2,022
Views
4
CrossRef citations to date
0
Altmetric
Focus on Trends in Biomaterials in Japan

Organic modification of layered zirconium phosphate/phosphonate for controlled release of therapeutic inorganic ions

ORCID Icon, , , ORCID Icon & ORCID Icon
Pages 1000-1012 | Received 05 Jan 2021, Accepted 11 Oct 2021, Published online: 16 Dec 2021

References

  • Cao W, Hench LL. Bioactive materials. Ceram Int. 1996;22:493–507.
  • Xynos ID, Edgar AJ, Buttery LD, et al. Ionic products of bioactive glass dissolution increase proliferation of human osteoblasts and induce insulin-like growth factor II mRNA expression and protein synthesis. Biochem Biophys Res Commun. 2000;276:461–465.
  • Cho YH, Lee SJ, Lee JY, et al. Antibacterial effect of intraprostatic zinc injection in a rat model of chronic bacterial prostatitis. Int J Antimicrob Agents. 2002;19:576–582.
  • Zhang F, Yang X, Zhuang C, et al. Design and evaluation of multifunctional antibacterial ion-doped β-dicalcium silicate cements favorable for root canal sealing. RSC Adv. 2016;6:19707–19715.
  • Hench LL. Biomaterials: a forecast for the future. Biomaterials. 1998;19:1419–1423.
  • Aguzzi C, Cerezo P, Viseras C, et al. Use of clays as drug delivery systems: possibilities and limitations. Appl Clay Sci. 2007;36:22–36.
  • Yang JH, Lee JH, Ryu HJ, et al. Drug–clay nanohybrids as sustained delivery systems. Appl Clay Sci. 2016;130:20–32.
  • Choy JH, Jung JS, Oh JM, et al. Layered double hydroxide as an efficient drug reservoir for folate derivatives. Biomaterials. 2004;25:3059–3064.
  • Choi G, Kwon OJ, Oh Y, et al. Inorganic nanovehicle targets tumor in an orthotopic breast cancer model. Sci Rep. 2014;4:4430.
  • Díaz A, González ML, Pérez RJ, et al. Direct intercalation of cisplatin into zirconium phosphate nanoplatelets for potential cancer nanotherapy. Nanoscale. 2013;5:11456–11463.
  • Díaz A, Saxena V, González J, et al. Zirconium phosphate nano-platelets: a novel platform for drug delivery in cancer therapy. Chem Commun. 2012;48:1754–1756.
  • Nakamura J, Endo K, Sugawara-Narutaki A, et al. Human stem cell response to layered zirconium phosphate. RSC Adv. 2020;10:36051–36057.
  • Lanari D, Montanari F, Marmottini F, et al. New zirconium hydrogen phosphate alkyl and/or aryl phosphonates with high surface area as heterogeneous brønsted acid catalysts for aza-Diels–Alder reaction in aqueous medium. J Catal. 2011;277:80–87.
  • Zhang F, Xie Y, Lu W, et al. Preparation of microspherical α-zirconium phosphate catalysts for conversion of fatty acid methyl esters to monoethanolamides. J Colloid Interface Sci. 2010;349:571–577.
  • Silbernagel R, Martin CH, Clearfield A. Zirconium(IV) phosphonate–phosphates as efficient ion-exchange materials. lnorg Chem. 2016;55:1651–1656.
  • Terban MW, Shi C, Silbernagel R, et al. Local environment of terbium(III) ions in layered nanocrystalline zirconium(IV) phosphonate–phosphate ion exchange materials. Inorg Chem. 2017;56:8837–8846.
  • Liu XH, Kirschenbaum A, Yao S, et al. Upregulation of vascular endothelial growth factor by cobalt chloride-simulated hypoxia is mediated by persistent induction of cyclooxygenase-2 in a metastatic human prostate cancer cell line. Clin Exp Metastasis. 1999;17:687–694.
  • Wu C, Zhou Y, Fan W, et al. Hypoxia-mimicking mesoporous bioactive glass scaffolds with controllable cobalt ion release for bone tissue engineering. Biomaterials. 2012;33:2076–2085.
  • Quinlan E, Partap S, Azevedo MM, et al. Hypoxia-mimicking bioactive glass/collagen glycosaminoglycan composite scaffolds to enhance angiogenesis and bone repair. Biomaterials 2015;52:358–366.
  • Menendez A, Barcena M, Jaimez E, et al. Intercalation of n-alkylamines by gamma-titanium phosphate. Synthesis of new materials by thermal treatment of the intercalation compounds. Chem Mater. 1993;5:1078–1084.
  • Kim HN, Keller SW, Mallouk TE, et al. Characterization of zirconium phosphate/polycation thin films grown by sequential adsorption reactions. Chem Mater. 1997;9:1414–1421.
  • Alberti G, Costantino U, Dionigi C, et al. Layered and pillared zirconium phosphate-phosphonates and their inclusion chemistry. Supramol Chem. 1995;6:29–40.
  • Ruiz VSO, Airoldi C. Thermochemical data for n-alkylmonoamine intercalation into crystalline lamellar zirconium phenylphosphonate. Thermochim Acta. 2004;420:73–78.
  • Alberti G, Costantino U. Recent progress in the intercalation chemistry of layered α-zirconium phosphate and its derivatives, and future perspectives for their use in catalysis. J Mol Catal. 1984;27:235–250.
  • Kullberg LH, Clearfield A. The ion exchange selectivity behavior of zirconium sulphophosphonates towards alkali and alkaline earth cations. Solvent Extr Ion Exch. 1989;7:527–540.
  • Yang CY, Clearfield A. The preparation and ion-exchange properties of zirconium sulphophosphonates. React Polym Ion Exch Sorbents. 1987;5:13–21.
  • Alberti G, Costantino U, Allulli S, et al. Crystalline Zr(R-PO3)2 and Zr(R-OPO3)2 compounds (R = organic radical): a new class of materials having layered structure of the zirconium phosphate type. J lnorg Nucl Chem. 1978;40:1113–1117.
  • Poojary MD, Hu HL, Campbell III FL, et al. Determination of crystal structures from limited powder data sets: crystal structure of zirconium phenylphosphonate. Acta Crystallogr Sect B. 1993;49:996–1001.
  • Kong N, Lin K, Li H, et al. Synergy effects of copper and silicon ions on stimulation of vascularization by copper-doped calcium silicate. J Mater Chem B. 2014;2:1100–1110.