Department of Biomedical Engineering, University of California, Davis, Davis, CA 95616, United States.
Department of Biomedical Engineering, University of California, Davis, Davis, CA 95616, United States; School of Veterinary Medicine, University of California, Davis, Davis, CA 95616, United States.
J Biomech. 2021 Jan 22;115:110189. doi: 10.1016/j.jbiomech.2020.110189. Epub 2020 Dec 30.
Cancer is the second leading cause of death in the United States, claiming more than 560,000 lives each year. Osteosarcoma (OS) is the most common primary malignant tumor of bone in children and young adults, while bone is a common site of metastasis for tumors initiating from other tissues. The heterogeneity, continual evolution, and complexity of this disease at different stages of tumor progression drives a critical need for physiologically relevant models that capture the dynamic cancer microenvironment and advance chemotherapy techniques. Monolayer cultures have been favored for cell-based research for decades due to their simplicity and scalability. However, the nature of these models makes it impossible to fully describe the biomechanical and biochemical cues present in 3-dimensional (3D) microenvironments, such as ECM stiffness, degradability, surface topography, and adhesivity. Biomaterials have emerged as valuable tools to model the behavior of various cancers by creating highly tunable 3D systems for studying neoplasm behavior, screening chemotherapeutic drugs, and developing novel treatment delivery techniques. This review highlights the recent application of biomaterials toward the development of tumor models, details methods for their tunability, and discusses the clinical and therapeutic applications of these systems.
癌症是美国的第二大致死原因,每年导致超过 56 万人死亡。骨肉瘤(OS)是儿童和青少年中最常见的原发性骨恶性肿瘤,而骨骼是其他组织起源的肿瘤转移的常见部位。这种疾病在肿瘤进展的不同阶段具有异质性、持续演变和复杂性,这迫切需要具有生理相关性的模型来捕捉动态的癌症微环境并推进化疗技术。由于其简单性和可扩展性,单层培养物已被用于细胞基础研究数十年。然而,这些模型的性质使得它们不可能完全描述 3 维(3D)微环境中存在的生物力学和生化线索,例如 ECM 硬度、可降解性、表面形貌和附着力。生物材料已成为通过创建高度可调的 3D 系统来模拟各种癌症行为的有价值的工具,用于研究肿瘤行为、筛选化疗药物和开发新的治疗药物输送技术。本文综述了生物材料在肿瘤模型开发中的最新应用,详细介绍了它们的可调性方法,并讨论了这些系统的临床和治疗应用。