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Inflammation-Induced Alternative Pre-mRNA Splicing in Mouse Alveolar Macrophages

机译:炎症诱导小鼠肺泡巨噬细胞中的替代性前mRNA剪接。

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摘要

Alveolar macrophages serve as central orchestrators of inflammatory responses in the lungs, both initiating their onset and promoting their resolution. However, the mechanisms that program macrophages for these dynamic responses are not fully understood. Over 95% of all mammalian genes undergo alternative pre-mRNA splicing. While alternative splicing has been shown to regulate inflammatory responses in macrophages , it has not been investigated on a genome-wide scale . Here we used RNAseq to investigate alternative pre-mRNA splicing in alveolar macrophages isolated from lipopolysaccharide (LPS)-treated mice during the peak of inflammation and during its resolution. We found that lung inflammation induced substantial alternative pre-mRNA splicing in alveolar macrophages. The number of changes in isoform usage was greatest at the peak of inflammation and involved multiple classes of alternative pre-mRNA splicing events. Comparative pathway analysis of inflammation-induced changes in alternative pre-mRNA splicing and differential gene expression revealed overlap of pathways enriched for immune responses such as chemokine signaling and cellular metabolism. Moreover, alternative pre-mRNA splicing of genes in metabolic pathways differed in tissue resident recruited (blood monocyte-derived) alveolar macrophages and corresponded to changes in core metabolism, including a switch to Warburg-like metabolism in recruited macrophages with increased glycolysis and decreased flux through the tricarboxylic acid cycle.
机译:肺泡巨噬细胞起着肺部炎症反应的中心协调器作用,既开始其发作又促进其消退。但是,尚未完全了解为这些动态响应编程巨噬细胞的机制。所有哺乳动物基因中超过95%经历了替代性的mRNA前剪接。尽管已经显示出选择性剪接可调节巨噬细胞的炎症反应,但尚未在全基因组范围内对其进行研究。在这里,我们使用RNAseq来研究在炎症高峰期及其消退过程中,从脂多糖(LPS)处理的小鼠中分离出的肺泡巨噬细胞中的替代性pre-mRNA剪接。我们发现,肺部炎症会在肺泡巨噬细胞中诱导大量的替代性mRNA表达。在炎症高峰期,同工型使用变化的数量最大,并且涉及多类替代性的前mRNA剪接事件。对炎症诱导的替代性前mRNA剪接和差异基因表达变化的比较途径分析显示,富集了多种免疫应答(例如趋化因子信号传导和细胞代谢)的途径重叠。此外,代谢途径中基因的替代性pre-mRNA剪接在组织驻留募集的(血液单核细胞衍生的)肺泡巨噬细胞中有所不同,并且与核心代谢的变化相对应,包括募集的巨噬细胞中糖酵解增加且通量降低的转向Warburg样代谢通过三羧酸循环。

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