Controlling Osteogenic Differentiation through Nanoporous Alumina
- 1 Applied Material Science, Department of Engineering Sciences, The ?ngstr?m Laboratory, Uppsala University, Uppsala, Sweden
- 2 Department of Medical Sciences, Uppsala University, Uppsala, Sweden
- 3 Applied Material Science, Department of Engineering Sciences, The ?ngstr?m Laboratory, Uppsala University, Uppsala, Sweden
- 4 Bioengineering Department, University of Texas at Arlington, Arlington, USA
- 5 Applied Material Science, Department of Engineering Sciences, The ?ngstr?m Laboratory, Uppsala University, Uppsala, Sweden
Abstract
Nanotopographical features are found to have significant effects on bone behavior. In the present study, nanoporous alumina s with different pore sizes (20, 100 and 200 nm in diameter), w ere eva luated for their osteoinductive and drug eluting properties. W20-17 marrow stromal cells were seeded on nanoporous alumina with and without the addition of BMP-2. Although cell proliferation was not affected by pore size, osteogenic differentiation was 200 nm as compared to 20 and 100 nm pores induced higher alkaline phosphatase activity (ALP) and osteocalcin expression levels, thus indicating osteoblastic differentiation. Cell morphology revealed that cells cultured on 20 nm pores adopted a rounded shape, while larger pores (200 nm) elicited an elongated morpho logy. Furthermore, ALP expression levels were consistently higher on BMP-2 loaded nanoporous alumina surfaces compared to unloaded surfaces, indicating that not only is nanoporous alumina osteoinductive, but also has the potential to be used as a drug eluting bone-implant coating.
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