4.8 Article

Regulation of Osteoblast Proliferation and Differentiation by Interrod Spacing of Sr-HA Nanorods on Microporous Titania Coatings

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 5, Issue 11, Pages 5358-5365

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/am401339n

Keywords

Sr-doped hydroxyapatite; nanorod; interrod spacing; osteoblast; proliferation; differentiation

Funding

  1. National Program on Key Basic Research Project (973 Program) of China [2012CB619103]
  2. National Natural Science Foundation of China [51071120]

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Strontium-doped hydroxyapatite (Ca9Sr1(PO4)(6)(OH)(2), Sr-1-HA) nanorods with different lateral spacing (e g, interrod spacing) values (673 +/- 3.8, 95.7 +/- 4.2, and 136.8 +/- 8.7 nm) and nanogranulates were grown on microarc-oxidized microporous TiO2, respectively, to form multilayer coatings. The coatings reveal two kinds of micro/nanoscaled hierarchical surfaces with a similar microscale roughness, e.g., nanogranulated 2D pattern and nanorod-shaped 3D pattern in nanotopography. When hFOB1.19 cells are employed, the proliferation and differentiation of osteoblasts on the coatings were evaluated by examining MTT assay, expressions of osteogenesis-related genes [alkaline phosphatase (ALP), runt related transcription factor 2, osterix, osteopontin (OPN), osteocalcin (OCN), and collagen I (Col I)], ALP activity, contents of intracellular Ca2+, Col-I, OPN, and OCN, extracellular collagen secretion, and extracellular matrix mineralization. The results reveal that the proliferation and differentiation of osteoblasts can be directly regulated by the interrod spacing of the Sr-1-HA nanorods, which are significantly enhanced on the nanorod-shaped 3D patterns with interrod spacing smaller than 96 nm and more pronounced with decreasing the interrod spacing but inhibited on the nanorods with spacing larger than 96 am compared to the nanogranulated 2D pattern. The difference in the cellular activity is found to be related with the intracellular Ca2+ concentrations, which are regulated by variation of the surface topology of Sri HA crystals. Our work provides insight to the surface structural design of a biomedical implant favoring osteointegration.

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