Sahan Ayse Z, Baday Murat, Patel Chirag B
Biomedical Sciences Graduate Program, Department of Pharmacology, School of Medicine, University California at San Diego, 9500 Gilman Drive, San Diego, CA 92093, USA.
Department of Neurology and Neurological Sciences, School of Medicine, Stanford University, Stanford, CA 94305, USA.
Gels. 2022 Aug 10;8(8):496. doi: 10.3390/gels8080496.
Hydrogels are biocompatible polymers that are tunable to the system under study, allowing them to be widely used in medicine, bioprinting, tissue engineering, and biomechanics. Hydrogels are used to mimic the three-dimensional microenvironment of tissues, which is essential to understanding cell-cell interactions and intracellular signaling pathways (e.g., proliferation, apoptosis, growth, and survival). Emerging evidence suggests that the malignant properties of cancer cells depend on mechanical cues that arise from changes in their microenvironment. These mechanobiological cues include stiffness, shear stress, and pressure, and have an impact on cancer proliferation and invasion. The hydrogels can be tuned to simulate these mechanobiological tissue properties. Although interest in and research on the biomedical applications of hydrogels has increased in the past 25 years, there is still much to learn about the development of biomimetic hydrogels and their potential applications in biomedical and clinical settings. This review highlights the application of hydrogels in developing pre-clinical cancer models and their potential for translation to human disease with a focus on reviewing the utility of such models in studying glioblastoma progression.
水凝胶是生物相容性聚合物,可根据所研究的系统进行调节,使其在医学、生物打印、组织工程和生物力学中得到广泛应用。水凝胶用于模拟组织的三维微环境,这对于理解细胞间相互作用和细胞内信号通路(如增殖、凋亡、生长和存活)至关重要。新出现的证据表明,癌细胞的恶性特性取决于其微环境变化产生的机械信号。这些机械生物学信号包括硬度、剪切应力和压力,并对癌症增殖和侵袭产生影响。水凝胶可以进行调节以模拟这些机械生物学组织特性。尽管在过去25年中,人们对水凝胶生物医学应用的兴趣和研究有所增加,但关于仿生水凝胶的开发及其在生物医学和临床环境中的潜在应用仍有许多需要了解的地方。本综述重点介绍了水凝胶在开发临床前癌症模型中的应用及其转化为人类疾病的潜力,重点回顾了此类模型在研究胶质母细胞瘤进展中的效用。