Complex Tissue Regeneration Department, MERLN Institute for Technology Inspired Regenerative Medicine, University of Maastricht, Universiteitssingel, Maastricht, The Netherlands.
Center for Biomedical Research (CIBM)/Biopathology and Regenerative Medicine Institute (IBIMER), University of Granada, Granada, Spain.
Med Res Rev. 2022 Sep;42(5):1978-2001. doi: 10.1002/med.21914. Epub 2022 Jun 16.
The complexity of the tumor microenvironment (TME) together with the development of the metastatic process are the main reasons for the failure of conventional anticancer treatment. In recent years, there is an increasing need to advance toward advanced in vitro models of cancer mimicking TME and simulating metastasis to understand the associated mechanisms that are still unknown, and to be able to develop personalized therapy. In this review, the commonly used alternatives and latest advances in biofabrication of tumor-on-chips, which allow the generation of the most sophisticated and optimized models for recapitulating the tumor process, are presented. In addition, the advances that have allowed these new models in the area of metastasis, cancer stem cells, and angiogenesis are summarized, as well as the recent integration of multiorgan-on-a-chip systems to recapitulate natural metastasis and pharmacological screening against it. We also analyze, for the first time in the literature, the normative and regulatory framework in which these models could potentially be found, as well as the requirements and processes that must be fulfilled to be commercially implemented as in vitro study model. Moreover, we are focused on the possible regulatory pathways for their clinical application in precision medicine and decision making through the generation of personalized models with patient samples. In conclusion, this review highlights the synergistic combination of three-dimensional bioprinting systems with the novel tumor/metastasis/multiorgan-on-a-chip systems to generate models for both basic research and clinical applications to have devices useful for personalized oncology.
肿瘤微环境(TME)的复杂性以及转移过程的发展是常规抗癌治疗失败的主要原因。近年来,人们越来越需要推进癌症的先进体外模型,模拟 TME 并模拟转移,以了解相关的未知机制,并能够开发个性化治疗。在这篇综述中,介绍了常用于模拟肿瘤微环境的肿瘤芯片的生物制造方法和最新进展,这些方法可以生成最复杂和最优化的模型来再现肿瘤过程。此外,还总结了这些新模型在转移、癌症干细胞和血管生成领域的最新进展,以及最近多器官芯片系统的整合,以再现自然转移并对其进行药物筛选。我们还首次在文献中分析了这些模型可能存在的规范和监管框架,以及为了将其作为体外研究模型进行商业实施而必须满足的要求和流程。此外,我们专注于通过生成具有患者样本的个性化模型,为精准医学和决策制定提供可能的监管途径,以实现其临床应用。总之,这篇综述强调了三维生物打印系统与新型肿瘤/转移/多器官芯片系统的协同组合,为基础研究和临床应用生成模型,以提供用于个性化肿瘤学的有用设备。