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Full-Text Articles in Medicine and Health Sciences

Human Amnion As A Novel Cell Delivery Vehicle For Chondrogenic Mesenchymal Stem Cells, Tunku Kamarul Zaman Dec 2009

Human Amnion As A Novel Cell Delivery Vehicle For Chondrogenic Mesenchymal Stem Cells, Tunku Kamarul Zaman

Tunku Kamarul Zaman

This study investigates the feasibility of processed human amnion (HAM) as a substrate for chondrogenic differentiation of mesenchymal stem cells (MSCs). HAM preparations processed by air drying (AD) and freeze drying (FD) underwent histological examination and MSC seeding in chondrogenic medium for 15 days. Monolayer cultures were used as control for chondrogenic differentiation and HAMs without cell seeding were used as negative control. Qualitative observations were made using scanning electron microscopy analysis and quantitative analyses were based on the sulfated glycosaminoglycans (GAG) assays performed on day 1 and day 15. Histological examination of HAM substrates before seeding revealed a smooth …


Nanofiber Scaffolds With Gradations In Mineral Content For Mimicking The Tendon-To-Bone Insertion Site, Xiaoran Li, Jingwei Xie, Justin Lipner, Xiaoyan Yuan, Stavros Thomopoulos, Younan Xia Jul 2009

Nanofiber Scaffolds With Gradations In Mineral Content For Mimicking The Tendon-To-Bone Insertion Site, Xiaoran Li, Jingwei Xie, Justin Lipner, Xiaoyan Yuan, Stavros Thomopoulos, Younan Xia

MIIR Faculty Research

We have demonstrated a simple and versatile method for generating a continuously graded, bonelike calcium phosphate coating on a nonwoven mat of electrospun nanofibers. A linear gradient in calcium phosphate content could be achieved across the surface of the nanofiber mat. The gradient had functional consequences with regard to stiffness and biological activity. Specifically, the gradient in mineral content resulted in a gradient in the stiffness of the scaffold and further influenced the activity of mouse preosteoblast MC3T3 cells. This new class of nanofiberbased scaffolds can potentially be employed for repairing the tendon-to-bone insertion site via a tissue engineering approach.