Ahmed Tanvir
Department of Pharmaceutical Sciences, North South University, Bashundhara R/A, Dhaka-1229 Dhaka, Bangladesh.
In Vitro Model. 2023 Jan 27;2(1-2):1-23. doi: 10.1007/s44164-023-00043-2. eCollection 2023 Apr.
The translational potential of promising anticancer medications and treatments may be enhanced by the creation of 3D in vitro models that can accurately reproduce native tumor microenvironments. Tumor microenvironments for cancer treatment and research can be built in vitro using biomaterials. Three-dimensional in vitro cancer models have provided new insights into the biology of cancer. Cancer researchers are creating artificial three-dimensional tumor models based on functional biomaterials that mimic the microenvironment of the real tumor. Our understanding of tumor stroma activity over the course of cancer has improved because of the use of scaffold and matrix-based three-dimensional systems intended for regenerative medicine. Scientists have created synthetic tumor models thanks to recent developments in materials engineering. These models enable researchers to investigate the biology of cancer and assess the therapeutic effectiveness of available medications. The emergence of biomaterial engineering technologies with the potential to hasten treatment outcomes is highlighted in this review, which also discusses the influence of creating in vitro biomimetic 3D tumor microenvironments utilizing functional biomaterials. Future cancer treatments will rely much more heavily on biomaterials engineering.
通过创建能够准确再现天然肿瘤微环境的三维体外模型,可以提高有前景的抗癌药物和治疗方法的转化潜力。可以使用生物材料在体外构建用于癌症治疗和研究的肿瘤微环境。三维体外癌症模型为癌症生物学提供了新的见解。癌症研究人员正在基于模拟真实肿瘤微环境的功能性生物材料创建人工三维肿瘤模型。由于使用了用于再生医学的基于支架和基质的三维系统,我们对癌症过程中肿瘤基质活性的理解有所提高。得益于材料工程的最新进展,科学家们创建了合成肿瘤模型。这些模型使研究人员能够研究癌症生物学并评估现有药物的治疗效果。本综述强调了具有加速治疗结果潜力的生物材料工程技术的出现,还讨论了利用功能性生物材料创建体外仿生三维肿瘤微环境的影响。未来的癌症治疗将更加依赖生物材料工程。