The Spatial Extracellular Proteomic Tumor Microenvironment Distinguishes Molecular Subtypes of Hepatocellular Carcinoma.

IF 3.8 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS Journal of Proteome Research Pub Date : 2024-07-09 DOI:10.1021/acs.jproteome.4c00099
Jade K Macdonald, Harrison B Taylor, Mengjun Wang, Andrew Delacourt, Christin Edge, David N Lewin, Naoto Kubota, Naoto Fujiwara, Fahmida Rasha, Cesia A Marquez, Atsushi Ono, Shiro Oka, Kazuaki Chayama, Sara Lewis, Bachir Taouli, Myron Schwartz, M Isabel Fiel, Richard R Drake, Yujin Hoshida, Anand S Mehta, Peggi M Angel
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Abstract

Hepatocellular carcinoma (HCC) mortality rates continue to increase faster than those of other cancer types due to high heterogeneity, which limits diagnosis and treatment. Pathological and molecular subtyping have identified that HCC tumors with poor outcomes are characterized by intratumoral collagenous accumulation. However, the translational and post-translational regulation of tumor collagen, which is critical to the outcome, remains largely unknown. Here, we investigate the spatial extracellular proteome to understand the differences associated with HCC tumors defined by Hoshida transcriptomic subtypes of poor outcome (Subtype 1; S1; n = 12) and better outcome (Subtype 3; S3; n = 24) that show differential stroma-regulated pathways. Collagen-targeted mass spectrometry imaging (MSI) with the same-tissue reference libraries, built from untargeted and targeted LC-MS/MS was used to spatially define the extracellular microenvironment from clinically-characterized, formalin-fixed, paraffin-embedded tissue sections. Collagen α-1(I) chain domains for discoidin-domain receptor and integrin binding showed distinctive spatial distribution within the tumor microenvironment. Hydroxylated proline (HYP)-containing peptides from the triple helical regions of fibrillar collagens distinguished S1 from S3 tumors. Exploratory machine learning on multiple peptides extracted from the tumor regions could distinguish S1 and S3 tumors (with an area under the receiver operating curve of ≥0.98; 95% confidence intervals between 0.976 and 1.00; and accuracies above 94%). An overall finding was that the extracellular microenvironment has a high potential to predict clinically relevant outcomes in HCC.

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空间细胞外蛋白质组肿瘤微环境可区分肝细胞癌的分子亚型
由于异质性高,限制了诊断和治疗,肝细胞癌(HCC)死亡率的增长速度持续高于其他癌症类型。病理和分子亚型鉴定发现,预后较差的 HCC 肿瘤以瘤内胶原堆积为特征。然而,肿瘤胶原蛋白的转译和翻译后调控对肿瘤的预后至关重要,而这一点在很大程度上仍不为人所知。在此,我们研究了空间细胞外蛋白质组,以了解与 Hoshida 转录组亚型定义的 HCC 肿瘤相关的差异,即预后较差(亚型 1;S1;n = 12)和预后较好(亚型 3;S3;n = 24)的 HCC 肿瘤显示出不同的胶原调控途径。胶原蛋白靶向质谱成像(MSI)与非靶向和靶向LC-MS/MS建立的同组织参考文献库一起,用于从临床特征、福尔马林固定、石蜡包埋的组织切片中确定细胞外微环境的空间。与盘状蛋白域受体和整合素结合的胶原蛋白α-1(I)链域在肿瘤微环境中显示出独特的空间分布。来自纤维胶原三重螺旋区域的含羟基脯氨酸(HYP)肽将S1和S3肿瘤区分开来。对从肿瘤区域提取的多肽进行探索性机器学习,可区分S1和S3肿瘤(接收者工作曲线下面积≥0.98;95%置信区间在0.976和1.00之间;准确率高于94%)。总体研究结果表明,细胞外微环境在预测 HCC 临床相关结果方面具有很高的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Proteome Research
Journal of Proteome Research 生物-生化研究方法
CiteScore
9.00
自引率
4.50%
发文量
251
审稿时长
3 months
期刊介绍: Journal of Proteome Research publishes content encompassing all aspects of global protein analysis and function, including the dynamic aspects of genomics, spatio-temporal proteomics, metabonomics and metabolomics, clinical and agricultural proteomics, as well as advances in methodology including bioinformatics. The theme and emphasis is on a multidisciplinary approach to the life sciences through the synergy between the different types of "omics".
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