Yıl: 2021 Cilt: 7 Sayı: 1 Sayfa Aralığı: 135 - 156 Metin Dili: İngilizce DOI: 10.17515/resm2020.199na0613 İndeks Tarihi: 29-06-2021

Evaluation of nano sized Mg@BTC metal organic framework as a drug carrier: A long term experimental and predictive theoretical study

Öz:
Metal Organic Frameworks (MOFs) have found wide applications as a drugcarrier in nanotherapeutics because of adjustable pore-sizes, controllablestructural properties, large surface area and high pore volume. In this work,nanosized Mg@BTC is synthesized by electrochemical method and used as a newdrug carrier for ibuprofen. The ibuprofen (IB) is loaded to the Mg@BTC 1:1 ratiowith the amount of %99.8. The release of ibuprofen from nanocarrier has beenobserved experimentally for long term. After 100.5 hours, the release ratio yields36 %. The ibuprofen has been tested at 40 ± 0.5 °C. System showed a rapidrelease after 100 hours, the release ratio yields 72.29 %. The release profile ofIB loaded Mg@BTC is tested by using model depended mathematical models toget observation and prediction of the release. Zero Order Model, First OrderModel, Higuchi Model, Peppas Model and Hixon Model functions are fitted to therelease profiles. Watson’s U Squared Method is used to test the fit strength of themodels. Observation from the release profiles, it is seemed Peppas Model yieldsthe best results. Also, thermodynamic analysis has been studied.
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  • [1] Gangu KK., et al. A review on contemporary Metal-Organic Framework materials. Inorganica Chimica Acta, 2016; 446:61-74. https://doi.org/10.1016/j.ica.2016.02.062
  • [2] Amir Reza Abbasi MR. Influence of the ultrasound-assisted synthesis of Cu-BTC metalorganic frameworks nanoparticles on uptake and release properties of rifampicin. Journal of Molecular Structure 2017; 36e42:1131.
  • [3] Lestari WW., et al. Green and facile synthesis of MOF and nano MOF containing zinc(II) and benzen 1,3,5-tri carboxylate and its study in ibuprofen slow-release. Materials Chemistry and Physics, 2018; 204:141-146. https://doi.org/10.1016/j.matchemphys.2017.10.034
  • [4] Alizadeh S, Nematollahi D. Electrochemically Assisted Self-Assembly Technique for the Fabrication of Mesoporous Metal-Organic Framework Thin Films: Composition of 3D Hexagonally Packed Crystals with 2D Honeycomb-like Mesopores. J Am Chem Soc, 2017; 139:13 4753-4761. https://doi.org/10.1021/jacs.6b12564
  • [5] Alinaghi Langari AA., et al. Efficient extraction of aromatic amines in the air by the needle trap device packed with the zirconium based metal-organic framework sorbent. RSC Advances, 2020; 10:23 13562-13572. https://doi.org/10.1039/D0RA00687D
  • [6] Firoozichahak A., et al. UIO-66-NH2 Packed Needle Trap for Accurate and Reliable Sampling and Analysis of the Halogenated Volatile Organic Compounds in Air. International Journal of Environmental Analytical Chemistry, 2019; 1-18. https://doi.org/10.1080/03067319.2019.1664497
  • [7] Firoozichahak A., et al. Development of a needle trap device packed with titaniumbased metal-organic framework sorbent for extraction of phenolic derivatives in air. J Sep Sci, 2020; 43:5 1011-1018. https://doi.org/10.1002/jssc.201900938
  • [8] Pirmohammadi Z., et al. Determination of urinary methylhippuric acids using MIL-53- NH2 (Al) metal-organic framework in microextraction by packed sorbent followed by HPLC-UV analysis. Biomed Chromatogr, 2020; 34:1 e4725. https://doi.org/10.1002/bmc.4725
  • [9] Saedi N., et al. A needle trap device packed with MIL-100(Fe) metal organic frameworks for efficient headspace sampling and analysis of urinary BTEXs. Biomed Chromatogr, 2020; 34:4 e4800. https://doi.org/10.1002/bmc.4800
  • [10] Soury S., et al. Development of a needle trap device packed with zinc based metalorganic framework sorbent for the sampling and analysis of polycyclic aromatic hydrocarbons in the air. Microchemical Journal, 2019; 148:346-354. https://doi.org/10.1016/j.microc.2019.05.019
  • [11] Zhou JM,Shi W, Li HM, Li H, Cheng P. Phys. Chem. C, 2014; 118 416. https://doi.org/10.1021/jp4097502
  • [12] Yao Q., et al. Series of Highly Stable Isoreticular Lanthanide Metal-Organic Frameworks with Expanding Pore Size and Tunable Luminescent Properties. Chemistry of Materials, 2015; 27:15 5332-5339. https://doi.org/10.1021/acs.chemmater.5b01711
  • [13] K. Jihoon YS, Deok J, Seung YK. Microporous Mesoporous Mater, 2015; 202 8.
  • [14] Hu ZJ, Jian Z, Xiu FY, Xiao PS, Ai HY. Inorg. Chem. Commun, 2015; 54 54.
  • [15] Rao CNR., et al. Hybrid inorganic-organic materials: a new family in condensed matter physics (vol 20, art no 083202, 2006). Journal of Physics-Condensed Matter, 2008; 20:15. https://doi.org/10.1088/0953-8984/20/8/083202
  • [16] Yao Q, Gómez AB, Su J, Pascanu V, Yun Y, Zheng H, Chen H, Liu L, Abdelhamid HN, Martín-Matute B, Zou X. Chem. Mater, 2015; 27 5332. https://doi.org/10.1021/acs.chemmater.5b01711
  • [17] Blundell SJ, Pratt FL. Organic and molecular magnets. Journal of Physics-Condensed Matter, 2004; 16:24 R771-R828. https://doi.org/10.1088/0953-8984/16/24/R03
  • [18] Sheldon RA, Arends IWCE, Hanefeld U. Green Chemistry and Catalysis. Wiley-VCH, 2007. https://doi.org/10.1002/9783527611003
  • [19] Lucena FRS, de Araújo LCC, Rodrigues MD, da Silva TG, Pereira VRA, Militão GCG, Fontes DAF, Rolim-Neto PJ, da Silva FF, Nascimento SC. Induction of cancer cell death by apoptosis and slow release of 5-fluoracil from metal-organic frameworks Cu-BTC. Biomedicine & Pharmacotherapy. Silene C. Nascimento, 2013; 67 707-713. https://doi.org/10.1016/j.biopha.2013.06.003
  • [20] Lazaro IA, Forgan RS. Application of zirconium MOFs in drug delivery and biomedicine. Coordination Chemistry Reviews, 2019; 380:230-259. https://doi.org/10.1016/j.ccr.2018.09.009
  • [21] Silva EDV., et al. Solvent-free synthesis of acetylated cashew gum for oral delivery system of insulin. Carbohydrate Polymers, 2019; 207:601-608. https://doi.org/10.1016/j.carbpol.2018.11.071
  • [22] Vasconcelos IB, Wanderley KA, Rodrigues NM, da Costa Jr. NB, Freire RO, Junior SA. Host-guest interaction of ZnBDC-MOF þ doxorubicin: A theoretical and experimental study. Journal of Molecular Structure, 2017; 1131 36e42. https://doi.org/10.1016/j.molstruc.2016.11.034
  • [23] Bushra R, Aslam N. Oman Med. J., 2010; 25 (3) 155e1661. https://doi.org/10.5001/omj.2010.49
  • [24] Moss Jr WM, Bendel Lp, Et Al. A multicenter, randomized, double-blind placebocontrolled, single dose trial of the safety and efficacy of intravenous ibuprofen for treatment of pain in pediatric patients undergoing tonsillectomy. Paediatr Anaesth, 2014; 9:24 483. https://doi.org/10.1111/pan.12381
  • [25] Gouda R. Baishya H, Qing Z. Application of Mathematical Models in Drug release Kinetics of Carbidopa and Levadopa ER Taablets. Journal of Developing Drugs, 2017; 6:2.
  • [26] Higuchi T., et al., Pharmaceutical analysis, Interscience Publishers, New York,, 1961.
  • [27] Ritger PL, Peppas NA. Transport of Penetrants in the Macromolecular Structure of Coals .7. Transport in Thin Coal Sections. Fuel, 1987; 66:10 1379-1388. https://doi.org/10.1016/0016-2361(87)90185-2
  • [28] Hixon AW, Crowell JH. Dependence of Reaction Velocity upon Surface and Agiation. Industrial and Engineering Chemistry, 1931; 923-931. https://doi.org/10.1021/ie50260a018
  • [29] Batschelet E. United States. Office of Naval Research., Statistical methods for the analysis of problems in animal orientation and certain biological rhythms, American Institute of Biological Sciences, Washington, 1965.
  • [30] Freire LMC., et al. Understanding Drug Release Data through Thermodynamic Analysis. Materials, 2017; 10:6. https://doi.org/10.3390/ma10060651
  • [31] Wang Z., et al. Self-Supported Catalysts. Chemical Reviews, 2009; 109:2 322-359. https://doi.org/10.1021/cr800406u
  • [32] Gaffney JS, Marley NA, Jones DE. Fourier Transform Infrared (FTIR) Spectroscopy. Characterization of Materials, 2012. https://doi.org/10.1002/0471266965.com107.pub2
  • [33] Bella F., et al. Light cured networks containing metal organic frameworks as efficient and durable polymer electrolytes for dye-sensitized solar cells. Journal of Materials Chemistry A, 2013; 1:32 9033-9036. https://doi.org/10.1039/c3ta12135f
  • [34] Garzon LC, Martinez F. Temperature Dependence of Solubility for Ibuprofen in Some Organic and Aqueous Solvents. Journal of Solution Chemistry, 2004; 33:11 1379-1395. https://doi.org/10.1007/s10953-004-1051-2
  • [35] Langer R, Peppas N. Chemical and Physical Structure of Polymers as Carriers for Controlled Release of Bioactive Agents - a Review. Journal of Macromolecular Science- Reviews in Macromolecular Chemistry and Physics, 1983; C23:1 61-126. https://doi.org/10.1080/07366578308079439
  • [36] Plackett RL. Pearson,Karl and the Chi-Squared Test. International Statistical Review, 1983; 51:1 59-72. https://doi.org/10.2307/1402731
  • [37] Ju RTC., et al. Drug-Release from Hydrophilic Matrices .1. New Scaling Laws for Predicting Polymer and Drug-Release Based on the Polymer Disentanglement Concentration and the Diffusion Layer. Journal of Pharmaceutical Sciences, 1995; 84:12 1455-1463. https://doi.org/10.1002/jps.2600841213
  • [38] Fick A. On Liquid Diffusion (Reprinted from the London, Edinburgh, and Dublin Philosophical Magazine and Journal of Science, Vol 10, Pg 30, 1855). Journal of Membrane Science, 1995; 100:1 33-38. https://doi.org/10.1080/14786445508641925
  • [39] Narasimhan B, Peppas NA. Molecular analysis of drug delivery systems controlled by dissolution of the polymer carrier. J Pharm Sci, 1997; 86:3 297-304. https://doi.org/10.1021/js960372z
  • [40] Langer MB. Drugs and the pressure to be perfect, Rosen Pub. Group, New York, 1998.
  • [41] Siepmann J., et al. A new model describing the swelling and drug release kinetics from hydroxypropyl methylcellulose tablets. Journal of Pharmaceutical Sciences, 1999; 88:1 65-72. https://doi.org/10.1021/js9802291
  • [42] Siepmann J., et al. HPMC-matrices for controlled drug delivery: A new model combining diffusion, swelling, and dissolution mechanisms and predicting the release kinetics. Pharmaceutical Research, 1999; 16:11 1748-1756.
  • [43] Siepmann J, Peppas NA. Modeling of drug release from delivery systems based on hydroxypropyl methylcellulose (HPMC). Advanced Drug Delivery Reviews, 2001; 48:2- 3 139-157. https://doi.org/10.1016/S0169-409X(01)00112-0
  • [44] Grassi M., et al. Modeling of drug release from partially coated matrices made of a high viscosity HPMC. International Journal of Pharmaceutics, 2004; 276:1-2 107-114. https://doi.org/10.1016/j.ijpharm.2004.02.016
APA AKYÜZ G, Elmas A, ANDAÇ M, ANDAC O (2021). Evaluation of nano sized Mg@BTC metal organic framework as a drug carrier: A long term experimental and predictive theoretical study. , 135 - 156. 10.17515/resm2020.199na0613
Chicago AKYÜZ Güliz,Elmas Aykut,ANDAÇ Müberra,ANDAC Omer Evaluation of nano sized Mg@BTC metal organic framework as a drug carrier: A long term experimental and predictive theoretical study. (2021): 135 - 156. 10.17515/resm2020.199na0613
MLA AKYÜZ Güliz,Elmas Aykut,ANDAÇ Müberra,ANDAC Omer Evaluation of nano sized Mg@BTC metal organic framework as a drug carrier: A long term experimental and predictive theoretical study. , 2021, ss.135 - 156. 10.17515/resm2020.199na0613
AMA AKYÜZ G,Elmas A,ANDAÇ M,ANDAC O Evaluation of nano sized Mg@BTC metal organic framework as a drug carrier: A long term experimental and predictive theoretical study. . 2021; 135 - 156. 10.17515/resm2020.199na0613
Vancouver AKYÜZ G,Elmas A,ANDAÇ M,ANDAC O Evaluation of nano sized Mg@BTC metal organic framework as a drug carrier: A long term experimental and predictive theoretical study. . 2021; 135 - 156. 10.17515/resm2020.199na0613
IEEE AKYÜZ G,Elmas A,ANDAÇ M,ANDAC O "Evaluation of nano sized Mg@BTC metal organic framework as a drug carrier: A long term experimental and predictive theoretical study." , ss.135 - 156, 2021. 10.17515/resm2020.199na0613
ISNAD AKYÜZ, Güliz vd. "Evaluation of nano sized Mg@BTC metal organic framework as a drug carrier: A long term experimental and predictive theoretical study". (2021), 135-156. https://doi.org/10.17515/resm2020.199na0613
APA AKYÜZ G, Elmas A, ANDAÇ M, ANDAC O (2021). Evaluation of nano sized Mg@BTC metal organic framework as a drug carrier: A long term experimental and predictive theoretical study. Research on Engineering Structures and Materials, 7(1), 135 - 156. 10.17515/resm2020.199na0613
Chicago AKYÜZ Güliz,Elmas Aykut,ANDAÇ Müberra,ANDAC Omer Evaluation of nano sized Mg@BTC metal organic framework as a drug carrier: A long term experimental and predictive theoretical study. Research on Engineering Structures and Materials 7, no.1 (2021): 135 - 156. 10.17515/resm2020.199na0613
MLA AKYÜZ Güliz,Elmas Aykut,ANDAÇ Müberra,ANDAC Omer Evaluation of nano sized Mg@BTC metal organic framework as a drug carrier: A long term experimental and predictive theoretical study. Research on Engineering Structures and Materials, vol.7, no.1, 2021, ss.135 - 156. 10.17515/resm2020.199na0613
AMA AKYÜZ G,Elmas A,ANDAÇ M,ANDAC O Evaluation of nano sized Mg@BTC metal organic framework as a drug carrier: A long term experimental and predictive theoretical study. Research on Engineering Structures and Materials. 2021; 7(1): 135 - 156. 10.17515/resm2020.199na0613
Vancouver AKYÜZ G,Elmas A,ANDAÇ M,ANDAC O Evaluation of nano sized Mg@BTC metal organic framework as a drug carrier: A long term experimental and predictive theoretical study. Research on Engineering Structures and Materials. 2021; 7(1): 135 - 156. 10.17515/resm2020.199na0613
IEEE AKYÜZ G,Elmas A,ANDAÇ M,ANDAC O "Evaluation of nano sized Mg@BTC metal organic framework as a drug carrier: A long term experimental and predictive theoretical study." Research on Engineering Structures and Materials, 7, ss.135 - 156, 2021. 10.17515/resm2020.199na0613
ISNAD AKYÜZ, Güliz vd. "Evaluation of nano sized Mg@BTC metal organic framework as a drug carrier: A long term experimental and predictive theoretical study". Research on Engineering Structures and Materials 7/1 (2021), 135-156. https://doi.org/10.17515/resm2020.199na0613