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单细胞 eQTL 分析激活的 T 细胞亚群揭示了疾病风险变异的激活和细胞类型依赖性效应。

Single-cell eQTL analysis of activated T cell subsets reveals activation and cell type-dependent effects of disease-risk variants.

机构信息

La Jolla Institute for Immunology, La Jolla, CA, USA.

Center for Genomic Sciences, National Autonomous University of Mexico, Cuernavaca, Morelos, Mexico.

出版信息

Sci Immunol. 2022 Feb 25;7(68):eabm2508. doi: 10.1126/sciimmunol.abm2508.

Abstract

The impact of genetic variants on cells challenged in biologically relevant contexts has not been fully explored. Here, we activated CD4 T cells from 89 healthy donors and performed a single-cell RNA sequencing assay with >1 million cells to examine cell type-specific and activation-dependent effects of genetic variants. Single-cell expression quantitative trait loci (sc-eQTL) analysis of 19 distinct CD4 T cell subsets showed that the expression of over 4000 genes is significantly associated with common genetic polymorphisms and that most of these genes show their most prominent effects in specific cell types. These genes included many that encode for molecules important for activation, differentiation, and effector functions of T cells. We also found new gene associations for disease-risk variants identified from genome-wide association studies and highlighted the cell types in which their effects are most prominent. We found that biological sex has a major influence on activation-dependent gene expression in CD4 T cell subsets. Sex-biased transcripts were significantly enriched in several pathways that are essential for the initiation and execution of effector functions by CD4 T cells like TCR signaling, cytokines, cytokine receptors, costimulatory, apoptosis, and cell-cell adhesion pathways. Overall, this DICE (Database of Immune Cell Expression, eQTLs, and Epigenomics) subproject highlights the power of sc-eQTL studies for simultaneously exploring the activation and cell type-dependent effects of common genetic variants on gene expression (https://dice-database.org).

摘要

遗传变异对生物相关环境下细胞的影响尚未得到充分探索。在这里,我们激活了 89 位健康供体的 CD4 T 细胞,并进行了超过 100 万细胞的单细胞 RNA 测序分析,以研究细胞类型特异性和激活依赖性的遗传变异效应。对 19 种不同的 CD4 T 细胞亚群进行单细胞表达数量性状基因座(sc-eQTL)分析表明,超过 4000 个基因的表达与常见遗传多态性显著相关,其中大多数基因在特定细胞类型中表现出最显著的效应。这些基因包括许多编码 T 细胞激活、分化和效应功能重要分子的基因。我们还发现了来自全基因组关联研究的疾病风险变异的新基因关联,并强调了其效应最显著的细胞类型。我们发现,生物性别对 CD4 T 细胞亚群中激活依赖性基因表达有重大影响。在几个对 CD4 T 细胞效应功能的启动和执行至关重要的途径中,性别偏向的转录本显著富集,如 TCR 信号、细胞因子、细胞因子受体、共刺激、凋亡和细胞-细胞黏附途径。总体而言,这个 DICE(免疫细胞表达、eQTL 和表观基因组学数据库)子项目突出了 sc-eQTL 研究的力量,可同时探索常见遗传变异对基因表达的激活和细胞类型依赖性影响(https://dice-database.org)。

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