Patel Ravi Ghanshyam, Purwada Alberto, Cerchietti Leandro, Inghirami Giorgio, Melnick Ari, Gaharwar Akhilesh K, Singh Ankur
Sibley School of Mechanical and Aerospace Engineering, Cornell University, Ithaca, NY 14853, USA.
Department of Biomedical Engineering, Cornell University, Ithaca, NY 14853, USA.
Cell Mol Bioeng. 2014 Sep 1;7(3):394-408. doi: 10.1007/s12195-014-0353-8.
Bioengineered hydrogels have been explored in cell and tissue engineering applications to support cell growth and modulate its behavior. A rationally designed scaffold should allow for encapsulated cells to survive, adhere, proliferate, remodel the niche, and can be used for controlled delivery of biomolecules. Here we report a microarray of composite bioadhesive microgels with modular dimensions, tunable mechanical properties and bulk modified adhesive biomolecule composition. Composite bioadhesive microgels of maleimide functionalized polyethylene glycol (PEG-MAL) with interpenetrating network (IPN) of gelatin ionically cross-linked with silicate nanoparticles were engineered by integrating microfabrication with Michael-type addition chemistry and ionic gelation. By encapsulating clinically relevant anchorage-dependent cervical cancer cells and suspension leukemia cells as cell culture models in these composite microgels, we demonstrate enhanced cell spreading, survival, and metabolic activity compared to control gels. The composite bioadhesive hydrogels represent a platform that could be used to study independent effect of stiffness and adhesive ligand density on cell survival and function. We envision that such microarrays of cell adhesive microenvironments, which do not require harsh chemical and UV crosslinking conditions, will provide a more efficacious cell culture platform that can be used to study cell behavior and survival, function as building blocks to fabricate 3D tissue structures, cell delivery systems, and high throughput drug screening devices.
生物工程水凝胶已在细胞和组织工程应用中得到探索,以支持细胞生长并调节其行为。合理设计的支架应能使封装的细胞存活、黏附、增殖、重塑微环境,并且可用于生物分子的可控递送。在此,我们报告了一种复合生物粘附微凝胶微阵列,其具有模块化尺寸、可调机械性能和大量修饰的粘附生物分子组成。通过将微加工与迈克尔型加成化学和离子凝胶化相结合,设计了马来酰亚胺功能化聚乙二醇(PEG-MAL)与与硅酸盐纳米颗粒离子交联的明胶互穿网络(IPN)的复合生物粘附微凝胶。通过将临床相关的锚定依赖性宫颈癌细胞和悬浮白血病细胞作为细胞培养模型封装在这些复合微凝胶中,我们证明与对照凝胶相比,细胞铺展、存活和代谢活性得到增强。复合生物粘附水凝胶代表了一个可用于研究硬度和粘附配体密度对细胞存活和功能的独立影响的平台。我们设想,这种不需要苛刻化学和紫外线交联条件的细胞粘附微环境微阵列,将提供一个更有效的细胞培养平台,可用于研究细胞行为和存活,作为构建3D组织结构、细胞递送系统和高通量药物筛选装置的构建模块。