Thakur Ankush, Mishra Shawn, Pena Juan, Zhou Jing, Redenti Stephen, Majeska Robert, Vazquez Maribel
Department of Biomedical Engineering, The City College of New York, New York, NY, USA.
Department of Biology, Lehman College, Bronx, NY, USA.
J Tissue Eng. 2018 Jan 9;9:2041731417751286. doi: 10.1177/2041731417751286. eCollection 2018 Jan-Dec.
Strategies to replace retinal photoreceptors lost to damage or disease rely upon the migration of replacement cells transplanted into sub-retinal spaces. A significant obstacle to the advancement of cell transplantation for retinal repair is the limited migration of transplanted cells into host retina. In this work, we examine the adhesion and displacement responses of retinal progenitor cells on extracellular matrix substrates found in retina as well as widely used in the design and preparation of transplantable scaffolds. The data illustrate that retinal progenitor cells exhibit unique adhesive and displacement dynamics in response to poly-l-lysine, fibronectin, laminin, hyaluronic acid, and Matrigel. These findings suggest that transplantable biomaterials can be designed to improve cell integration by incorporating extracellular matrix substrates that affect the migratory behaviors of replacement cells.
替换因损伤或疾病而丧失的视网膜光感受器的策略依赖于移植到视网膜下间隙的替代细胞的迁移。视网膜修复细胞移植进展的一个重大障碍是移植细胞向宿主视网膜的迁移有限。在这项工作中,我们研究了视网膜祖细胞在视网膜中发现的以及广泛用于可移植支架设计和制备的细胞外基质底物上的粘附和位移反应。数据表明,视网膜祖细胞对聚-L-赖氨酸、纤连蛋白、层粘连蛋白、透明质酸和基质胶表现出独特的粘附和位移动力学。这些发现表明,可以设计可移植生物材料,通过纳入影响替代细胞迁移行为的细胞外基质底物来改善细胞整合。