371
Views
12
CrossRef citations to date
0
Altmetric
Articles

Using co-axial electrospray deposition to eliminate burst release of simvastatin from microparticles and to enhance induced osteogenesis

, , , & ORCID Icon
Pages 355-375 | Received 23 Jul 2018, Accepted 14 Dec 2018, Published online: 21 Feb 2019

References

  • Parhizkar M, Reardon PJT, Knowles JC, et al. Performance of novel high throughput multi electrospray systems for forming of polymeric micro/nanoparticles. Mater & Design. 2017;126:73–84.
  • Zhang L, Huang J, Si T, et al. Coaxial electrospray of microparticles and nanoparticles for biomedical applications. Expert Rev Med Devices. 2012;9:595–612.
  • Greiner A, Wendorff JH. Electrospinning: A fascinating method for the preparation of ultrathin fibres. Angew Chem Int Ed. 2007;46:5670–5703.
  • Bock N, Woodruff MA, Hutmacher DW, et al. Electrospraying, a reproducible method for production of polymeric microspheres for biomedical applications. Polymers. 2011;3:131–149.
  • Dahlin C, Johansson A. Iliac crest autogenous bone graft versus alloplastic graft and guided bone regeneration in the reconstruction of atrophic maxillae: A 5-year retrospective study on cost-effectiveness and clinical outcome. Clin Implant Dent Related Res. 2011;13:305–310.
  • Xiao CD, Shen XC, Tao L. Modified emulsion solvent evaporation method for fabricating core-shell microspheres. Int J Pharma. 2013;452:227–232.
  • Tezgel O, Szarpak-Jankowska A, Arnould A, et al. Chitosan-lipid nanoparticles (CS-LNPs): Application to siRNA delivery. J Colloid Interface Sci. 2018;510:45–56.
  • Ahsan SM, Thomas M, Reddy KK, et al. Chitosan as biomaterial in drug delivery and tissue engineering. Int J Biol Macromol. 2018;110:97–109.
  • Shitrit Y, Bianco-Peled H. Acrylated chitosan for mucoadhesive drug delivery systems. Int J Pharm. 2017;517:247–255.
  • Bonadio TGM, Freitas VF, Tominaga TT, et al. Polyvinylidene fluoride/hydroxyapatite/beta-tricalcium phosphate multifunctional biocomposite: Potentialities for bone tissue engineering. Current Appl Phys. 2017;17:767–773.
  • Yen SK, Lin CM. Cathodic reactions of electrolytic hydroxyapatite coating on pure titanium. Mater Chem Phys. 2003;77:70–76.
  • Zhou H, Lee J. Nanoscale hydroxyapatite particles for bone tissue engineering. Acta Biomaterialia. 2011;7:2769–2781.
  • Ramesh N, Moratti SC, Dias GJ. Hydroxyapatite-polymer biocomposites for bone regeneration: A review of current trends. J Biomed Mater Res B Appl Biomater. 2018;106(5):2046–2057.
  • Zhao XY, Zhu YJ, Zhao J, et al. Hydroxyapatite nanosheet-assembled microspheres: hemoglobin-templated synthesis and adsorption for heavy metal ions. J Colloid Interface Sci. 2014;416:11–18.
  • Iafisco M, Delgado-Lopez JM, Varoni EM, et al. Cell surface receptor targeted biomimetic apatite nanocrystals for cancer therapy. Small. 2013;9:3834–3844.
  • Shakir M, Jolly R, Khan MS, et al. Nano-hydroxyapatite/beta-CD/chitosan nanocomposite for potential applications in bone tissue engineering. Int J Biol Macromol. 2016;93:276–289.
  • Jang SJ, Kim SE, Han TS, et al. Bone regeneration of hydroxyapatite with granular form or porous scaffold in canine alveolar sockets. In Vivo. 2017;31:335–341.
  • Farokhi M, Mottaghitalab F, Samani S, et al. Silk fibroin/hydroxyapatite composites for bone tissue engineering. Biotechnol Adv. 2018; 36(1):68–91.
  • Mondal S, Pal U, Dey A. Natural origin hydroxyapatite scaffold as potential bone tissue engineering substitute. Ceram Int. 2016;42:18338–18346.
  • Nazeer MA, Yilgor E, Yilgor I. Intercalated chitosan/hydroxyapatite nanocomposites: Promising materials for bone tissue engineering applications. Carbohydr Polym. 2017;175:38–46.
  • Lawton JW. Zein: A history of processing and use. Cereal Chem. 2002;79:1–18.
  • Li YY, Liu HT, Han Q, et al. Cooperative antioxidative effects of zein hydrolysates with sage (Salvia officinalis) extract in a liposome system. Food Chem. 2017; 222:74–83.
  • Thanawatpoontawee S, Imyim A, Praphairaksit N. Iron-loaded zein beads as a biocompatible adsorbent for arsenic(V) removal. J Industr Eng Chem. 2016;43:127–132.
  • Tavernier I, Wijaya W, Van der Meeren P, et al. Food-grade particles for emulsion stabilization. Trends Food Sci Technol. 2016;50:159–174.
  • Blum A, Shamburek R. The pleiotropic effects of statins on endothelial function, vascular inflammation, immunomodulation and thrombogenesis. Atherosclerosis. 2009;203:325–330.
  • Davis ME, Korn MA, Gumucio JP, et al. Simvastatin reduces fibrosis and protects against muscle weakness after massive rotator cuff tear. J Shoulder Elbow Surg. 2015;24:280–287.
  • Pesaro AEP, Serrano CV, Fernandes JL, et al. Pleiotropic effects of ezetimibe/simvastatin vs. high dose simvastatin. Int J Cardiol. 2012;158:400–404.
  • Gutierrez G, Garrett IR, Rossini G, et al. Dermal application of lovastatin to rats causes greater increases in bone formation and plasma concentrations than when administered by oral gavage. J Bone Mineral Res. 2000;15:S427–S427.
  • Kong RP, Zhu XY, Meteleva ES, et al. Enhanced solubility and bioavailability of simvastatin by mechanochemically obtained complexes. Int J Pharma. 2017;534:108–118.
  • Ozek NS, Bal IB, Sara Y, et al. Structural and functional characterization of simvastatin-induced myotoxicity in different skeletal muscles. Biochim Biophys Acta-General Subjects. 2014;1840:406–415.
  • Zhu XY, Daghini E, Chade AR, et al. Disparate effects of simvastatin on angiogenesis during hypoxia and inflammation. Life Sci. 2008;83:801–809.
  • El-Azab MF, Hazem RM, Moustafa YM. Role of simvastatin and/or antioxidant vitamins in therapeutic angiogenesis in experimental diabetic hindlimb ischemia: effects on capillary density, angiogenesis markers, and oxidative stress. Eur J Pharmacol. 2012;690:31–41.
  • Ishak RA, Mortada ND, Zaki NM, et al. Impact of microparticle formulation approaches on drug burst release: a level A IVIVC. J Microencapsul. 2014;31:674–684.
  • Thote AJ, Chappell JT, Jr., Gupta RB, et al. Reduction in the initial-burst release by surface crosslinking of PLGA microparticles containing hydrophilic or hydrophobic drugs. Drug Dev Ind Pharm. 2005;31:43–57.
  • Brazel CS, Peppas NA. Mechanisms of solute and drug transport in relaxing, swellable, hydrophilic glassy polymers. Polymer. 1999;40:3383–3398.
  • Esmaeili F, Atyabi F, Dinarvand R. Preparation and characterization of estradiol-loaded PLGA nanoparticles using homogenization-solvent diffusion method. Daru-J Faculty Pharm. 2008;16:196–202.
  • de Azevedo CR, von Stosch M, Costa MS, et al. Modeling of the burst release from PLGA micro- and nanoparticles as function of physicochemical parameters and formulation characteristics. Int J Pharma. 2017;532:229–240.
  • Messaritaki A, Black SJ, van der Walle CF, et al. NMR and confocal microscopy studies of the mechanisms of burst drug release from PLGA microspheres. J Controlled Release. 2005;108:271–281.
  • Fu K, Harrell R, Zinski K, et al. A potential approach for decreasing the burst effect of protein from PLGA microspheres. J Pharma Sci. 2003;92:1582–1591.
  • Huang X, Brazel CS. On the importance and mechanisms of burst release in matrix-controlled drug delivery systems. J Controlled Release. 2001;73:121–136.
  • Kong LY, Ziegler GR. Fabrication of pure starch fibers by electrospinning. Food Hydrocolloids. 2014;36:20–25.
  • Zhu X, Yan T, Yao W, et al. [Optimization of the method for isolating and culturing rat mesenchymal stem cells]. Nan Fang Yi Ke Da Xue Xue Bao. 2014;34:1621–1626, 1631.
  • Ding Y, Su Y, Lv Z, et al. Poly (fumaroyl bioxirane) maleate: A potential functional scaffold for bone regeneration. Mater Sci Eng C Mater Biol Appl. 2017;76:249–259.
  • Li Z, Ning S, Su X, et al. Enterovirus 71 antagonizes the inhibition of the host intrinsic antiviral factor A3G. Nucleic Acids Res. 2018;46(21):11514–11527.
  • Tang KQ, Smith RD. Theoretical prediction of charged droplet evaporation and fission in electrospray ionization. Int J Mass Spectr. 1999;185:97–105.
  • Balashanmugam P, Durai P, Balakumaran MD, et al. Phytosynthesized gold nanoparticles from C. roxburghii DC. leaf and their toxic effects on normal and cancer cell lines. J Photochem Photobiol B, Biol. 2016;165:163–173.
  • Vermes I, Haanen C, Reutelingsperger C. Flow cytometry of apoptotic cell death. J Immunol Methods. 2000;243:167–190.
  • Chen FM, Liu X. Advancing biomaterials of human origin for tissue engineering. Prog Polym Sci. 2016;53:86–168.
  • Alberts AW. Lovastatin and simvastatin–inhibitors of HMG CoA reductase and cholesterol biosynthesis. Cardiology. 1990; 77(Suppl 4):14–21.
  • Chuang SC, Liao HJ, Li CJ, et al. Simvastatin enhances human osteoblast proliferation involved in mitochondrial energy generation. Eur J Pharmacol. 2013;714:74–82.
  • Pauly S, Luttosch F, Morawski M, et al. Simvastatin locally applied from a biodegradable coating of osteosynthetic implants improves fracture healing comparable to BMP-2 application. Bone. 2009;45:505–511.
  • Yamashita M, Otsuka F, Mukai T, et al. Simvastatin inhibits osteoclast differentiation induced by bone morphogenetic protein-2 and RANKL through regulating MAPK, AKT and Src signaling. Regul Pept. 2010;162:99–108.
  • Martin V, Bettencourt A. Bone regeneration: Biomaterials as local delivery systems with improved osteoinductive properties. Mater Sci Eng C Mater Biol Appl. 2018;82:363–371.
  • Soares DG, Zhang Z, Mohamed F, et al. Simvastatin and nanofibrous poly(l-lactic acid) scaffolds to promote the odontogenic potential of dental pulp cells in an inflammatory environment. Acta Biomater. 2018;68:190–203.

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.