Nitte University Centre for Science Education and Research, Nitte (Deemed to be University), Mangalore, Karnataka, India.
Centre for Biomaterials, Cellular, and Molecular Theranostics, Vellore Institute of Technology, Vellore, Tamil Nadu, India.
J Cell Physiol. 2021 Feb;236(2):741-762. doi: 10.1002/jcp.29935. Epub 2020 Jul 13.
In the last four decades, several researchers worldwide have routinely and meticulously exercised cell culture experiments in two-dimensional (2D) platforms. Using traditionally existing 2D models, the therapeutic efficacy of drugs has been inappropriately validated due to the failure in generating the precise therapeutic response. Fortunately, a 3D model addresses the foregoing limitations by recapitulating the in vivo environment. In this context, one has to contemplate the design of an appropriate scaffold for favoring the organization of cell microenvironment. Instituting pertinent model on the platter will pave way for a precise mimicking of in vivo conditions. It is because animal cells in scaffolds oblige spontaneous formation of 3D colonies that molecularly, phenotypically, and histologically resemble the native environment. The 3D culture provides insight into the biochemical aspects of cell-cell communication, plasticity, cell division, cytoskeletal reorganization, signaling mechanisms, differentiation, and cell death. Focusing on these criteria, this paper discusses in detail, the diversification of polymeric scaffolds based on their available resources. The paper also reviews the well-founded and latest techniques of scaffold fabrication, and their applications pertaining to tissue engineering, drug screening, and tumor model development.
在过去的四十年中,世界各地的许多研究人员已经在二维(2D)平台上常规且细致地进行细胞培养实验。由于无法产生精确的治疗反应,传统的 2D 模型经常导致药物的治疗效果被不恰当地验证。幸运的是,3D 模型通过再现体内环境解决了上述限制。在这种情况下,人们必须考虑设计合适的支架来促进细胞微环境的组织。在培养板上建立相关模型将为精确模拟体内条件铺平道路。这是因为支架中的动物细胞会自发形成 3D 细胞集落,这些集落在分子、表型和组织学上都类似于天然环境。3D 培养可以深入了解细胞-细胞通讯、可塑性、细胞分裂、细胞骨架重组、信号机制、分化和细胞死亡的生化方面。本文根据可用资源详细讨论了基于聚合物支架的多样化。本文还回顾了支架制造的可靠且最新技术及其在组织工程、药物筛选和肿瘤模型开发方面的应用。