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Systematic Screening of Chemokines to Identify Candidates to Model and Create Ectopic Lymph Node Structures for Cancer Immunotherapy

机译:趋化因子的系统筛选以识别候选人以建模和创建用于癌症免疫治疗的异位淋巴结结构

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摘要

The induction of ectopic lymph node structures (ELNs) holds great promise to augment immunotherapy against multiple cancers including metastatic melanoma, in which ELN formation has been associated with a unique immune-related gene expression signature composed of distinct chemokines. To investigate the therapeutic potential of ELNs induction, preclinical models of ELNs are needed for interrogation of these chemokines. Computational models provide a non-invasive, cost-effective method to investigate leukocyte trafficking in the tumor microenvironment, but parameterizing such models is difficult due to differing assay conditions and contexts among the literature. To better achieve this, we systematically performed microchemotaxis assays on purified immune subsets including human pan-T cells, CD4+ T cells, CD8+ T cells, B cells, and NK cells, with 49 recombinant chemokines using a singular technique, and standardized conditions resulting in a dataset representing 238 assays. We then outline a groundwork computational model that can simulate cellular migration in the tumor microenvironment in response to a chemoattractant gradient created from stromal, lymphoid, or antigen presenting cell interactions. The resulting model can then be parameterized with standardized data, such as the dataset presented here, and demonstrates how a computational approach can help elucidate developing ELNs and their impact on tumor progression.
机译:异位淋巴结结构(ELNs)的诱导具有广阔的前景,有望增强针对多种癌症的免疫疗法,包括转移性黑色素瘤,其中ELN的形成与独特的由免疫趋化因子组成的免疫相关基因表达特征相关。为了研究ELNs的治疗潜力,需要对这些趋化因子进行审讯的ELN临床前模型。计算模型提供了一种非侵入性,经济高效的方法来研究肿瘤微环境中的白细胞运输,但是由于文献中不同的测定条件和环境,因此很难对这些模型进行参数化。为了更好地实现此目的,我们系统地对纯化的免疫亚群进行了微趋化分析,包括人的pan-T细胞,CD4 + T细胞,CD8 + T细胞,B细胞和NK细胞,使用单一技术,使用49种重组趋化因子,并在标准化条件下生成代表238种测定的数据集。然后,我们概述了一个基础计算模型,该模型可以模拟在肿瘤微环境中的细胞迁移,以响应由基质,淋巴或抗原呈递细胞相互作用产生的趋化性梯度。然后,可以使用标准化数据(例如此处提供的数据集)对生成的模型进行参数化,并演示一种计算方法如何帮助阐明发育中的ELN及其对肿瘤进展的影响。

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