代偿性miRNA网络在心力衰竭认知恢复中的作用。

IF 3.6 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Verena Gisa, Md Rezaul Islam, Dawid Lbik, Raoul Maximilian Hofmann, Tonatiuh Pena, Dennis Manfred Krüger, Susanne Burkhardt, Anna-Lena Schütz, Farahnaz Sananbenesi, Karl Toischer, Andre Fischer
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引用次数: 0

摘要

背景:心力衰竭(HF)与认知障碍和海马功能障碍的风险增加有关,但其潜在的分子机制尚不清楚。本研究旨在探讨microRNA (miRNA)网络在HF小鼠海马依赖性记忆恢复中的作用。方法:采用CaMKIIδC转基因(TG)小鼠作为HF模型,对3、6月龄大鼠海马功能进行评估。记忆表现通过海马体依赖行为任务进行评估。通过小RNA测序分析两个时间点的海马miRNA表达谱。生物信息学分析确定了mirna,这些mirna可能调节先前与hf诱导的认知障碍有关的基因。结果:我们之前已经表明,在3个月大时,CaMKIIδC TG小鼠表现出与海马基因表达失调相关的显著记忆缺陷。在这项研究中,我们发现这些损伤,记忆障碍和海马基因表达,在6个月时不再被检测到,尽管持续的心功能障碍。然而,小RNA测序揭示了海马miRNA表达的动态变化,鉴定出27个miRNA为“代偿性miRNA”,靶向73%的转录本在3个月时失调,但在6个月时恢复。值得注意的是,miR-181a-5p作为中央调控枢纽出现,其下调与恢复的记忆功能一致。结论:这些发现表明,尽管心脏病理持续,但miRNA网络有助于HF患者海马功能的恢复,并为记忆损伤提供了重要的代偿机制。更好地了解这些代偿性miRNA机制可能为治疗hf相关认知功能障碍提供新的治疗靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Role of Compensatory miRNA Networks in Cognitive Recovery from Heart Failure.

Background: Heart failure (HF) is associated with an increased risk of cognitive impairment and hippocampal dysfunction, yet the underlying molecular mechanisms remain poorly understood. This study aims to investigate the role of microRNA (miRNA) networks in hippocampus-dependent memory recovery in a mouse model of HF. Methods: CaMKIIδC transgenic (TG) mice, a model for HF, were used to assess hippocampal function at 3 and 6 months of age. Memory performance was evaluated using hippocampus-dependent behavioral tasks. Small RNA sequencing was performed to analyze hippocampal miRNA expression profiles across both time points. Bioinformatic analyses identified miRNAs that potentially regulate genes previously implicated in HF-induced cognitive impairment. Results: We have previously shown that at 3 months of age, CaMKIIδC TG mice exhibited significant memory deficits associated with dysregulated hippocampal gene expression. In this study, we showed that these impairments, memory impairment and hippocampal gene expression, were no longer detectable at 6 months, despite persistent cardiac dysfunction. However, small RNA sequencing revealed a dynamic shift in hippocampal miRNA expression, identifying 27 miRNAs as "compensatory miRs" that targeted 73% of the transcripts dysregulated at 3 months but reinstated by 6 months. Notably, miR-181a-5p emerged as a central regulatory hub, with its downregulation coinciding with restored memory function. Conclusions: These findings suggest that miRNA networks contribute to the restoration of hippocampal function in HF despite continued cardiac pathology and provide an important compensatory mechanism towards memory impairment. A better understanding of these compensatory miRNA mechanisms may provide novel therapeutic targets for managing HF-related cognitive dysfunction.

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来源期刊
Non-Coding RNA
Non-Coding RNA Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
6.70
自引率
4.70%
发文量
74
审稿时长
10 weeks
期刊介绍: Functional studies dealing with identification, structure-function relationships or biological activity of: small regulatory RNAs (miRNAs, siRNAs and piRNAs) associated with the RNA interference pathway small nuclear RNAs, small nucleolar and tRNAs derived small RNAs other types of small RNAs, such as those associated with splice junctions and transcription start sites long non-coding RNAs, including antisense RNAs, long ''intergenic'' RNAs, intronic RNAs and ''enhancer'' RNAs other classes of RNAs such as vault RNAs, scaRNAs, circular RNAs, 7SL RNAs, telomeric and centromeric RNAs regulatory functions of mRNAs and UTR-derived RNAs catalytic and allosteric (riboswitch) RNAs viral, transposon and repeat-derived RNAs bacterial regulatory RNAs, including CRISPR RNAS Analysis of RNA processing, RNA binding proteins, RNA signaling and RNA interaction pathways: DICER AGO, PIWI and PIWI-like proteins other classes of RNA binding and RNA transport proteins RNA interactions with chromatin-modifying complexes RNA interactions with DNA and other RNAs the role of RNA in the formation and function of specialized subnuclear organelles and other aspects of cell biology intercellular and intergenerational RNA signaling RNA processing structure-function relationships in RNA complexes RNA analyses, informatics, tools and technologies: transcriptomic analyses and technologies development of tools and technologies for RNA biology and therapeutics Translational studies involving long and short non-coding RNAs: identification of biomarkers development of new therapies involving microRNAs and other ncRNAs clinical studies involving microRNAs and other ncRNAs.
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