Mechanical constraints in tumor guide emergent spatial patterns of glioblastoma cancer stem cells

Ngoc Luu , Shuhao Zhang , Raymond H.W. Lam , Weiqiang Chen
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Abstract

The mechanical constraints in the overcrowding glioblastoma (GBM) microenvironment have been implicated in the regulation of tumor heterogeneity and disease progression. Especially, such mechanical cues can alter cellular DNA transcription and give rise to a subpopulation of tumor cells called cancer stem cells (CSCs). These CSCs with stem-like properties are critical drivers of tumorigenesis, metastasis, and treatment resistance. Yet, the biophysical and molecular machinery underlying the emergence of CSCs in tumor remained unexplored. This work employed a two-dimensional micropatterned multicellular model to examine the impact of mechanical constraints arisen from geometric confinement on the emergence and spatial patterning of CSCs in GBM tumor. Our study identified distinct spatial distributions of GBM CSCs in different geometric patterns, where CSCs mostly emerged in the peripheral regions. The spatial pattern of CSCs was found to correspond to the gradients of mechanical stresses resulted from the interplay between the cell-ECM and cell–cell interactions within the confined environment. Further mechanistic study highlighted a Piezo1-RhoA-focal adhesion signaling axis in regulating GBM cell mechanosensing and the subsequent CSC phenotypic transformation. These findings provide new insights into the biophysical origin of the unique spatial pattern of CSCs in GBM tumor and offer potential avenues for targeted therapeutic interventions.

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肿瘤的机械约束引导胶质母细胞瘤肿瘤干细胞涌现的空间模式
过度拥挤胶质母细胞瘤(GBM)微环境中的机械约束与肿瘤异质性和疾病进展的调节有关。特别是,这种机械线索可以改变细胞DNA转录,并产生称为癌症干细胞(CSCs)的肿瘤细胞亚群。这些具有干细胞样特性的CSCs是肿瘤发生、转移和治疗耐药的关键驱动因素。然而,CSCs在肿瘤中出现的生物物理和分子机制仍未被探索。本研究采用二维微模式多细胞模型来研究几何限制对GBM肿瘤中CSCs出现和空间模式的机械约束的影响。我们的研究发现,GBM CSCs在不同的几何模式下具有不同的空间分布,其中CSCs主要出现在周围区域。研究发现,CSCs的空间格局与封闭环境中细胞- ecm和细胞-细胞相互作用产生的机械应力梯度相对应。进一步的机制研究强调了piezo1 - rhoa焦点粘附信号轴在调节GBM细胞机械传感和随后的CSC表型转化中的作用。这些发现为GBM肿瘤中CSCs独特的空间模式的生物物理起源提供了新的见解,并为靶向治疗干预提供了潜在的途径。
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