Department of Chemical and Biomolecular Engineering, and Johns Hopkins Physical Sciences-Oncology Center and the Institute for NanoBioTechnology, The Johns Hopkins University, Baltimore, Maryland, USA.
Cancer Res. 2012 Dec 1;72(23):6089-96. doi: 10.1158/0008-5472.CAN-12-2773. Epub 2012 Nov 19.
A major paradigm shift in cancer research is the emergence of multidisciplinary approaches to investigate complex cell behaviors, to elucidate regulatory mechanisms and to identify therapeutic targets. Recently, efforts are focused on the engineering of complex in vitro models, which more accurately recapitulate the growth and progression of cancer. These strategies have proven vital for investigating and targeting the events that control tumor angiogenesis. In this review, we explore how the emerging engineering approaches are being used to unlock the complex mechanisms regulating tumor angiogenesis. Emphasis is placed on models using natural and synthetic biomaterials to generate scaffolds mimicking the extracellular matrix, which is known to play a critical role in angiogenesis. While the models presented in this review are revolutionary, improvements are still necessary and concepts for advancing and perfecting engineering approaches for modeling tumor angiogenesis are proposed. Overall, the marriage between disparate scientific fields is expected to yield significant improvements in our understanding and treatment of cancer.
癌症研究中的一个主要范式转变是出现了多学科方法来研究复杂的细胞行为,阐明调控机制和确定治疗靶点。最近,人们致力于工程复杂的体外模型,这些模型更准确地再现癌症的生长和进展。这些策略对于研究和靶向控制肿瘤血管生成的事件非常重要。在这篇综述中,我们探讨了新兴的工程方法如何被用来揭示调控肿瘤血管生成的复杂机制。重点介绍了使用天然和合成生物材料来生成支架的模型,这些支架模拟细胞外基质,细胞外基质已知在血管生成中起着关键作用。虽然本综述中介绍的模型具有创新性,但仍需要改进,并提出了用于模拟肿瘤血管生成的工程方法的改进和完善的概念。总的来说,不同科学领域的结合有望在我们对癌症的理解和治疗方面取得重大进展。