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Investigation of Migration and Differentiation of Human Mesenchymal Stem Cells on Five‐Layered Collagenous Electrospun Scaffold Mimicking Native Cartilage Structure
Author(s) -
Reboredo Jenny W.,
Weigel Tobias,
Steinert Andre,
Rackwitz Lars,
Rudert Maximilian,
Walles Heike
Publication year - 2016
Publication title -
advanced healthcare materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.288
H-Index - 90
eISSN - 2192-2659
pISSN - 2192-2640
DOI - 10.1002/adhm.201600134
Subject(s) - chondrogenesis , cartilage , mesenchymal stem cell , scaffold , chondrocyte , hyaline cartilage , microbiology and biotechnology , regeneration (biology) , tissue engineering , stem cell , stem cell transplantation for articular cartilage repair , cellular differentiation , materials science , biomedical engineering , osteoarthritis , anatomy , chemistry , biology , pathology , adult stem cell , medicine , articular cartilage , biochemistry , alternative medicine , gene
Cartilage degeneration is the major cause of chronic pain, lost mobility, and reduced quality of life for over estimated 150 million osteoarthritis sufferers worldwide. Despite intensive research, none of the available therapies can restore the hyaline cartilage surface beyond just fibrous repair. To overcome these limitations, numerous cell‐based approaches for cartilage repair are being explored that aim to provide an appropriate microenvironment for chondrocyte maintenance and differentiation of multipotent mesenchymal stem cells (MSCs) toward the chondrogenic lineage. Articular cartilage is composed of highly organized collagen network that entails the tissue into four distinct zones and each zone into three different regions based on differences in matrix morphology and biochemistry. Current cartilage implants cannot establish the hierarchical tissue organization that seems critical for normal cartilage function. Therefore, in this study, a structured, multilayered collagen scaffold designed for the replacement of damaged cartilage is presented that allows repopulation by host cells and synthesis of a new natural matrix. By using the electrospinning method, the potential to engineer a scaffold consisting of two different collagen types is obtained. With the developed collagen scaffold, a five‐layered biomaterial is created that has the potency to induce the differentiation of human bone marrow derived MSCs toward the chondrogenic lineage.

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