Department of Biomedical and Chemical Engineering, Syracuse University, NY, United States; BioInspired Syracuse Institute for Material and Living Systems, NY, United States.
Department of Biomedical and Chemical Engineering, Syracuse University, NY, United States; BioInspired Syracuse Institute for Material and Living Systems, NY, United States.
Acta Biomater. 2021 Sep 15;132:23-36. doi: 10.1016/j.actbio.2021.01.026. Epub 2021 Jan 22.
Organoids are miniature models of organs to recapitulate spatiotemporal cellular organization and tissue functionality. The production of organoids has revolutionized the field of developmental biology, providing the possibility to study and guide human development and diseases in a dish. More recently, novel biomaterial-based culture systems demonstrated the feasibility and versatility to engineer and produce the organoids in a consistent and reproducible manner. By engineering proper tissue microenvironment, functional organoids have been able to exhibit spatial-distinct tissue patterning and morphogenesis. This review focuses on enabling technologies in the field of organoid engineering, including the control of biochemical and biophysical cues via hydrogels, as well as size and geometry control via microwell and microfabrication techniques. In addition, this review discusses the enhancement of organoid systems for therapeutic applications using biofabrication and organoid-on-chip platforms, which facilitate the assembly of complex organoid systems for in vitro modeling of development and diseases. STATEMENT OF SIGNIFICANCE: Stem cell organoids have revolutionized the fields of developmental biology and tissue engineering, providing the opportunity to study human organ development and disease progression in vitro. Various works have demonstrated that organoids can be generated using a wide variety of engineering tools, materials, and systems. Specific culture microenvironment is tailored to support the formation, function, and physiology of the organ of interest. This review highlights the importance of cellular microenvironment in organoid culture, the versatility of organoid engineering techniques, and future perspectives to build better organoid systems.
类器官是器官的微型模型,可再现时空细胞组织和组织功能。类器官的产生彻底改变了发育生物学领域,使人们有可能在培养皿中研究和指导人类发育和疾病。最近,新型基于生物材料的培养系统证明了以一致和可重复的方式设计和生产类器官的可行性和多功能性。通过设计适当的组织微环境,功能性类器官能够表现出空间上不同的组织模式和形态发生。本文综述了类器官工程领域的使能技术,包括通过水凝胶控制生化和生物物理线索,以及通过微井和微加工技术控制大小和几何形状。此外,本文还讨论了使用生物制造和类器官芯片平台增强类器官系统在治疗应用中的作用,这为体外模拟发育和疾病的复杂类器官系统组装提供了便利。意义陈述:干细胞类器官彻底改变了发育生物学和组织工程领域,为体外研究人类器官发育和疾病进展提供了机会。各种研究已经证明,可以使用多种工程工具、材料和系统来生成类器官。特定的培养微环境被定制以支持相关器官的形成、功能和生理学。本文强调了细胞微环境在类器官培养中的重要性、类器官工程技术的多功能性以及构建更好的类器官系统的未来展望。