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Au,Pd and maghemite nanofunctionalized hydroxyapatite scaffolds for bone regeneration 被引量:3

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摘要 Nanotechnology plays a key role in the development of innovative scaffolds for bone tissue engineering(BTE)allowing the incorporation of nanomaterials able to improve cell proliferation and differentiation.In this study,Mg-HA-Coll type I scaffolds(Mg-HA-based scaffolds)were nanofunctionalized with gold nanorods(Au NRs),palladium nanoparticles(Pd NPs)and maghemite nanoparticles(MAG NPs).Nanofunctionalized Mg-HA-based scaffolds(NF-HA-Ss)were tested for their ability to promote both the proliferation and the differentiation of adipose-derived mesenchymal stem cells(hADSCs).Results clearly highlight that MAG nanofunctionalization substantially improves cell proliferation up to 70% compared with the control(Mg-HA-based scaffold),whereas both Au NRs and Pd NPs nanofunctionalization induce a cell growth inhibition of 94% and 89%,respectively.Similar evidences were found for the osteoinductive properties showing relevant calcium deposits(25% higher than the control)for MAG nanofunctionalization,while a decreasing of cell differentiation(20% lower than the control)for both Au NRs and Pd NPs derivatization.These results are in agreement with previous studies that found cytotoxic effects for both Pd NPs and Au NRs.The excellent improvement of both osteoconductivity and osteoinductivity of the MAG NF-HA-S could be attributed to the high intrinsic magnetic field of superparamagnetic MAG NPs.These findings may pave the way for the development of innovative nanostructured scaffolds for BTE.
出处 《Regenerative Biomaterials》 SCIE 2020年第5期461-469,共9页 再生生物材料(英文版)
基金 supported by PON—BONEtt,Sviluppo di Micro e Nanotecnolgie per la Predittivita`,la Diagnosi,la Terapia e i Trattamenti Rigenerativi delle Alterazioni Patologiche dell’Osso e Osteo-Articolari(No.ARS01_00693).
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  • 1Timbrell, J. A. Biomarkers in toxicology. Toxicology 1998, 129, 1-12.
  • 2Schmid, O.; M611er, W.; Semmler-Behnke, M.; Ferron, G. A.; Karg, E.; Lipka, J.; Schulz, H.; Kreyling, W. G.; Stoeger, T. Dosimetry and toxicology of inhaled ultrafine particles. Biomarkers 2009, 14, 67 73.
  • 3Grass, R. N.; Limbach, L. K.; Athanassiou, E. K.; Stark, W. J. Exposure of aerosols and nanoparticle dispersions to in vitro cell cultures: A review on the dose relevance of size, mass, surface and concentration. J. Aerosol Sci. 2010, 41, 1123- 1142.
  • 4Ghosh, P.; Han, G.; De, M.; Kim, C. K.; Rotello, V. M. Gold nanoparticles in delivery applications. Adv. Drug. Delivery Rev. 2008, 60, 1307-1315.
  • 5Eck, W.; Nicholson, A. I.; Zentgraf, H.; Semler, W.; Bartling S. N. Anti-cd4-targeted gold nanoparticles induce specific contrast enhancement on peripheral lymphonodes in x-ray computed tomography in live mice. Nano Lett. 2010, 10, 2318-2322.
  • 6Bhattacharya, R.; Mukheuee, P. Biological properties of "naked" metal nanoparticles. Adv. Drug. Delivery Rev. 2008, 60, 1289-1306.
  • 7Connor, E. E.; Mwamuka, J.; Gole, A.; Murphy, C. J.; Wyatt, M. D. Gold nanoparticles are taken up by human cells but do not cause acute cytotoxicity. Small 2005, 1,325-327.
  • 8Dobrovolskaia, M. A.; McNeil, S. E. Immunological properties of engineered nanomaterials. Nat. Nanotechnol. 2007, 2, 469-478.
  • 9Patra, H. K.; Banerjee, S.; Chaudhuri, U.; Lahiri, P.; Dasgupta, A. K. Cell selective response to gold nanoparticles. Nanomedicine 2007, 3, 111-119.
  • 10Peng, G.; Tisch, U.; Adams, O.; Hakim, M.; Shehada, N.; Broza, Y. Y.; Billan, S.; Abdah-Bortnyad, R.; Kuten, R.; Haick, H. Diagnosing lung cancer in exhaled breath using gold nanoparticles. Nat. NanotechnoL 2009, 4, 66973.

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