and whole islets; (2) miRNA loci can generate multiple highly expressed isomiRs with different 5′-start positions (5′-isomiRs); (3) isomiRs with shifted start positions (5′-shifted isomiRs) are highly expressed, and can be as abundant as their unshifted counterparts (5′-reference miRNAs). Finally, we identified 10 beta cell miRNA families as candidate regulatory hubs in a type 2 diabetes (T2D) gene network. The most significant candidate hub was miR-29, which we demonstrated regulates the mRNA levels of several genes critical to beta cell function and implicated in T2D. Three of the candidate miRNA hubs were novel 5′-shifted isomiRs: miR-375+1, miR-375-1 and miR-183-5p+1. We showed by in silico target prediction and in vitro transfection studies that both miR-375+1 and miR-375-1 are likely to target an overlapping, but distinct suite of beta cell genes compared to canonical miR-375. In summary, this study characterizes the isomiR profile in beta cells for the first time, and also highlights the potential functional relevance of 5′-shifted isomiRs to T2D.
机译:下一代小RNA的深度测序揭示了microRNA(miRNA)转录组的复杂性,这在很大程度上归因于miRNA序列变体(“ isomiRs”)的多样性。对miRNA种子序列(核苷酸2-8)的变化(包括起始位置发生了变化),可以将靶向重定向到一组截然不同的RNA,并改变生物学功能。我们对小鼠胰岛素瘤(MIN6)细胞(广泛用作胰腺β细胞研究的替代品)的小RNA进行了深度测序,并开发了生物信息学分析流程来描述isomiR多样性。此外,我们将管道应用于最近发布的来自人类原代β细胞和整个胰岛的小RNA-seq数据,并将miRNA谱图与MIN6谱图进行了比较。我们发现:(1)MIN6细胞中的miRNA表达谱与原代人β细胞和整个胰岛高度相关; (2)miRNA基因座可产生多个具有不同5'-起始位置(5'-isomiRs)的高度表达的isomiRs; (3)具有起始位置偏移的isomiRs(5'偏移的isomiRs)高度表达,并且可以与其未偏移的对应物(5'-参考miRNA)一样丰富。最后,我们确定了10个β细胞miRNA家族作为2型糖尿病(T2D)基因网络中的候选调控中心。最重要的候选中心是miR-29,我们证明了它调节了几个对β细胞功能至关重要且与T2D有关的基因的mRNA水平。候选miRNA集线器中的三个是新的5'移位的isomiR:miR-375 + 1,miR-375-1和miR-183-5p + 1。通过计算机靶标预测和体外转染研究,我们发现与标准miR-375相比,miR-375 + 1和miR-375-1都可能靶向重叠但截然不同的β细胞基因组。总而言之,这项研究首次表征了β细胞中的isomiR谱,并强调了5'移位的isomiR与T2D的潜在功能相关性。

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