非洲绿猴脑脊液和血浆表观遗传年龄的蛋白质组学特征。

IF 7.1 1区 医学 Q1 Biochemistry, Genetics and Molecular Biology
Aging Cell Pub Date : 2025-07-29 DOI:10.1111/acel.70168
John D. Elsworth, Albert Neutzner, Julien Roux, Juozas Gordevicius, Milda Milciute, Loveness Dzikiti, Dustin R. Wakeman, Brooke Danielsson, Cavit Agca, Matthew S. Lawrence
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引用次数: 0

摘要

减缓衰老过程或减轻其对健康影响的策略依赖于衰老的微创生物标志物的验证,这些标志物可用于跟踪衰老并测试抗衰老干预措施的有效性。对非人类灵长类物种衰老的研究为实现这些目标提供了一个强有力的转化方法,避免了遗传和环境暴露的巨大差异,这些差异使人类衰老研究困惑。由于表观遗传年龄似乎可以预测生物衰老,与表观遗传衰老相关的生物标志物在识别衰老进程中的个体差异和记录抗衰老策略的影响方面应该特别有价值。蛋白质是大多数信号通路的最终效应器,这表明循环蛋白水平的改变可能为衰老提供信息丰富且有价值的定量指标。因此,对从一大群非洲绿猴收集的匹配CSF和血浆样本进行了蛋白质组学分析,表观遗传年龄从年轻到年老,由血液DNA的差异甲基化决定。除了使用线性统计模型分析数据外,还采用了梯度增强机器学习技术,不仅可以识别与衰老进程相关的个体CSF和血浆蛋白,还可以识别可作为全球衰老和衰老的特定方面(如炎症)预测因子的蛋白质组。总的来说,本研究确定了新的脑脊液和血浆蛋白靶点,以了解衰老生物学,并确定了生物标志物,以跟踪翻译相关的非人灵长类动物模型中生物衰老速率的变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Proteomic Signatures of Epigenetic Age in African Green Monkey Cerebrospinal Fluid and Plasma

Proteomic Signatures of Epigenetic Age in African Green Monkey Cerebrospinal Fluid and Plasma

Strategies to slow the aging process or mitigate its consequences on health rely on the validation of minimally-invasive biomarkers of aging that can be used to track aging and test the effectiveness of antiaging interventions. Study of aging in a nonhuman primate species offers a robust translational approach to achieving these aims, avoiding wide differences in genetics and environmental exposures that confound human aging studies. As epigenetic age appears to predict biological aging, biomarkers linked to epigenetic aging should be especially valuable in identifying individual differences in aging progression and documenting the impact of antiaging strategies. Proteins are the final effectors in most signaling pathways, indicating that alteration in levels of circulating proteins potentially offers an informative and valuable quantitative index of aging. Accordingly, a proteomic analysis was conducted on matching CSF and plasma samples collected from a large group of African green monkeys, with epigenetic ages ranging from young to old as determined by differential methylation of blood DNA. In addition to analyzing the data with linear statistical models, a gradient boosting machine learning technique was employed to identify not only individual CSF and plasma proteins that correlated with aging progression but also groups of proteins that could be used as predictors of global aging and of specialized aspects of aging such as inflammation. Overall, this study identified new CSF and plasma protein targets for understanding aging biology, together with identifying biomarkers to track changes in the rate of biological aging in a translationally relevant nonhuman primate model.

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来源期刊
Aging Cell
Aging Cell 生物-老年医学
CiteScore
14.40
自引率
2.60%
发文量
212
审稿时长
8 weeks
期刊介绍: Aging Cell, an Open Access journal, delves into fundamental aspects of aging biology. It comprehensively explores geroscience, emphasizing research on the mechanisms underlying the aging process and the connections between aging and age-related diseases.
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