Novel Integration of Spatial and Single-Cell Omics Data Sets Enables Deeper Insights into IPF Pathogenesis.

IF 4 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Fei Wang, Liang Jin, Xue Wang, Baoliang Cui, Yingli Yang, Lori Duggan, Annette Schwartz Sterman, Sarah M Lloyd, Lisa A Hazelwood, Neha Chaudhary, Bhupinder Bawa, Lucy A Phillips, Yupeng He, Yu Tian
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引用次数: 0

Abstract

Idiopathic pulmonary fibrosis (IPF) is a progressive lung disease characterized by repetitive alveolar injuries with excessive deposition of extracellular matrix (ECM) proteins. A crucial need in understanding IPF pathogenesis is identifying cell types associated with histopathological regions, particularly local fibrosis centers known as fibroblast foci. To address this, we integrated published spatial transcriptomics and single-cell RNA sequencing (scRNA-seq) transcriptomics and adopted the Query method and the Overlap method to determine cell type enrichments in histopathological regions. Distinct fibroblast cell types are highly associated with fibroblast foci, and transitional alveolar type 2 and aberrant KRT5-/KRT17+ (KRT: keratin) epithelial cells are associated with morphologically normal alveoli in human IPF lungs. Furthermore, we employed laser capture microdissection-directed mass spectrometry to profile proteins. By comparing with another published similar dataset, common differentially expressed proteins and enriched pathways related to ECM structure organization and collagen processing were identified in fibroblast foci. Importantly, cell type enrichment results from innovative spatial proteomics and scRNA-seq data integration accord with those from spatial transcriptomics and scRNA-seq data integration, supporting the capability and versatility of the entire approach. In summary, we integrated spatial multi-omics with scRNA-seq data to identify disease-associated cell types and potential targets for novel therapies in IPF intervention. The approach can be further applied to other disease areas characterized by spatial heterogeneity.

空间和单细胞组学数据集的新整合使对IPF发病机制的深入了解成为可能。
特发性肺纤维化(IPF)是一种以重复肺泡损伤伴细胞外基质(ECM)蛋白过度沉积为特征的进行性肺部疾病。了解IPF发病机制的一个关键需要是确定与组织病理区域相关的细胞类型,特别是被称为成纤维细胞灶的局部纤维化中心。为了解决这个问题,我们整合了已发表的空间转录组学和单细胞RNA测序(scRNA-seq)转录组学,并采用Query方法和重叠方法来确定组织病理区域的细胞类型富集。不同的成纤维细胞类型与成纤维细胞灶高度相关,过渡性肺泡2型和异常的KRT5-/KRT17+ (KRT:角蛋白)上皮细胞与人类IPF肺中形态正常的肺泡相关。此外,我们采用激光捕获显微解剖定向质谱分析蛋白质。通过与另一个已发表的类似数据集进行比较,在成纤维细胞灶中发现了与ECM结构组织和胶原加工相关的常见差异表达蛋白和富集途径。重要的是,创新的空间蛋白质组学和scRNA-seq数据整合的细胞类型富集结果与空间转录组学和scRNA-seq数据整合的结果一致,支持了整个方法的能力和多功能性。总之,我们将空间多组学与scRNA-seq数据相结合,以确定疾病相关的细胞类型和IPF干预新疗法的潜在靶点。该方法可进一步应用于其他具有空间异质性的疾病区。
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来源期刊
Proteomes
Proteomes Biochemistry, Genetics and Molecular Biology-Clinical Biochemistry
CiteScore
6.50
自引率
3.00%
发文量
37
审稿时长
11 weeks
期刊介绍: Proteomes (ISSN 2227-7382) is an open access, peer reviewed journal on all aspects of proteome science. Proteomes covers the multi-disciplinary topics of structural and functional biology, protein chemistry, cell biology, methodology used for protein analysis, including mass spectrometry, protein arrays, bioinformatics, HTS assays, etc. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the length of papers. Scope: -whole proteome analysis of any organism -disease/pharmaceutical studies -comparative proteomics -protein-ligand/protein interactions -structure/functional proteomics -gene expression -methodology -bioinformatics -applications of proteomics
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