TY - JOUR
T1 - Magnetically induced protein gradients on electrospun nanofibers
AU - Valmikinathan, Chandra M.
AU - Wang, Junping
AU - Smiriglio, Sergio
AU - Golwala, Neha G.
AU - Yu, Xiaojun
PY - 2009/8
Y1 - 2009/8
N2 - Peripheral nerve regeneration can be significantly enhanced by the distribution of the extracellular matrix (ECM) proteins at an increasing concentration along the length of a scaffold. In this study, we have created a gradient of an extracellular matrix protein, laminin, on nanofibrous scaffolds using an external magnetic field. The laminin was crosslinked to ferritin, a biocompatible protein with functional amino and carboxylic acid groups on the surface and a magnetically inducible iron core. The presence of laminin gradients on the scaffolds was demonstrated through immunofluorescent staining with antibodies against laminin. When culturing Schwann cells on the nanofibrous scaffolds, the number of cells increased along the gradients with increasing laminin concentrations. The method developed in this study allows for precise control over the gradient formation in terms of distances and concentrations and thus provides a platform for high throughput screening of cell materials interactions. The nanofibrous scaffolds with laminin gradients can be potentially used in neural tissue engineering.
AB - Peripheral nerve regeneration can be significantly enhanced by the distribution of the extracellular matrix (ECM) proteins at an increasing concentration along the length of a scaffold. In this study, we have created a gradient of an extracellular matrix protein, laminin, on nanofibrous scaffolds using an external magnetic field. The laminin was crosslinked to ferritin, a biocompatible protein with functional amino and carboxylic acid groups on the surface and a magnetically inducible iron core. The presence of laminin gradients on the scaffolds was demonstrated through immunofluorescent staining with antibodies against laminin. When culturing Schwann cells on the nanofibrous scaffolds, the number of cells increased along the gradients with increasing laminin concentrations. The method developed in this study allows for precise control over the gradient formation in terms of distances and concentrations and thus provides a platform for high throughput screening of cell materials interactions. The nanofibrous scaffolds with laminin gradients can be potentially used in neural tissue engineering.
KW - Electrospinning
KW - Extra cellular matrix proteins
KW - Ferritin
KW - Laminin
KW - Magnetic field
KW - Peripheral nerve regeneration
KW - Polycaprolactone
KW - Protein gradients
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UR - http://www.scopus.com/inward/citedby.url?scp=67650990054&partnerID=8YFLogxK
U2 - 10.2174/138620709788923683
DO - 10.2174/138620709788923683
M3 - Article
C2 - 19531021
AN - SCOPUS:67650990054
SN - 1386-2073
VL - 12
SP - 656
EP - 663
JO - Combinatorial Chemistry and High Throughput Screening
JF - Combinatorial Chemistry and High Throughput Screening
IS - 7
ER -