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反应扩散与细胞-基质黏附之间的相互作用调节早期乳腺癌转移中的多尺度侵袭。

An Interplay Between Reaction-Diffusion and Cell-Matrix Adhesion Regulates Multiscale Invasion in Early Breast Carcinomatosis.

作者信息

Pally Dharma, Pramanik Durjay, Bhat Ramray

机构信息

Department of Molecular Reproduction, Development and Genetics, Indian Institute of Science, Bangalore, India.

出版信息

Front Physiol. 2019 Aug 13;10:790. doi: 10.3389/fphys.2019.00790. eCollection 2019.

Abstract

The progression of cancer in the breast involves multiple reciprocal interactions between malignantly transformed epithelia, surrounding untransformed but affected stromal cells, and the extracellular matrix (ECM) that is remodeled during the process. A quantitative understanding of the relative contribution of such interactions to phenotypes associated with cancer cells can be arrived at through the construction of increasingly complex experimental and computational models. Herein, we introduce a multiscale three-dimensional (3D) organo- and pathotypic experimental assay that approximates, to an unprecedented extent, the histopathological complexity of a tumor disseminating into its surrounding stromal milieu via both bulk and solitary motility dynamics. End point and time-lapse microscopic observations of this assay allow us to study the earliest steps of cancer invasion as well as the dynamical interactions between the epithelial and stromal compartments. We then simulate our experimental observations using the modeling environment Compucell3D that is based on the Glazier-Graner-Hogeweg model. The computational model, which comprises adhesion between cancer cells and the matrices, cell proliferation and apoptosis, and matrix remodeling through reaction-diffusion-based morphogen dynamics, is first trained to phenocopy controls run with the experimental model, wherein one or the other matrices have been removed. The trained computational model successfully predicts phenotypes of the experimental counterparts that are subjected to pharmacological treatments (inhibition of N-linked glycosylation and matrix metalloproteinase activity) and scaffold modulation (alteration of collagen density). Further parametric exploration-based simulations suggest that specific permissive regimes of cell-cell and cell-matrix adhesions, operating in the context of a reaction-diffusion-regulated ECM dynamics, promote multiscale invasion of breast cancer cells and determine the extent to which the latter migrate through their surrounding stroma.

摘要

乳腺癌的进展涉及恶性转化上皮细胞、周围未转化但受影响的基质细胞以及在此过程中发生重塑的细胞外基质(ECM)之间的多种相互作用。通过构建日益复杂的实验和计算模型,可以定量了解这些相互作用对与癌细胞相关表型的相对贡献。在此,我们介绍一种多尺度三维(3D)器官型和病理型实验分析方法,该方法以前所未有的程度模拟了肿瘤通过整体和单独运动动力学扩散到其周围基质环境中的组织病理学复杂性。对该分析方法的终点和延时显微镜观察使我们能够研究癌症侵袭的最早步骤以及上皮和基质区室之间的动态相互作用。然后,我们使用基于Glazier-Graner-Hogeweg模型的Compucell3D建模环境模拟我们的实验观察结果。该计算模型包括癌细胞与基质之间的粘附、细胞增殖和凋亡以及通过基于反应扩散的形态发生动力学进行的基质重塑,首先对其进行训练以模拟在实验模型中运行的对照,其中已去除一种或另一种基质。经过训练的计算模型成功预测了接受药物治疗(抑制N-连接糖基化和基质金属蛋白酶活性)和支架调节(改变胶原蛋白密度)的实验对应物的表型。进一步基于参数探索的模拟表明,在反应扩散调节的ECM动力学背景下运行的细胞-细胞和细胞-基质粘附的特定允许机制促进了乳腺癌细胞的多尺度侵袭,并确定了后者在其周围基质中迁移的程度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/68c7/6700745/1a66dda4693d/fphys-10-00790-g0001.jpg

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