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Predicting Confined 1D Cell Migration from Parameters Calibrated to a 2D Motor-Clutch Model

机译:从校准到2D电动离合器模型的参数预测限制1D细胞迁移

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摘要

Biological tissues contain micrometer-scale gaps and pores, including those found within extracellular matrix fiber networks, between tightly packed cells, and between blood vessels or nerve bundles and their associated basement membranes. These spaces restrict cell motion to a single-spatial dimension (1D), a feature that is not captured in traditional in vitro cell migration assays performed on flat, unconfined two-dimensional (2D) substrates. Mechanical confinement can variably influence cell migration behaviors, and it is presently unclear whether the mechanisms used for migration in 2D unconfined environments are relevant in 1D confined environments. Here, we assessed whether a cell migration simulator and associated parameters previously measured for cells on 2D unconfined compliant hydrogels could predict 1D confined cell migration in microfluidic channels. We manufactured microfluidic devices with narrow channels (60-μm2 rectangular cross-sectional area) and tracked human glioma cells that spontaneously migrated within channels. Cell velocities (vexp = 0.51 ± 0.02 μm min−1) were comparable to brain tumor expansion rates measured in the clinic. Using motor-clutch model parameters estimated from cells on unconfined 2D planar hydrogel substrates, simulations predicted similar migration velocities (vsim = 0.37 ± 0.04 μm min−1) and also predicted the effects of drugs targeting the motor-clutch system or cytoskeletal assembly. These results are consistent with glioma cells utilizing a motor-clutch system to migrate in confined environments.
机译:生物组织含有微米级间隙和孔,包括细胞外基质纤维网络中的那些,在紧密包装的细胞之间,以及血管或神经束之间以及它们的相关基底膜之间。这些空间将细胞运动限制为单个空间尺寸(1D),该特征在于在平坦的,非整合的二维(2D)基板上进行的传统体外细胞迁移测定中未被捕获的特征。机械限制可以可变地影响细胞迁移行为,目前目前不清楚用于在2D非整理环境中迁移的机制是否在1D限制环境中相关。这里,我们评估了先前针对2D非整合的柔顺水凝胶上的细胞的细胞迁移模拟器和相关的参数是否可以预测微流体通道中的1D限制细胞迁移。我们制造了具有窄通道(60μm2矩形横截面积)的微流体装置,并跟踪了在通道内自发迁移的人胶质瘤细胞。细胞速度(Vexp = 0.51±0.02μmmin-1)与临床中测量的脑肿瘤膨胀率相当。使用从电池估计的电动机 - 离合器模型参数在无凝固的2D平面水凝胶基板上,模拟预测了类似的迁移速度(VSIM = 0.37±0.04μmmin-1),并且还预测了靶向电动机 - 离合器系统或细胞骨骼组件的药物的影响。这些结果与利用电动离合器系统迁移在限制环境中的胶质瘤细胞一致。

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