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Phenotype stability under dynamic brain-tumor environment stimuli maps glioblastoma progression in patients

机译:动态脑肿瘤环境刺激下的表型稳定性地图患者的胶质母细胞瘤进展

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Although tumor invasiveness is known to drive glioblastoma (GBM) recurrence, current approaches to treatment assume a fairly simple GBM phenotype transition map. We provide new analyses to estimate the likelihood of reaching or remaining in a phenotype under dynamic, physiologically likely perturbations of stimuli (“phenotype stability”). We show that higher stability values of the motile phenotype (Go) are associated with reduced patient survival. Moreover, induced motile states are capable of driving GBM recurrence. We found that the Dormancy and Go phenotypes are equally represented in advanced GBM samples, with natural transitioning between the two. Furthermore, Go and Grow phenotype transitions are mostly driven by tumor-brain stimuli. These are difficult to regulate directly, but could be modulated by reprogramming tumor-associated cell types. Our framework provides a foundation for designing targeted perturbations of the tumor-brain environment, by assessing their impact on GBM phenotypic plasticity, and is corroborated by analyses of patient data.
机译:虽然已知肿瘤侵袭性驱动胶质母细胞瘤(GBM)复发,但目前的治疗方法采用相当简单的GBM表型过渡图。我们提供新的分析来估计在动态,生理学上可能对刺激的扰动(“表型稳定性”)下达到或保持在表型中的可能性。我们表明,动机表型(GO)的稳定性值较低,与减少的患者存活相关。此外,诱导的动机状态能够驱动GBM复发。我们发现休眠和去表型在高级GBM样品中同样表示,两者之间的自然过渡。此外,GO和增长表型过渡主要由肿瘤血液刺激驱动。这些难以直接调节,但可以通过重新编程肿瘤相关细胞类型来调节。我们的框架通过评估其对GBM表型可塑性的影响,为设计肿瘤脑环境的靶向扰动提供了基础,并且通过对患者数据的分析来证实。

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