HIGUCHI MODEL APPLIED TO IONS RELEASE FROM HYDROXYAPATITES
DOI:
https://doi.org/10.24193/subbchem.2021.3.12Keywords:
multi-substituted hydroxyapatites; ions release; static conditions, simulated dynamic conditions; Higuchi model.Abstract
n this study, the ions release of physiological elements from pure stoichiometric hydroxyapatite, HAP, and from multi-substituted hydroxyapatite, ms-HAPs, containing 1.5%Mg, 0.2%Zn, 0.2%Si and 5 %Sr, noted HAPc-5%Sr, and from HAPc-10%Sr, in water and in simulated body fluid, SBF, was studied by inductively coupled plasma optical emission spectrometry, ICP-OES, both in static and simulated dynamic regimes. The HAP and ms-HAP nanoparticles, NPs, were prepared by wet chemical precipitation and lyophilized powders were physicochemical characterized as presented elsewhere. The in vitro cations and anions release mechanism was investigated by applying a modified Higuchi model, which fits well the experimental results, particularly for simulated dynamic conditions. The predominant role of diffusion in the release of ions from the hydroxyapatites was confirmed. The sustained ions release from these nanomaterials recommends the investigated ms-HAPs for therapeutic applications.
References
P. T. Frangopol; A. Mocanu; V. Almasan; C. Garbo; R. Balint; G. Borodi; I. Bratu; O. Horovitz; M. Tomoaia-Cotisel; Rev. Roum. Chim., 2016, 61(4-5), 337-344.
E. Forizs; F. Goga; A. Avram; A. Mocanu; I. Petean; O. Horovitz; M. Tomoaia-Cotisel; Studia UBB Chemia; 2017, 62(4, Tom I), 173-180.
S. Rapuntean; P. T. Frangopol; I. Hodisan; Gh. Tomoaia; D. Oltean-Dan; A. Mocanu; C. Prejmerean; O. Soritau; L. Z. Racz; M. Tomoaia-Cotisel; Rev. Chim. (Bucharest), 2018, 69(12), 3535-3544.
Gh. Tomoaia; M. Tomoaia-Cotisel; L.-B. Pop; A. Pop; O. Horovitz; A. Mocanu; N. Jumate; L.-D. Bobos; Rev. Roum. Chim. 2011, 56(10-11), 1039-1046.
Gh. Tomoaia; O. Soritau; M. Tomoaia-Cotisel; L.-B. Pop; A. Pop; A. Mocanu; O. Horovitz; L.-D. Bobos; Powder Technol., 2013, 238, 99-107.
Gh. Tomoaia; M. Tomoaia-Cotisel; L.B. Pop; A. Mocanu; A. Pop; Nanopowders of hydroxyapatite and its substituted derivatives with medical applications and their fabrication procedure, Romanian Patent, OSIM, Bucharest, Romania, no. 125817 B1, BOPI, 2013, 6, 123.
F. Goga; E. Forizs; A. Avram; A. Rotaru; A. Lucian; I. Petean; A. Mocanu; M. Tomoaia-Cotisel; Rev. Chim. (Bucharest), 2017, 68(6), 1193-1200.
Gh. Tomoaia; L.B. Pop; I. Petean; M. Tomoaia-Cotisel; Mater. Plast., 2012, 49(1), 48-54.
Gh. Tomoaia; A. Mocanu; I. Vida-Simiti; N. Jumate; L.-D. Bobos; O. Soritau; M. Tomoaia-Cotisel; Mater. Sci. Eng. C, 2014, 37, 37–47.
D. Oltean-Dan; G. B. Dogaru; M. Tomoaia-Cotisel; D. Apostu; A. Mester; H. R. C. Benea; M. G. Paiusan; E. M. Jianu; A. Mocanu; R. Balint; C. O. Popa; C. Berce; G. I. Bodizs; A. M. Toader; Gh. Tomoaia; Int. J. Nanomed., 2019, 14, 5799-5816.
C. Garbo; J. Locs; M. D’Este; G. Demazeau; A. Mocanu; C. Roman; O. Horovitz; M. Tomoaia-Cotisel; Int. J. Nanomed., 2020, 15, 1037-1058.
C. Lindahl; W. Xia; J. Lausmaa; H. Engqvist; Biomed. Mater., 2012, 7, 045018; doi:10.1088/1748-6041/7/4/045018.
B. Colovic; S. Pasalic; V. Jokanovic; Ceram. Int., 2012, 38(8), 6181–6189.
M.-S. Wu; W. I. Higuchi; J. L. Fox; M. Friedman; J. Dent. Res., 1976, 55(3), 496-505.
Q. Liu; W. Guo; M. Yang; K. Wang; W. Liu; F. Wu; Adv. Polym. Technol., 2019, Article ID 9562437; https://doi.org/10.1155/2019/9562437.
M. Rohnke; S. Pfitzenreuter; B. Mogwitz; A. Henß; J. Thomas; D. Bieberstein; T. Gemming; S. K. Otto; S. Ray; M. Schumacher; M. Gelinsky; V. Alt; J. Control. Release, 2017, 262, 159–169.
A. Mocanu; G. Furtos; S. Rapuntean; O. Horovitz; C. Flore; C. Garbo; A. Danisteanu; Gh. Rapuntean; C. Prejmerean; M. Tomoaia-Cotisel; Appl. Surf. Sci., 2014, 298, 225–235.
Gh. Tomoaia; A. Mocanu; L.-D. Bobos; L.-B. Pop; O. Horovitz; M. Tomoaia-Cotisel; Studia UBB Chemia, 2015, 60(3), 265-272.
C. Garbo; M. Sindilaru; A. Carlea; Gh. Tomoaia; V. Almasan; I. Petean; A. Mocanu; O. Horovitz; M. Tomoaia-Cotisel; Particul. Sci. Technol, 2017, 35(1), 29-37.
M.-P. Ginebra; C. Canal; M. Espanol; D. Pastorino; E. B. Montufar; Adv. Drug Deliv. Rev, 2012, 64(12), 1090-1110.
M. H. Alkhraisat; C. Rueda; J. Cabrejos-Azama; J. Lucas-Aparicio; F. T. Mariño; J. Torres García-Denche; L. B. Jerez; U. Gbureck; E. L. Cabarcos; Acta Biomater., 2010, 6(4), 1522–1528.
U. Gbureck; E . Vorndran; J. E. Barralet. Acta Biomater., 2008, 4(5), 1480–1486.
E. Vidal; J. Buxadera-Palomero; C. Pierre; J. M. Manero; M.-P. Ginebra; S. Cazalbou; C. Combes; E. Rupérez; D. Rodríguez; Surf. Coat. Technol., 2019, 358; 266-275.
G. R. Mahdavinia; M. H. Karimi; M. Soltaniniya; B. Massoumi; Int. J. Biol. Macromol., 2019, 126, 443-453.
G. Vidhya; G. S. Kumar; V. S. Kattimani; E. K. Girija; Mater. Today: Proceedings, 2019, 15(2), 344-352.
C. Luo; S. Wu; J. Li; X. Li; P. Yang; G. Li; Int. J. Biol. Macromol., 2020, 155, 174-183.
A. Mocanu; O. Cadar; P. T. Frangopol; I. Petean; Gh. Tomoaia; G. A. Paltinean; C. P. Racz; O. Horovitz; M. Tomoaia-Cotisel; Roy. Soc. Open Sci., 2021, 8(1), 201785; https://doi.org/10.1098/rsos.201785.
O. Cadar; R. Balint; Gh. Tomoaia; D. Florea; I. Petean; A. Mocanu; O. Horovitz; M. Tomoaia-Cotisel; Studia UBB Chemia, 2017, 62 (4; Tom II), 269-281.
T. Higuchi; J. Pharm. Sci., 1963, 52(12), 1145–1149.
S. Dash; P. N. Murthy; L. Nath; P. Chowdhury; Acta Pol. Pharm., 2010, 67(3), 217-223.
J. Siepmann; N. A. Peppas; Int. J. Pharm., 2011, 418(1), 6-12.
Y. Fu; W. J. Kao;. Expert Opin. Drug Deliv.; 2010, 7(4), 429-444.
M. Golshan; M. Salami-Kalajahi; H. Roghani-Mamaqani; M. Mohammadi;. Polymer, 2017, 117, 287-294.
R. Gouda; H. Baishya; Z. Qing; J. Develop. Drugs, 2017, 6(2), 1000171; https://doi.org/10.4172/2329-6631.1000171.
G. Nikravan; V. Haddadi-Asl; M. Salami-Kalajahi; e-Polymers, 2019, 19(1), 203-214.
H.-G. Lee; Y.-S. Park; J.-H. Jeong; Y.-B. Kwon; D. H. Shin; J.-Y. Kim; Y.-S. Rhee; E.-S. Park; D.-W. Kim; C.-W. Park; Drug Des., Devel. Ther., 2019, 13, 2459–2474.
M. M. Leena; M. G. Antoniraj; J. A. Moses; C. Anandharamakrishnan; J. Drug Deliv. Sci. Technol., 2020, 57, 101678; https://doi.org/10.1016/j.jddst.2020.101678.
S. Bose; S. Tarafder; Acta Biomater., 2012, 8(4), 1401-1421.
M. M. Mailafiya; K. Abubakar; A. Danmaigoro; S. M. Chiroma; E. B. A. Rahim; M. A. M. Moklas; Z. A. B. Zakaria; Biomed. Res. Ther., 2019, 6(12), 3518- 3540.
S. Mondal; G. Hoang; P. Manivasagan; H. Kim; J. Oh; Ceram. Int., 2019, 45(14), 17081-17093.
E. Landi; A. Tampieri; G. Celotti; S. Sprio; M. Sandri; G. Logroscino; Acta Biomater., 2007, 3(6), 961-969.
E. Boanini; M. Gazzano; A. Bigi; Acta Biomater., 2010, 6(6), 1882-1894.
N. C. Andres; N. L. D'Elía; J. M. Ruso; A. E. Campelo; V. L. Massheimer; P. V. Messina; ACS Appl. Mater. Interfaces, 2017, 9(18), 15698-15710.
S. Chen; Y. Shi; X. Zhang; J. Ma; J. Biomed Mater Res A., 2019, 107(11), 2512-2521.
J. Beuvelot; Y. Mauras; G. Mabilleau; H. Marchand-Libouban; D. Chapparda; Dig. J. Nanomater. Biostruct., 2013, 8(1), 207-217.
S. V. Dorozhkin; J. Colloid. Interf. Sci., 1997, 191(2), 489-497.
T. Kokubo; Biomaterials, 1991, 12(2), 155-163.
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2021 Studia Universitatis Babeș-Bolyai Chemia
This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.