Department of Biological Sciences, University of Massachusetts Lowell, One University Avenue, Lowell, MA, 01854, USA.
Department of Biomedical Engineering, University of Massachusetts Lowell, One University Avenue, Lowell, MA, 01854, USA.
Adv Healthc Mater. 2017 Nov;6(22). doi: 10.1002/adhm.201700619. Epub 2017 Oct 27.
Paper is used in various applications in biomedical research including diagnostics, separations, and cell cultures. Paper can be conveniently engineered due to its tunable and flexible nature, and is amenable to high-throughput sample preparation and analysis. Paper-based platforms are used to culture primary cells, tumor cells, patient biopsies, stem cells, fibroblasts, osteoblasts, immune cells, bacteria, fungi, and plant cells. These platforms are compatible with standard analytical assays that are typically used to monitor cell behavior. Due to its thickness and porous nature, there are no mass transport limitations to/from the cells in paper scaffolds. It is possible to pattern paper in different scales (micrometer to centimeter), generate modular configurations in 3D, fabricate multicellular and compartmentalized tissue mimetics for clinical applications, and recover cells from the scaffolds for further analysis. 3D paper constructs can provide physiologically relevant tissue models for personalized medicine. Layer-by layer strategies to assemble tissue-like structures from low-cost and biocompatible paper-based materials offer unique opportunities that include understanding fundamental biology, developing disease models, and assembling different tissues for organ-on-paper applications. Paper-based platforms can also be used for origami-inspired tissue engineering. This work provides an overview of recent progress in engineered paper-based biomaterials and platforms to culture and analyze cells.
纸张在生物医学研究的各种应用中都有使用,包括诊断、分离和细胞培养。由于其可调谐和灵活的特性,纸张便于工程设计,并且适用于高通量的样品制备和分析。基于纸张的平台用于培养原代细胞、肿瘤细胞、患者活检、干细胞、成纤维细胞、成骨细胞、免疫细胞、细菌、真菌和植物细胞。这些平台与通常用于监测细胞行为的标准分析测定法兼容。由于其厚度和多孔性质,纸张支架中不存在细胞内外的质量传输限制。可以在不同尺度(微米到厘米)对纸张进行图案化,在 3D 中生成模块化配置,制造用于临床应用的多细胞和分隔组织模拟物,并从支架中回收细胞以进行进一步分析。3D 纸张结构可为个性化医疗提供具有生理相关性的组织模型。从低成本和生物相容的基于纸张的材料通过层层组装方法构建类似组织的结构提供了独特的机会,包括理解基本生物学、开发疾病模型以及为器官在纸上的应用组装不同的组织。基于纸张的平台也可用于折纸启发的组织工程。这项工作概述了用于培养和分析细胞的工程化基于纸张的生物材料和平台的最新进展。