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Engineered culture models for studies of tumor-microenvironment interactions

机译:用于研究肿瘤-微环境相互作用的工程培养模型

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Heterogeneous microenvironmental conditions play critical roles in cancer pathogenesis and therapy resistance and arise from changes in tissue dimensionality, cell-extracellular matrix (ECM) interactions, soluble factor signaling, oxygen as well as metabolic gradients, and exogeneous biomechanical cues. Traditional cell culture approaches are restricted in their ability to mimic this complexity with physiological relevance, offering only partial explanation as to why novel therapeutic compounds are frequently efficacious in vitro but disappoint in preclinical and clinical studies. In an effort to overcome these limitations, physical sciences-based strategies have been employed to model specific aspects of the cancer microenvironment. Although these strategies offer promise to reveal the contributions of microenvironmental parameters on tumor initiation, progression, and therapy resistance, they, too, frequently suffer from limitations. This review highlights physicochemical and biological key features of the tumor microenvironment, critically discusses advantages and limitations of current engineering strategies, and provides a perspective on future opportunities for engineered tumor models.
机译:异质性微环境条件在癌症发病机理和治疗抗性中起着关键作用,并起因于组织尺寸,细胞-细胞外基质(ECM)相互作用,可溶性因子信号传导,氧以及代谢梯度和外源性生物力学提示的变化。传统的细胞培养方法在模仿具有生理相关性的复杂性方面的能力受到限制,仅提供了部分解释为何新型治疗性化合物在体外经常有效但在临床前和临床研究中令人失望的原因。为了克服这些局限性,基于物理科学的策略已被用来模拟癌症微环境的特定方面。尽管这些策略有望揭示微环境参数对肿瘤发生,进展和治疗抵抗的贡献,但它们也经常遭受局限。这篇综述突出了肿瘤微环境的理化和生物学关键特征,严格地讨论了当前工程策略的优点和局限性,并为工程肿瘤模型的未来机会提供了前景。

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