在SMA小鼠模型中,心功能的改变与脂肪酸代谢的中断相关。

IF 3.1 2区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Nithya N Nair, Rachel A Kline, Imogen Boyd, Meenakshi Anikumar, Adrian Thomson, Douglas J Lamont, Gillian A Gray, Thomas M Wishart, Lyndsay M Murray
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引用次数: 0

摘要

脊髓性肌萎缩症是一种常染色体显性疾病,由SMN1基因突变和缺失引起,主要发生在儿童时期。虽然主要是一种运动神经元疾病,但在患者和小鼠模型中都描述了非神经元组织的缺陷。在这里,我们对Smn2B/-小鼠SMA模型的心脏进行了详细的研究,并揭示了先前在更严重的SMA小鼠模型中描述的脑室壁变薄。然而,正如在SMN∆7模型中证实的那样,由于SMA小鼠的体型较小,大多数结构变化都得到了解决。超声心动图显示收缩功能增加,这在小鼠亚群中尤为明显,总体纵向应变增加,共同表明Smn2B/-小鼠模型中心脏应激增加。我们使用TMT蛋白质组学对Smn2B/-小鼠心脏的蛋白质组进行了纵向研究,揭示了LXR/RXR信号的进行性失调,LXR/RXR信号是脂质代谢的调节剂。我们进一步发现Smn2B/-、Smn-/-、SMN2、SmnΔ7and SmnΔ7/Δ7、SMN2小鼠模型在出生当天脂质代谢出现一致的扰动。这项工作表明,尽管心脏的结构变化可能因未能考虑到身体大小而被夸大,但功能缺陷可能导致心脏随后衰竭。我们在小鼠模型中发现了一个共同的分子特征,指出脂质代谢失调,并建议操纵LXR/RXR信号提供了影响这些途径的机会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Alterations in cardiac function correlate with a disruption in fatty acid metabolism in a mouse model of SMA.

Spinal Muscular Atrophy is an autosomal dominant disease caused by mutations and deletions within the SMN1 gene, with predominantly childhood onset. Although primarily a motor neuron disease, defects in non-neuronal tissues are described in both patients and mouse models. Here, we have undertaken a detailed study of the heart in the Smn2B/- mouse models of SMA, and reveal a thinning of the ventriclar walls as previously described in more severe mouse models of SMA. However most structural changes are resolved by accounting for the smaller body size of the SMA mouse, as was also confirmed in the SMN∆7 model. Echocardiography revealed increased systolic function, which was particularly pronounced in subsets of mice and an increase in global longitudinal strain, collectively indicative of increased cardiac stress in the Smn2B/- mouse model. We have used TMT proteomics to perform a longitudinal study of the proteome of the hearts of Smn2B/- mice and reveal a progressive dysregulation of LXR/RXR signalling which is a regulator of lipid metabolism. We further show consistent perturbations in lipid metabolism in the Smn2B/-, Smn-/-;SMN2;SmnΔ7and SmnΔ7/Δ7;SMN2 mouse models of SMA on the day of birth. This work indicates that although structural changes in the heart can be overstated by failing to account for body size, there are functional defects which could predispose the heart to subsequent failure. We identify a common molecular signature across mouse models pointing to a dysregulation in lipid metabolism, and suggest that manipulation of LXR/RXR signalling offers an opportunity to impact upon these pathways.

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来源期刊
Human molecular genetics
Human molecular genetics 生物-生化与分子生物学
CiteScore
6.90
自引率
2.90%
发文量
294
审稿时长
2-4 weeks
期刊介绍: Human Molecular Genetics concentrates on full-length research papers covering a wide range of topics in all aspects of human molecular genetics. These include: the molecular basis of human genetic disease developmental genetics cancer genetics neurogenetics chromosome and genome structure and function therapy of genetic disease stem cells in human genetic disease and therapy, including the application of iPS cells genome-wide association studies mouse and other models of human diseases functional genomics computational genomics In addition, the journal also publishes research on other model systems for the analysis of genes, especially when there is an obvious relevance to human genetics.
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