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肺部肿瘤免疫微环境的单细胞空间景观。

Single-cell spatial landscapes of the lung tumour immune microenvironment.

机构信息

Rosalind and Morris Goodman Cancer Institute, McGill University, Montreal, Quebec, Canada.

Department of Human Genetics, McGill University, Montreal, Quebec, Canada.

出版信息

Nature. 2023 Feb;614(7948):548-554. doi: 10.1038/s41586-022-05672-3. Epub 2023 Feb 1.

Abstract

Single-cell technologies have revealed the complexity of the tumour immune microenvironment with unparalleled resolution. Most clinical strategies rely on histopathological stratification of tumour subtypes, yet the spatial context of single-cell phenotypes within these stratified subgroups is poorly understood. Here we apply imaging mass cytometry to characterize the tumour and immunological landscape of samples from 416 patients with lung adenocarcinoma across five histological patterns. We resolve more than 1.6 million cells, enabling spatial analysis of immune lineages and activation states with distinct clinical correlates, including survival. Using deep learning, we can predict with high accuracy those patients who will progress after surgery using a single 1-mm tumour core, which could be informative for clinical management following surgical resection. Our dataset represents a valuable resource for the non-small cell lung cancer research community and exemplifies the utility of spatial resolution within single-cell analyses. This study also highlights how artificial intelligence can improve our understanding of microenvironmental features that underlie cancer progression and may influence future clinical practice.

摘要

单细胞技术以无与伦比的分辨率揭示了肿瘤免疫微环境的复杂性。大多数临床策略依赖于肿瘤亚型的组织病理学分层,但这些分层亚组中单细胞表型的空间背景尚不清楚。在这里,我们应用成像质谱细胞术来描述来自 416 名患有肺腺癌的患者样本的肿瘤和免疫学特征,这些患者跨越五个组织学模式。我们解析了超过 160 万个细胞,能够对免疫谱系和具有不同临床相关性(包括生存)的激活状态进行空间分析。使用深度学习,我们可以使用单个 1 毫米肿瘤核心非常准确地预测那些手术后会进展的患者,这对于手术切除后的临床管理可能具有信息意义。我们的数据集代表了非小细胞肺癌研究界的宝贵资源,体现了单细胞分析中空间分辨率的实用性。这项研究还强调了人工智能如何能够提高我们对癌症进展所基于的微环境特征的理解,并可能影响未来的临床实践。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0dec/9931585/656e7cbe9f41/41586_2022_5672_Fig1_HTML.jpg

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