127
Views
1
CrossRef citations to date
0
Altmetric
Research Articles

pH-responsive release system of topiramate transported on silica nanoparticles by melting method

, , , &
Pages 126-145 | Received 15 Jun 2020, Accepted 06 Dec 2020, Published online: 16 Dec 2020

References

  • Pezzini BR , Silva MAS , Ferraz HG. Formas farmacêuticas sólidas orais de liberação prolongada: sistemas monolíticos e multiparticulados. Rev Bras Ciências Farm. 2007;43:491–502.
  • Rocha MA , Constantino VRL , Koh IHJ , et al. Modified drug release system based on Sulindac and layered double hydroxide: an in vivo Raman investigation. Vib Spectrosc. 2016;87:60–66.
  • Bolla PK , Rodriguez VA , Kalhapure RS , et al. A review on pH and temperature responsive gels and other less explored drug delivery systems. J Drug Deliv Sci Technol. 2018;46:416–435.
  • Abouelmagd SA , Abd Ellah NH , Amen O , et al. Self-assembled tannic acid complexes for pH-responsive delivery of antibiotics: role of drug-carrier interactions. Int J Pharm. 2019;562:76–85.,
  • Zhiyong W , Xiaoshu C , Chengze X , et al. Nanoparticle sizing by image processing with dynamic light scattering. 光学学报. 2014;34(1):0129002.
  • Lopes CM , Lobo JMS , Costa P. Formas farmacêuticas de liberação modificada: polímeros hidrifílicos. Rev Bras Cienc Farm. 2005;41(2):143–154.
  • Florek J , Caillard R , Kleitz F. Evaluation of mesoporous silica nanoparticles for oral drug delivery - current status and perspective of MSNs drug carriers . Nanoscale. 2017;9(40):15252–15277.
  • Liang Y , Zhao X , Ma PX , et al. pH-responsive injectable hydrogels with mucosal adhesiveness based on chitosan-grafted-dihydrocaffeic acid and oxidized pullulan for localized drug delivery . J Colloid Interface Sci. 2019;536:224–234.
  • Zhang L , Wang L , Guo B , et al. Cytocompatible injectable carboxymethyl chitosan/N-isopropylacrylamide hydrogels for localized drug delivery. Carbohydr Polym. 2014;103:110–118.
  • Qu J , Zhao X , Ma PX , et al. pH-responsive self-healing injectable hydrogel based on N-carboxyethyl chitosan for hepatocellular carcinoma therapy. Acta Biomater. 2017;58:168–180.
  • Qu J , Zhao X , Ma PX , et al. Injectable antibacterial conductive hydrogels with dual response to an electric field and pH for localized “smart” drug release. Acta Biomater. 2018;72:55–69.
  • Peng S , Yuan X , Lin W , et al. pH-responsive controlled release of mesoporous silica nanoparticles capped with schiff base copolymer gatekeepers: experiment and molecular dynamics simulation. Colloids Surf B Biointerfaces. 2019;176:394–403.
  • Chen C , Sun W , Wang X , et al. Multifunctional nanomedicine with silica: Role of silica in nanoparticles for theranostic, imaging, and drug monitoring. J Colloid Interface Sci. 2018;521:261–279.
  • Pratap R , Gangadharappa HV , Mruthunjaya K. Journal of drug delivery science and technology phospholipids: unique carriers for drug delivery systems. J Drug Deliv Sci Technol. 2017;39:166–179.
  • Sun Y , Su J , Liu G , et al. European journal of pharmaceutical sciences advances of blood cell-based drug delivery systems. Eur J Pharm Sci. 2017;96:115–128.,
  • Yang M , Xie S , Li Q , et al. Effects of polyvinylpyrrolidone both as a binder and pore-former on the release of sparingly water-soluble topiramate from ethylcellulose coated pellets. Int J Pharm. 2014;465(1-2):187–196.,
  • Cho CH , Min JH , Hwang KM , et al. Development of sustained-release microparticles containing tamsulosin HCL for orally disintegrating tablet using melt-adsorption method. Drug Deliv Transl Res. 2018;8(3):552–564.
  • Morales V , Ortiz J , Bautista F , et al. Modelling the adsorption and controlled release of drugs from the pure and amino surface-functionalized mesoporous silica hosts. Microporous Mesoporous Mater. 2018;262:23–34.
  • Zůza D , Šoltys M , Mužík J , et al. Silica particles with three levels of porosity for efficient melt amorphisation of drugs. Microporous Mesoporous Mater. 2019;274:61–69.
  • Lizoňová D , Mužík J , Šoltys M , et al. Molecular-level insight into hot-melt loading and drug release from mesoporous silica carriers. Eur J Pharm Biopharm. 2018;130:327–335.
  • Hong S , Shen S , Tan DCT , et al. High drug load, stable, manufacturable and bioavailable fenofibrate formulations in mesoporous silica: a comparison of spray drying versus solvent impregnation methods. Drug Deliv. 2016;23(1):316–327.,
  • Kwang-Ho CW , P J-S , H S-J. Enhancement of the dissolution rate and bioavailability of fenofibrate by a melt-adsorption method using supercritical carbon dioxide. Int. J. Nanomedicine. 2012;7:5565–5575.
  • Uejo F , Limwikrant W , Moribe K , et al. Dissolution improvement of fenofibrate by melting inclusion in mesoporous silica. Asian J. Pharm. Sci. 2013;8(6):329–335.
  • Alves LDS , de Lyra MAM , Rolim LA , et al. Avanços, propriedades e aplicações de dispersões sólidas no desenvolvimento de formas farmacêuticas sólidas. Rev. Ciencias Farm Basica e Apl. 2012;33:17–25.
  • Shen SC , Ng WK , Hu J , et al. Solvent-free direct formulation of poorly-soluble drugs to amorphous solid dispersion via melt-absorption. Adv. Powder Technol. 2017;28(5):1316–1324.
  • Aerts CA , Verraedt E , Depla A , et al. Potential of amorphous microporous silica for ibuprofen controlled release. Int J Pharm. 2010;397(1-2):84–91.,
  • Tran P , Pyo Y-C , Kim D-H , et al. Overview of the manufacturing methods of solid dispersion technology for improving the solubility of poorly water-soluble drugs and application to anticancer drugs. pharmaceutics. 2019;11(3):132. 11030132.
  • do R.M J. Elton Clementino da Silva, Maria Valéria Robles Velasco de Paola, Análise térmica aplicada à cosmetologia, 43 2007.
  • Rego F , Soares Dias AP , Casquilho M , et al. Fast determination of lignocellulosic composition of poplar biomass by thermogravimetry. Biomass Bioenergy. 2019;122:375–380.
  • de Almeida JMF , Júnior ED , Verríssimo LM , et al. pH-Dependent release system of isoniazid carried on nanoparticles of silica obtained from expanded perlite. Appl. Surf. Sci. 2019;489:297–312.
  • Mayara J , De Almeida F , Maria E , et al. Salting-out assisted liquid-liquid extraction method combined with GC-MS for the determination of topiramate in aqueous solutions: development and application of the methodology, 2019.
  • Costa P , Sousa Lobo JM. Modeling and comparison of dissolution profiles. Eur J Pharm Sci. 2001;13(2):123–133.
  • Rahman IA , Padavettan V. Synthesis of Silica nanoparticles by Sol-Gel: Size-dependent properties, surface modification, and applications in silica-polymer nanocompositesa review. J. Nanomater. 2012;2012:1–15. ).
  • Khaira R , Sharma J , Saini V. Development and characterization of nanoparticles for the delivery of gemcitabine hydrochloride. Sci. World J. 2014;2014:1–6. doi:Artn 560962\r
  • Dave V , Yadav RB , Kushwaha K , et al. Lipid-polymer hybrid nanoparticles: Development & statistical optimization of norfloxacin for topical drug delivery system. Bioact Mater. 2017;2: 269–280.
  • Kaasalainen M , Mäkilä E , Riikonen J , et al. Salonen, Effect of isotonic solutions and peptide adsorption on zeta potential of porous silicon nanoparticle drug delivery formulations. Int J Pharm. 2012;431(1-2):230–236.
  • Diab R , Canilho N , Pavel IA , et al. Silica-based systems for oral delivery of drugs, macromolecules and cells. Adv Colloid Interface Sci. 2017;249:346–362.
  • Veres P , Kéri M , Bányai I , et al. Mechanism of drug release from silica-gelatin aerogel-Relationship between matrix structure and release kinetics. Colloids Surf B Biointerfaces. 2017;152:229–237.
  • Zhao D , Chen C , Yao K , et al. Designing biocompatible Ti-based amorphous thin films with no toxic element. J. Alloys Compd. 2017;707:142–147.
  • Moreira GF , Balbo A , Achete CA , et al. Aplicação da Calorimetria Exploratória Diferencial (DSC) para determinação da pureza de fármacos. Prod. Produção. 2010;11:22–29.
  • Sena DM , Freire PTC , Filho JM , et al. Vibrational and thermal properties of crystalline topiramate. J Braz Chem Soc. 2008;19(8):1607–1613.
  • Salama NN , El Ries MA , Toubar S , et al. Thermoanalytical investigation of some sulfone-containing drugs. J Anal Methods Chem. 2012;2012:439082–439089.
  • Silverstein M. Robert KJD , Francis WX. Spectrometric identification of organic compounds; 2005.
  • Latifi L , Sohrabnezhad S , Hadavi M. Mesoporous silica as a support for poorly soluble drug: Influence of pH and amino group on the drug release. Microporous Mesoporous Mater. 2017;250:148–157.
  • Oliveira ÉS , de Almeida JMF , Damasceno E , et al. Evaluation of the applicability of thermogravimetry in the monitoring of the organofunctionalization process of expanded perlite. Thermochim. Acta. 2019;672:107–117.
  • Estelle Juère, Romain Caillard, Freddy Kleitz. Pore confinement and surface charge effects in protein-mesoporous silica nanoparticles formulation for oral drug delivery. Microporous Mesoporous Mater. 2020;306:110482.
  • Guo Q , Huang D , Kou X , et al. Synthesis of disperse amorphous SiO2nanoparticles via sol–gel process. Ceram. Int. 2017;43(1):192–196.
  • Zulfiqar U , Subhani T , Husain SW. Journal of Asian ceramic societies synthesis and characterization of silica nanoparticles from clay. Integr. Med. Res. 2016;4(1):91–96.
  • Zhang Y , Sun T , Jiang C. Biomacromolecules as carriers in drug delivery and tissue engineering. Acta Pharm Sin B. 2017;8(1):34–50.
  • Dijana Jelic SV. Tatsiana Liavitskaya, SC, 2019.
  • Ma X , Williams RO. Characterization of amorphous solid dispersions: an update. J Drug Deliv Sci Technol. 2019;50:113–124.
  • Prado LD , Rocha HVA. Estado sólido na indústria farmacêutica: uma breve revisão. Rev Virtual Quim. 2015;7(6):2080–2112.
  • Ahern RJ , Hanrahan JP , Tobin JM , et al. Comparison of fenofibrate-mesoporous silica drug-loading processes for enhanced drug delivery . Eur J Pharm Sci. 2013;50(3-4):400–409.
  • Pinto EC , Dolzan MD , Cabral LM , et al. Topiramate: a review of analytical approaches for the drug substance, its impurities and pharmaceutical formulations. J Chromatogr Sci. 2016;54(2):280–290.
  • Prudêncio Dutra M. d C , de Souza JF , Viana AC , et al. Rapid determination of the aromatic compounds methyl-anthranilate, 2′-aminoacetophenone and furaneol by GC-MS: Method validation and characterization of grape derivatives. Food Res. Int. 2018;107:613–618.
  • Wang M , Cai Z , Xu L. Coupling of acetonitrile deproteinization and salting-out extraction with acetonitrile stacking in chiral capillary electrophoresis for the determination of warfarin enantiomers. J Chromatogr A. 2011;1218(26):4045–4051.
  • Hyde AM , Zultanski SL , Waldman JH , et al. General principles and strategies for salting-out informed by the hofmeister series. Org Process Res Dev. 2017;21(9):1355–1370.
  • Jain D , Pathak D , Pathak K. Pharmaceutical product development technologies based on the biopharmaceutical classification system. Pharmazie. 2009; 64(8):483–490.
  • Niu Z , Yu C , He X , et al. Salting-out assisted liquid-liquid extraction combined with gas chromatography-mass spectrometry for the determination of pyrethroid insecticides in high salinity and biological samples . J Pharm Biomed Anal. 2017;143:222–227.
  • Diuzheva A , Balogh J , Studenyak Y , et al. A salting-out assisted liquid-liquid microextraction procedure for determination of cysteine followed by spectrophotometric detection. Talanta. 2019;194:446–451.
  • Grundl G , Müller M , Touraud D , et al. Salting-out and salting-in effects of organic compounds and applications of the salting-out effect of Pentasodium phytate in different extraction processes. J. Mol. Liq. 2017;236:368–375.
  • Magiera S , Kwietniowska E. Fast, simple and efficient salting-out assisted liquid-liquid extraction of naringenin from fruit juice samples prior to their enantioselective determination by liquid chromatography. Food Chem. 2016;211:227–234.
  • Jain D , Athawale R , Bajaj A , et al. Double-salting out assisted liquid-liquid extraction (SALLE) HPLC method for estimation of temozolomide from biological samples. J Chromatogr B Analyt Technol Biomed Life Sci. 2014;970:86–94.
  • Martins ML , Primel EG , Caldas SS , et al. Microextração Líquido-Líquido Dispersiva (DLLME): fundamentos e aplicações. Scientia Chromatographica 2012;4:35–51.
  • Gaware SA , Rokade KA , Kale SN. Silica-chitosan nanocomposite mediated pH-sensitive drug delivery. J Drug Deliv Sci Technol. 2019;49:345–351.
  • Giovaninni G , Moore CJ , Hall AJ , et al. V. Gubala, pH-Dependent silica nanoparticle dissolution and cargo release. Colloids Surf B Biointerfaces. 2018;169:242–248.
  • Parfenyuk EV , Dolinina ES. Design of silica carrier for controlled release of molsidomine: Effect of preparation methods of silica matrixes and their composites with molsidomine on the drug release kinetics in vitro. Eur J Pharm Biopharm. 2014;88(3):1038–1045.
  • Almeida JMF , Oliveira ÉS , Silva IN , et al. Adsorption of erichrome black T from aqueous solution onto expanded perlite modified with orthophenanthroline. Rev Virtual Quim. 2017;9:502–513.
  • Carazo E , Borrego-Sánchez A , García-Villén F , et al. Colloids and Surfaces B: biointerfaces assessment of halloysite nanotubes as vehicles of isoniazid. Colloids Surf B Biointerfaces. 2017;160:337–344.
  • Carazo E , Borrego-Sánchez A , Sánchez-Espejo R , et al. Kinetic and thermodynamic assessment on isoniazid/montmorillonite adsorption. Appl Clay Sci. 2018;165:82–90.
  • Billat PA , Roger E , Faure S , et al. Models for drug absorption from the small intestine: where are we and where are we going? Drug Discov Today. 2017;22(5):761–775.
  • Gounani Z , Asadollahi MA , Meyer RL , et al. Loading of polymyxin B onto anionic mesoporous silica nanoparticles retains antibacterial activity and enhances biocompatibility. Int J Pharm. 2018;537(1-2):148–161.
  • Moorcroft SCT , Jayne DG , Evans SD , et al. Stimuli-responsive release of antimicrobials using hybrid inorganic nanoparticle-associated drug-delivery systems. Macromol Biosci. 2018;18(12):1800207–1800214.
  • El-Hamshary H , El-Newehy MH , Moydeen Abdulhameed M , et al. Evaluation of clay-ionene nanocomposite carriers for controlled drug delivery: Synthesis, in vitro drug release, and kinetics. Mater Chem Phys. 2019;225:122–132.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.