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AgeAnno:人类细胞衰老注释知识库。

AgeAnno: a knowledgebase of single-cell annotation of aging in human.

机构信息

West China Biomedical Big Data Centre, West China Hospital, Sichuan University, Chengdu, Sichuan 610041, P.R. China.

Med-X Center for Informatics, Sichuan University,Chengdu,Sichuan 610041, P.R. China.

出版信息

Nucleic Acids Res. 2023 Jan 6;51(D1):D805-D815. doi: 10.1093/nar/gkac847.

Abstract

Aging is a complex process that accompanied by molecular and cellular alterations. The identification of tissue-/cell type-specific biomarkers of aging and elucidation of the detailed biological mechanisms of aging-related genes at the single-cell level can help to understand the heterogeneous aging process and design targeted anti-aging therapeutics. Here, we built AgeAnno (https://relab.xidian.edu.cn/AgeAnno/#/), a knowledgebase of single cell annotation of aging in human, aiming to provide comprehensive characterizations for aging-related genes across diverse tissue-cell types in human by using single-cell RNA and ATAC sequencing data (scRNA and scATAC). The current version of AgeAnno houses 1 678 610 cells from 28 healthy tissue samples with ages ranging from 0 to 110 years. We collected 5580 aging-related genes from previous resources and performed dynamic functional annotations of the cellular context. For the scRNA data, we performed analyses include differential gene expression, gene variation coefficient, cell communication network, transcription factor (TF) regulatory network, and immune cell proportionc. AgeAnno also provides differential chromatin accessibility analysis, motif/TF enrichment and footprint analysis, and co-accessibility peak analysis for scATAC data. AgeAnno will be a unique resource to systematically characterize aging-related genes across diverse tissue-cell types in human, and it could facilitate antiaging and aging-related disease research.

摘要

衰老是一个复杂的过程,伴随着分子和细胞的改变。鉴定组织/细胞类型特异性的衰老生物标志物,并在单细胞水平上阐明与衰老相关基因的详细生物学机制,可以帮助理解异质的衰老过程,并设计针对衰老的治疗方法。在这里,我们构建了 AgeAnno(https://relab.xidian.edu.cn/AgeAnno/#/),这是一个人类单细胞衰老注释知识库,旨在通过单细胞 RNA 和 ATAC 测序数据(scRNA 和 scATAC),为人类不同组织-细胞类型中的衰老相关基因提供全面的特征描述。目前的 AgeAnno 版本包含了来自 28 个健康组织样本的 1 678 610 个细胞,年龄从 0 到 110 岁不等。我们从之前的资源中收集了 5580 个衰老相关基因,并对细胞环境进行了动态功能注释。对于 scRNA 数据,我们进行了差异基因表达、基因变异系数、细胞通讯网络、转录因子(TF)调控网络和免疫细胞比例的分析。AgeAnno 还为 scATAC 数据提供了差异染色质可及性分析、基序/TF 富集和足迹分析以及共可及峰分析。AgeAnno 将是一个系统地描述人类不同组织-细胞类型中衰老相关基因的独特资源,它将有助于抗衰老和衰老相关疾病的研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b0a6/9825500/f017ec52ecae/gkac847fig1.jpg

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