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Quantifying cell-type interactions and their spatial patterns as prognostic biomarkers in follicular lymphoma

机译:量化细胞型相互作用及其空间模式,作为滤泡性淋巴瘤的预后生物标志物

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Background: Observing the spatial pattern of tumour infiltrating lymphocytes in follicular lymphoma can lead to the development of promising novel biomarkers for survival prognosis. We have developed the "Hypothesised Interactions Distribution" (HID) analysis, to quantify the spatial heterogeneity of cell type interactions between lymphocytes in the tumour microenvironment. HID features were extracted to train a machine learning model for survival prediction and their performance was compared to other architectural biomarkers. Scalability of the method was examined by observing interactions between cell types that were identified using 6-plexed im-munofluorescent staining. Methods: Two follicular lymphoma datasets were used in this study; a microarray with tissue cores from patients, stained with CD69, CD3 and FOXP3 using multiplexed brightfield immuno-histochemistry and a second tissue microarray, stained with PD1, PDL1, CD4, FOXP3, CD68 and CDS using immunofluorescence. Spectral deconvolution. nuclei segmentation and cell type classification was carried out, followed by extraction of features based on cell type interaction probabilities. Random Forest classifiers were built to assign patients into groups of different overall survival and the performance of HID features was assessed. Results: HID features constructed over a range of interaction distances were found to significantly predict overall survival in both datasets (p = 0.0363, p = 0.0077). Interactions of specific phenotype pairs, correlated with unfavourable prognosis, could be identified, such as the interactions between CD3~+FOXP3~+ cells and CD3~+CD69~+ cells. Conclusion: Further validation of HID demonstrates its potential for development of clinical biomarkers in follicular lymphoma.
机译:背景:观察滤泡性淋巴瘤中肿瘤浸润淋巴细胞的空间格局可以导致有希望的新的生物标志物的生存预后的发展。我们已经开发了“ Hypothesised相互作用分布”(HID)分析,以量化肿瘤微环境中淋巴细胞之间细胞类型相互作用的空间异质性。提取HID特征以训练机器学习模型以进行生存预测,并将其性能与其他建筑生物标记进行比较。该方法的可扩展性是通过观察细胞类型之间的相互作用来检查的,这些细胞类型使用6重免疫荧光染色进行了鉴定。方法:本研究使用了两个滤泡性淋巴瘤数据集。一个具有来自患者组织核心的微阵列,使用多重明场免疫组织化学技术用CD69,CD3和FOXP3染色;另一个组织微阵列,使用免疫荧光技术,用PD1,PDL1,CD4,FOXP3,CD68和CDS染色。频谱反卷积。进行细胞核分割和细胞类型分类,然后基于细胞类型相互作用概率提取特征。建立随机森林分类器以将患者分为不同的总生存期,并评估HID功能的表现。结果:发现在一系列相互作用距离上构建的HID特征可显着预测两个数据集的总体存活率(p = 0.0363,p = 0.0077)。可以确定特定表型对与不良预后的相互作用,例如CD3〜+ FOXP3〜+细胞与CD3〜+ CD69〜+细胞之间的相互作用。结论:HID的进一步验证表明其在滤泡性淋巴瘤中发展临床生物标志物的潜力。

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