矿物质胁迫驱动异染色质损失:血管炎症和钙化的早期先兆。

IF 16.5 1区 医学 Q1 CARDIAC & CARDIOVASCULAR SYSTEMS
Chin Yee Ho, Meng-Ying Wu, Jirapath Thammaphet, Sadia Ahmad, James Ho C S, Lilia Draganova, Grace Anderson, Umesh S Jonnalagadda, Robert Hayward, Rukshana Shroff, Wilson Tan Lek Wen, Anja Verhulst, Roger Foo, Catherine M Shanahan
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引用次数: 0

摘要

背景:血管钙化是一种有害的衰老病理,在慢性肾脏疾病患者中明显加速。Prelamin A是血管平滑肌细胞老化加速钙化的生物标志物,但其机制尚不明确。方法:用腺病毒载体转染血管平滑肌细胞,利用免疫荧光和靶向聚合酶链反应阵列监测表观遗传修饰。在人体血管、诱导前纤层蛋白a表达的小鼠模型和慢性肾脏疾病诱导的钙化大鼠模型中,利用免疫组织化学验证了表观遗传学的发现。转录组学和染色质免疫沉淀随后进行测序分析,以确定受表观遗传景观变化影响的基因靶标。分子工具和抗体阵列被用来监测矿物质失调对异染色质、炎症、衰老和钙化的影响。结果:在这里,我们报道了抑制性异染色质标记H3K9me3和H3K27me3的缺失是由核层功能障碍和矿物质代谢失调引起的血管衰老的早期标志,而矿物质代谢失调调节了关键表观遗传书写者和擦除者的表达。H3K9me3和H3K27me3标记的全局分析和通路分析显示,胰岛素信号通路和自噬通路以及串音DNA损伤和NF-κB(核因子κB)炎症通路的解除与衰老相关分泌表型的早期激活一致。体内表达前纤层蛋白A诱导异染色质丢失,促进炎症和成骨分化,从而导致DNA损伤和衰老等衰老指标。接受透析治疗的儿童和患有慢性肾脏疾病的大鼠的血管在钙化发生前显示prelamin A的积累和异染色质的加速丢失。结论:矿物质代谢失调驱动表观遗传景观和核膜功能障碍的变化,共同促进炎症通路的早期诱导,为下游病理改变提供血管。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mineral Stress Drives Loss of Heterochromatin: An Early Harbinger of Vascular Inflammaging and Calcification.

Background: Vascular calcification is a detrimental aging pathology markedly accelerated in patients with chronic kidney disease. Prelamin A is a biomarker of vascular smooth muscle cell aging that accelerates calcification however the mechanisms remain undefined.

Methods: Vascular smooth muscle cells were transduced with prelamin A using an adenoviral vector and epigenetic modifications were monitored using immunofluorescence and targeted polymerase chain reaction array. Epigenetic findings were verified in vivo using immunohistochemistry in human vessels, in a mouse model of inducible prelamin A expression, and in a rat model of chronic kidney disease-induced calcification. Transcriptomic and chromatin immunoprecipitation followed by sequencing analyses were used to identify gene targets impacted by changes in the epigenetic landscape. Molecular tools and antibody arrays were used to monitor the effects of mineral dysregulation on heterochromatin, inflammation, aging, and calcification.

Results: Here, we report that depletion of the repressive heterochromatin marks, H3K9me3 and H3K27me3, is an early hallmark of vascular aging induced by both nuclear lamina dysfunction and dysregulated mineral metabolism, which act to modulate the expression of key epigenetic writers and erasers. Global analysis of H3K9me3 and H3K27me3 marks and pathway analysis revealed deregulation of insulin signaling and autophagy pathways as well as cross-talking DNA damage and NF-κB (nuclear factor κB) inflammatory pathways consistent with early activation of the senescence-associated secretory phenotype. Expression of prelamin A in vivo induced loss of heterochromatin and promoted inflammation and osteogenic differentiation which preceded aging indices, such as DNA damage and senescence. Vessels from children on dialysis and rats with chronic kidney disease showed prelamin A accumulation and accelerated loss of heterochromatin before the onset of calcification.

Conclusions: Dysregulated mineral metabolism drives changes in the epigenetic landscape and nuclear lamina dysfunction that together promote early induction of inflammaging pathways priming the vasculature for downstream pathological change.

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来源期刊
Circulation research
Circulation research 医学-外周血管病
CiteScore
29.60
自引率
2.00%
发文量
535
审稿时长
3-6 weeks
期刊介绍: Circulation Research is a peer-reviewed journal that serves as a forum for the highest quality research in basic cardiovascular biology. The journal publishes studies that utilize state-of-the-art approaches to investigate mechanisms of human disease, as well as translational and clinical research that provide fundamental insights into the basis of disease and the mechanism of therapies. Circulation Research has a broad audience that includes clinical and academic cardiologists, basic cardiovascular scientists, physiologists, cellular and molecular biologists, and cardiovascular pharmacologists. The journal aims to advance the understanding of cardiovascular biology and disease by disseminating cutting-edge research to these diverse communities. In terms of indexing, Circulation Research is included in several prominent scientific databases, including BIOSIS, CAB Abstracts, Chemical Abstracts, Current Contents, EMBASE, and MEDLINE. This ensures that the journal's articles are easily discoverable and accessible to researchers in the field. Overall, Circulation Research is a reputable publication that attracts high-quality research and provides a platform for the dissemination of important findings in basic cardiovascular biology and its translational and clinical applications.
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