生命早期关键时期IGF-1缺乏通过改变mirna介导的转录后基因调控影响小鼠血管衰老表型:对健康和疾病假说的发育起源的影响。

AGE Pub Date : 2016-08-01 Epub Date: 2016-08-26 DOI:10.1007/s11357-016-9943-9
Stefano Tarantini, Cory B Giles, Jonathan D Wren, Nicole M Ashpole, M Noa Valcarcel-Ares, Jeanne Y Wei, William E Sonntag, Zoltan Ungvari, Anna Csiszar
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引用次数: 33

摘要

流行病学研究结果支持健康和疾病发育起源的概念,表明生命早期发育敏感时期的激素影响对生命后期的血管健康有根本性影响。发育过程中发生的内分泌变化在哺乳动物物种中是高度保守的,包括青春期循环IGF-1水平的急剧增加。本研究旨在描述发育性IGF-1缺乏对血管衰老表型的影响。为了实现这一目标,使用Cre-lox技术(Igf1 f/f小鼠与表达白蛋白驱动的Cre重组酶的小鼠杂交),通过敲低肝脏中的IGF-1诱导小鼠早期内分泌IGF-1缺乏。该模型在发育的青春期周围表现出低循环IGF-1水平,这对衰老的生物学至关重要。由于miRNA是血管衰老表型的重要调节因子,因此在27月龄的动物中研究了早期生活中IGF-1缺乏对主动脉中miRNA表达谱的影响。我们发现,发育性IGF-1缺陷引起脉管系统中miRNA表达的持续晚年变化,这与成年性IGF-1缺陷小鼠(Igf1 f/f小鼠中tbg - cre - aav8介导的IGF-1在5月龄时下调)显著不同。使用一种新的计算方法,我们确定了与IGF-1共表达并与衰老和血管病理生理相关的miRNA靶基因。我们发现,在预测的靶点中,多种细胞外基质相关基因的表达,包括胶原编码基因,在发育性IGF-1缺乏症小鼠中下调。总的来说,在生命早期的关键时期,IGF-1缺乏会导致mirna介导的血管健康关键靶点基因转录后调控的持续变化,这可能导致已知的发育性IGF-1缺乏对晚年心血管的有害影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

IGF-1 deficiency in a critical period early in life influences the vascular aging phenotype in mice by altering miRNA-mediated post-transcriptional gene regulation: implications for the developmental origins of health and disease hypothesis.

IGF-1 deficiency in a critical period early in life influences the vascular aging phenotype in mice by altering miRNA-mediated post-transcriptional gene regulation: implications for the developmental origins of health and disease hypothesis.

IGF-1 deficiency in a critical period early in life influences the vascular aging phenotype in mice by altering miRNA-mediated post-transcriptional gene regulation: implications for the developmental origins of health and disease hypothesis.

IGF-1 deficiency in a critical period early in life influences the vascular aging phenotype in mice by altering miRNA-mediated post-transcriptional gene regulation: implications for the developmental origins of health and disease hypothesis.

Epidemiological findings support the concept of Developmental Origins of Health and Disease, suggesting that early-life hormonal influences during a sensitive period of development have a fundamental impact on vascular health later in life. The endocrine changes that occur during development are highly conserved across mammalian species and include dramatic increases in circulating IGF-1 levels during adolescence. The present study was designed to characterize the effect of developmental IGF-1 deficiency on the vascular aging phenotype. To achieve that goal, early-onset endocrine IGF-1 deficiency was induced in mice by knockdown of IGF-1 in the liver using Cre-lox technology (Igf1 f/f mice crossed with mice expressing albumin-driven Cre recombinase). This model exhibits low-circulating IGF-1 levels during the peripubertal phase of development, which is critical for the biology of aging. Due to the emergence of miRNAs as important regulators of the vascular aging phenotype, the effect of early-life IGF-1 deficiency on miRNA expression profile in the aorta was examined in animals at 27 months of age. We found that developmental IGF-1 deficiency elicits persisting late-life changes in miRNA expression in the vasculature, which significantly differed from those in mice with adult-onset IGF-1 deficiency (TBG-Cre-AAV8-mediated knockdown of IGF-1 at 5 month of age in Igf1 f/f mice). Using a novel computational approach, we identified miRNA target genes that are co-expressed with IGF-1 and associate with aging and vascular pathophysiology. We found that among the predicted targets, the expression of multiple extracellular matrix-related genes, including collagen-encoding genes, were downregulated in mice with developmental IGF-1 deficiency. Collectively, IGF-1 deficiency during a critical period during early in life results in persistent changes in post-transcriptional miRNA-mediated control of genes critical targets for vascular health, which likely contribute to the deleterious late-life cardiovascular effects known to occur with developmental IGF-1 deficiency.

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AGE
AGE 医学-老年医学
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