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单细胞多模态分析鉴定类风湿关节炎患者滑膜成纤维细胞和模拟 TNF 驱动的关节炎中的共同调控程序。

Single-cell multimodal analysis identifies common regulatory programs in synovial fibroblasts of rheumatoid arthritis patients and modeled TNF-driven arthritis.

机构信息

Institute for Fundamental Biomedical Research, Biomedical Sciences Research Center "Alexander Fleming", Vari, Greece.

Institute for Bioinnovation, Biomedical Sciences Research Center "Alexander Fleming", Vari, Greece.

出版信息

Genome Med. 2022 Jul 26;14(1):78. doi: 10.1186/s13073-022-01081-3.

Abstract

BACKGROUND

Synovial fibroblasts (SFs) are specialized cells of the synovium that provide nutrients and lubricants for the proper function of diarthrodial joints. Recent evidence appreciates the contribution of SF heterogeneity in arthritic pathologies. However, the normal SF profiles and the molecular networks that govern the transition from homeostatic to arthritic SF heterogeneity remain poorly defined.

METHODS

We applied a combined analysis of single-cell (sc) transcriptomes and epigenomes (scRNA-seq and scATAC-seq) to SFs derived from naïve and hTNFtg mice (mice that overexpress human TNF, a murine model for rheumatoid arthritis), by employing the Seurat and ArchR packages. To identify the cellular differentiation lineages, we conducted velocity and trajectory analysis by combining state-of-the-art algorithms including scVelo, Slingshot, and PAGA. We integrated the transcriptomic and epigenomic data to infer gene regulatory networks using ArchR and custom-implemented algorithms. We performed a canonical correlation analysis-based integration of murine data with publicly available datasets from SFs of rheumatoid arthritis patients and sought to identify conserved gene regulatory networks by utilizing the SCENIC algorithm in the human arthritic scRNA-seq atlas.

RESULTS

By comparing SFs from healthy and hTNFtg mice, we revealed seven homeostatic and two disease-specific subsets of SFs. In healthy synovium, SFs function towards chondro- and osteogenesis, tissue repair, and immune surveillance. The development of arthritis leads to shrinkage of homeostatic SFs and favors the emergence of SF profiles marked by Dkk3 and Lrrc15 expression, functioning towards enhanced inflammatory responses and matrix catabolic processes. Lineage inference analysis indicated that specific Thy1+ SFs at the root of trajectories lead to the intermediate Thy1+/Dkk3+/Lrrc15+ SF states and culminate in a destructive and inflammatory Thy1- SF identity. We further uncovered epigenetically primed gene programs driving the expansion of these arthritic SFs, regulated by NFkB and new candidates, such as Runx1. Cross-species analysis of human/mouse arthritic SF data determined conserved regulatory and transcriptional networks.

CONCLUSIONS

We revealed a dynamic SF landscape from health to arthritis providing a functional genomic blueprint to understand the joint pathophysiology and highlight the fibroblast-oriented therapeutic targets for combating chronic inflammatory and destructive arthritic disease.

摘要

背景

滑膜成纤维细胞(SFs)是滑膜中特化的细胞,为关节的正常功能提供营养和润滑剂。最近的证据表明 SF 异质性在关节炎病理中的作用。然而,正常 SF 特征以及调控从稳态到关节炎 SF 异质性的分子网络仍未得到充分定义。

方法

我们应用单细胞转录组和表观基因组(scRNA-seq 和 scATAC-seq)的联合分析,使用 Seurat 和 ArchR 包分析来自 naïve 和 hTNFtg 小鼠(过度表达人 TNF 的小鼠,一种类风湿关节炎的小鼠模型)的 SFs。为了鉴定细胞分化谱系,我们通过结合包括 scVelo、Slingshot 和 PAGA 在内的最先进算法进行速度和轨迹分析。我们整合转录组和表观基因组数据,使用 ArchR 和自定义实现的算法推断基因调控网络。我们进行了基于典型相关分析的整合,将来自类风湿关节炎患者 SF 的公共数据集与小鼠数据进行整合,并利用人类关节炎 scRNA-seq 图谱中的 SCENIC 算法来识别保守的基因调控网络。

结果

通过比较健康和 hTNFtg 小鼠的 SFs,我们揭示了 7 个稳态和 2 个疾病特异性的 SF 亚群。在健康的滑膜中,SFs 具有软骨和成骨、组织修复和免疫监视功能。关节炎的发展导致稳态 SFs 的减少,并有利于 SF 特征的出现,其特征是 Dkk3 和 Lrrc15 的表达,这些特征促进了增强的炎症反应和基质代谢过程。谱系推断分析表明,特定的 Thy1+SFs 在轨迹的根部导致中间的 Thy1+/Dkk3+/Lrrc15+SF 状态,并最终导致破坏性和炎症性的 Thy1-SF 身份。我们进一步揭示了驱动这些关节炎 SF 扩张的表观遗传启动基因程序,这些程序由 NFkB 和新的候选基因(如 Runx1)调控。人类/小鼠关节炎 SF 数据的跨物种分析确定了保守的调控和转录网络。

结论

我们揭示了从健康到关节炎的动态 SF 景观,为理解关节病理生理学提供了一个功能基因组蓝图,并突出了针对慢性炎症和破坏性关节炎疾病的以成纤维细胞为导向的治疗靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/424c/9316748/6dcb5656768e/13073_2022_1081_Fig1_HTML.jpg

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