单细胞转录组学揭示的细胞和组织特异性糖基化途径。

IF 4 Q1 GENETICS & HEREDITY
NAR Genomics and Bioinformatics Pub Date : 2024-12-18 eCollection Date: 2024-12-01 DOI:10.1093/nargab/lqae169
Panagiotis Chrysinas, Shriramprasad Venkatesan, Isaac Ang, Vishnu Ghosh, Changyou Chen, Sriram Neelamegham, Rudiyanto Gunawan
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引用次数: 0

摘要

虽然单细胞研究在生物学的各个分支领域产生了重大影响,但它们在糖科学中却落后了。为了解决这一差距,我们使用最近的糖基化特异性基因本体(GlycoEnzOnto)分析了人类组织和细胞类型Tabula Sapiens数据集中的单细胞糖基因表达。在中位测序(计数)深度,在单个细胞中检测到400个糖原中的约40-50个。随着测序深度的增加,可检测到的糖基因数量达到200个,这表明人类细胞平均表达约一半的糖基因库。我们的分析揭示了糖原和糖通路表达的层次结构:核苷酸-糖合成和转运基因表达量最高,其次是核心酶基因、聚糖修饰和延伸基因,最后是末端修饰基因。有趣的是,相同的细胞类型显示出基于其器官或组织来源的可变糖通路表达,这表明细微的细胞和组织特异性糖基化模式。深入研究糖基因的转录因子(tf),我们发现了不同类型的tf控制糖基化的不同方面:核心生物合成,末端修饰等。我们提出了网络工具来探索在人类细胞/组织类型中调节糖基化的糖原、糖通路和tf之间的相互联系。总的来说,该研究概述了人体多个器官系统的糖基化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cell- and tissue-specific glycosylation pathways informed by single-cell transcriptomics.

While single-cell studies have made significant impacts in various subfields of biology, they lag in the Glycosciences. To address this gap, we analyzed single-cell glycogene expressions in the Tabula Sapiens dataset of human tissues and cell types using a recent glycosylation-specific gene ontology (GlycoEnzOnto). At the median sequencing (count) depth, ∼40-50 out of 400 glycogenes were detected in individual cells. Upon increasing the sequencing depth, the number of detectable glycogenes saturates at ∼200 glycogenes, suggesting that the average human cell expresses about half of the glycogene repertoire. Hierarchies in glycogene and glycopathway expressions emerged from our analysis: nucleotide-sugar synthesis and transport exhibited the highest gene expressions, followed by genes for core enzymes, glycan modification and extensions, and finally terminal modifications. Interestingly, the same cell types showed variable glycopathway expressions based on their organ or tissue origin, suggesting nuanced cell- and tissue-specific glycosylation patterns. Probing deeper into the transcription factors (TFs) of glycogenes, we identified distinct groupings of TFs controlling different aspects of glycosylation: core biosynthesis, terminal modifications, etc. We present webtools to explore the interconnections across glycogenes, glycopathways and TFs regulating glycosylation in human cell/tissue types. Overall, the study presents an overview of glycosylation across multiple human organ systems.

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来源期刊
CiteScore
8.00
自引率
2.20%
发文量
95
审稿时长
15 weeks
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