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3D bioprinting: improving in vitro models of metastasis with heterogeneous tumor microenvironments

机译:3D生物打印:利用异质性肿瘤微环境改善体外转移模型

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Even with many advances in treatment over the past decades, cancer still remains a leading cause of death worldwide. Despite the recognized relationship between metastasis and increased mortality rate, surprisingly little is known about the exact mechanism of metastatic progression. Currently available in vitro models cannot replicate the three-dimensionality and heterogeneity of the tumor microenvironment sufficiently to recapitulate many of the known characteristics of tumors in vivo. Our understanding of metastatic progression would thus be boosted by the development of in vitro models that could more completely capture the salient features of cancer biology. Bioengineering groups have been working for over two decades to create in vitro microenvironments for application in regenerative medicine and tissue engineering. Over this time, advances in 3D printing technology and biomaterials research have jointly led to the creation of 3D bioprinting, which has improved our ability to develop in vitro models with complexity approaching that of the in vivo tumor microenvironment. In this Review, we give an overview of 3D bioprinting methods developed for tissue engineering, which can be directly applied to constructing in vitro models of heterogeneous tumor microenvironments. We discuss considerations and limitations associated with 3D printing and highlight how these advances could be harnessed to better model metastasis and potentially guide the development of anti-cancer strategies.
机译:即使在过去几十年中在治疗方面取得了许多进步,癌症仍然仍然是全球范围内主要的死亡原因。尽管转移与死亡率增加之间存在公认的关系,但令人惊讶的是,对转移进展的确切机制知之甚少。当前可用的体外模型不能充分复制肿瘤微环境的三维和异质性以概括体内许多肿瘤的已知特征。因此,我们可以通过开发可以更完整地捕捉癌症生物学显着特征的体外模型来增进对转移进程的了解。生物工程团队已经工作了二十多年,以创建用于再生医学和组织工程的体外微环境。在这段时间里,3D打印技术和生物材料研究的进步共同导致了3D生物打印的创建,这提高了我们开发体外模型的能力,其复杂度接近于体内肿瘤微环境。在这篇综述中,我们概述了为组织工程开发的3D生物打印方法,可将其直接用于构建异质肿瘤微环境的体外模型。我们讨论了与3D打印相关的注意事项和局限性,并重点介绍了如何利用这些进展来更好地模拟转移并潜在地指导抗癌策略的发展。

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