Nanomagnetite-embedded PLGA Spheres for Multipurpose Medical Applications
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Synthesis Methods
2.2.1. Synthesis of Fe3O4 Nanoparticles
2.2.2. Synthesis of Fe3O4-Embedded Biopolymeric Spheres
2.3. Physicochemical Investigation
2.3.1. Transmission Electron Microscopy (TEM)
2.3.2. Scanning Electron Microscopy (SEM)
2.3.3. Fourier-Transform Infrared Spectroscopy (FT-IR)
2.3.4. Ultraviolet-Visible Spectrophotometry (UV-Vis)
2.4. Drug Release Study
2.4.1. Drug Release under Dynamic Conditions
2.4.2. Drug Release under External Activation
2.5. Biological Evaluation
2.5.1. Cell Cultures
2.5.2. Cell Viability
2.5.3. Cell Adhesion and Morphology
2.6. Microbiological Evaluation
2.6.1. Microbial Strains and Growth Conditions
2.6.2. Development of the Planktonic Cultures
2.6.3. Biofilm Development
3. Results and Discussion
3.1. PLGA-Fe3O4-IBUP Biopolymeric Spheres
3.2. Drug Release Study under Dynamic Conditions
3.3. Drug Release Study under External Activation
3.4. Biological Evaluation of Nanostructured Biopolymeric Spheres
3.4.1. Cellular Viability
3.4.2. Cellular Adhesion and Morphology
3.5. Microbiological Evaluation of Nanostructured Biopolymeric Spheres
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
- Davoodi, P.; Lee, L.Y.; Xu, Q.; Sunil, V.; Sun, Y.; Soh, S.; Wang, C.H. Drug delivery systems for programmed and on-demand release. Adv. Drug Deliv. Rev. 2018, 132, 104–138. [Google Scholar] [CrossRef] [PubMed]
- Hossen, S.; Hossain, M.K.; Basher, M.K.; Mia, M.N.H.; Rahman, M.T.; Uddin, M.J. Smart nanocarrier-based drug delivery systems for cancer therapy and toxicity studies: A review. J. Adv. Res. 2019, 15, 1–18. [Google Scholar] [CrossRef] [PubMed]
- Habibi, N.; Kamaly, N.; Memic, A.; Shafiee, H. Self-assembled peptide-based nanostructures: Smart nanomaterials toward targeted drug delivery. Nano Today 2016, 11, 41–60. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Tandon, B.; Magaz, A.; Balint, R.; Blaker, J.J.; Cartmell, S.H. Electroactive biomaterials: Vehicles for controlled delivery of therapeutic agents for drug delivery and tissue regeneration. Adv. Drug Deliv. Rev. 2018, 129, 148–168. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Barclay, T.G.; Day, C.M.; Petrovsky, N.; Garg, S. Review of polysaccharide particle-based functional drug delivery. Carbohydr. Polym. 2019, 221, 94–112. [Google Scholar] [CrossRef] [PubMed]
- Zhu, Y.; Liao, L. Applications of Nanoparticles for Anticancer Drug Delivery: A Review. J. Nanosci Nanotechnol. 2015, 15, 4753–4773. [Google Scholar] [CrossRef] [PubMed]
- Cagel, M.; Tesan, F.C.; Bernabeu, E.; Salgueiro, M.J.; Zubillaga, M.B.; Moretton, M.A.; Chiappetta, D.A. Polymeric mixed micelles as nanomedicines: Achievements and perspectives. Eur. J. Pharm. Biopharm. 2017, 113, 211–228. [Google Scholar] [CrossRef] [PubMed]
- Jacob, J.; Haponiuk, J.T.; Thomas, S.; Gopi, S. Biopolymer based nanomaterials in drug delivery systems: A review. Mater. Today Chem. 2018, 9, 43–55. [Google Scholar] [CrossRef]
- PubMed. Available online: www.ncbi.nlm.nih.gov/pubmed (accessed on 20 July 2019).
- Scopus. Available online: www.scopus.com (accessed on 20 July 2019).
- Science Direct. Available online: www.sciencedirect.com (accessed on 20 July 2019).
- Rizvi, S.A.A.; Saleh, A.M. Applications of nanoparticle systems in drug delivery technology. Saudi Pharm. J. 2018, 26, 64–70. [Google Scholar] [CrossRef] [PubMed]
- Patra, J.K.; Das, G.; Fraceto, L.F.; Ramos Campos, E.V.; del Pilar Rodriguez-Torres, M.; Acosta-Torres, L.S.; Diaz-Torres, L.A.; Grillo, R.; Swamy, M.K.; Sharma, S.; et al. Nano based drug delivery systems: Recent developments and future prospects. J. Nanobiotechnol. 2018, 16, 71. [Google Scholar] [CrossRef] [PubMed]
- Lombardo, D.; Kiselev, M.A.; Caccamo, M.T. Smart Nanoparticles for Drug Delivery Application: Development of Versatile Nanocarrier Platforms in Biotechnology and Nanomedicine. J. Nanomater. 2019, 2019, 3702518. [Google Scholar] [CrossRef]
- Shishir, M.R.I.; Xie, L.; Sun, C.; Zheng, X.; Chen, W. Advances in micro and nano-encapsulation of bioactive compounds using biopolymer and lipid-based transporters. Trends Food Sci. Technol. 2018, 78, 34–60. [Google Scholar] [CrossRef]
- George, A.; Shah, P.A.; Shrivastav, P.S. Natural biodegradable polymers based nano-formulations for drug delivery: A review. Int. J. Pharm. 2019, 561, 244–264. [Google Scholar] [CrossRef] [PubMed]
- Swider, E.; Koshkina, O.; Tel, J.; Cruz, L.J.; de Vries, I.J.M.; Srinivas, M. Customizing poly(lactic-co-glycolic acid) particles for biomedical applications. Acta Biomater. 2018, 73, 38–51. [Google Scholar] [CrossRef] [PubMed]
- Ding, D.; Zhu, Q. Recent advances of PLGA micro/nanoparticles for the delivery of biomacromolecular therapeutics. Mater. Sci. Eng. C Mater. Biol. Appl. 2018, 92, 1041–1060. [Google Scholar] [CrossRef] [PubMed]
- Mir, M.; Ahmed, N.; Rehman, A. Recent applications of PLGA based nanostructures in drug delivery. Colloids Surf. B 2017, 159, 217–231. [Google Scholar] [CrossRef] [PubMed]
- Gentile, P.; Chiono, V.; Carmagnola, I.; Hatton, P.V. An overview of poly(lactic-co-glycolic) acid (PLGA)-based biomaterials for bone tissue engineering. Int. J. Mol. Sci. 2014, 15, 3640–3659. [Google Scholar] [CrossRef]
- Ahmed, O.A.A.; El-Say, K.M.; Alahdal, A.M. A PLGA-reinforced PEG in situ gel formulation for improved sustainability of hypoglycaemic activity of glimepiride in streptozotocin-induced diabetic rats. Sci. Rep. 2017, 7, 16384. [Google Scholar] [CrossRef]
- Shi, Y.; Sun, X.; Zhang, L.; Sun, K.; Li, K.; Li, Y.; Zhang, Q. Fc-modified exenatide-loaded nanoparticles for oral delivery to improve hypoglycemic effects in mice. Sci. Rep. 2018, 8, 726. [Google Scholar] [CrossRef]
- Kovarova, M.; Benhabbour, S.R.; Massud, I.; Spagnuolo, R.A.; Skinner, B.; Baker, C.E.; Sykes, C.; Mollan, K.R.; Kashuba, A.D.M.; García-Lerma, J.G.; et al. Ultra-long-acting removable drug delivery system for HIV treatment and prevention. Nat. Commun. 2018, 9, 4156. [Google Scholar] [CrossRef]
- Zhang, G.; Luk, B.T.; Wei, X.; Campbell, G.R.; Fang, R.H.; Zhang, L.; Spector, S.A. Selective cell death of latently HIV-infected CD4+ T cells mediated by autosis inducing nanopeptides. Cell Death Dis. 2019, 10, 419. [Google Scholar] [CrossRef] [PubMed]
- Riitho, V.; Walters, A.A.; Somavarapu, S.; Lamp, B.; Rümenapf, T.; Krey, T.; Rey, F.A.; Oviedo-Orta, E.; Stewart, G.R.; Locker, N.; et al. Design and evaluation of the immunogenicity and efficacy of a biomimetic particulate formulation of viral antigens. Sci. Rep. 2017, 7, 13743. [Google Scholar] [CrossRef] [PubMed]
- Le, D.Q.; Kuriakose, A.E.; Nguyen, D.X.; Nguyen, K.T.; Acharya, S. Hybrid Nitric Oxide Donor and its Carrier for the Treatment of Peripheral Arterial Diseases. Sci. Rep. 2017, 7, 8692. [Google Scholar] [CrossRef] [PubMed]
- Liu, H.; Bao, P.; Li, L.; Wang, Y.; Xu, C.; Deng, M.; Zhang, J.; Zhao, X. Pitavastatin nanoparticle-engineered endothelial progenitor cells repair injured vessels. Sci. Rep. 2017, 7, 18067. [Google Scholar] [CrossRef] [PubMed]
- Ma, Y.; Li, J.; Yao, Y.; Wei, D.; Wang, R.; Wu, Q. A controlled double-duration inducible gene expression system for cartilage tissue engineering. Sci. Rep. 2016, 6, 26617. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Gwak, S.J.; Macks, K.; Bae, S.; Cecil, N.; Lee, J.S. Physicochemical stability and transfection efficiency of cationic amphiphilic copolymer/pDNA polyplexes for spinal cord injury repair. Sci. Rep. 2017, 7, 11247. [Google Scholar] [CrossRef] [PubMed]
- Chen, Y.; Xu, J.; Huang, Z.; Yu, M.; Zhang, Y.; Chen, H.; Ma, Z.; Liao, H.; Hu, J. An Innovative Approach for Enhancing Bone Defect Healing Using PLGA Scaffolds Seeded with Extracorporeal-shock-wave-treated Bone Marrow Mesenchymal Stem Cells (BMSCs). Sci. Rep. 2017, 7, 44130. [Google Scholar] [CrossRef] [Green Version]
- Díez-Martínez, R.; García-Fernández, E.; Manzano, M.; Martínez, Á.; Domenech, M.; Vallet-Regí, M.; García, P. Auranofin-loaded nanoparticles as a new therapeutic tool to fight streptococcal infections. Sci. Rep. 2016, 6, 19525. [Google Scholar] [CrossRef] [Green Version]
- Fan, Y.; Zheng, X.; Ali, Y.; Berggren, P.O.; Loo, S.C.J. Local release of rapamycin by microparticles delays islet rejection within the anterior chamber of the eye. Sci. Rep. 2019, 9, 3918. [Google Scholar] [CrossRef]
- Yang, S.; Traore, Y.; Jimenez, C.; Ho, E.A. Autophagy induction and PDGFR-β knockdown by siRNA-encapsulated nanoparticles reduce Chlamydia trachomatis infection. Sci. Rep. 2019, 9, 1306. [Google Scholar] [CrossRef]
- Huang, W.; Tsui, C.P.; Tang, C.Y.; Gu, L. Effects of Compositional Tailoring on Drug Delivery Behaviours of Silica Xerogel/Polymer Core-shell Composite Nanoparticles. Sci. Rep. 2018, 8, 13002. [Google Scholar] [CrossRef] [PubMed]
- Sousa, F.; Cruz, A.; Fonte, P.; Mendes Pinto, I.; Neves-Petersen, M.T.; Sarmento, B. A new paradigm for antiangiogenic therapy through controlled release of bevacizumab from PLGA nanoparticles. Sci. Rep. 2017, 7, 3736. [Google Scholar] [CrossRef] [PubMed]
- Babu, A.; Amreddy, N.; Muralidharan, R.; Pathuri, G.; Gali, H.; Chen, A.; Zhao, Y.D.; Munshi, A.; Ramesh, R. Chemodrug delivery using integrin-targeted PLGA-Chitosan nanoparticle for lung cancer therapy. Sci. Rep. 2017, 7, 14674. [Google Scholar] [CrossRef] [PubMed]
- Cui, Y.; Xu, Q.; Davoodi, P.; Wang, D.; Wang, C. Enhanced intracellular delivery and controlled drug release of magnetic PLGA nanoparticles modified with transferrin. Acta Pharm. Sin. 2017, 38, 943–953. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Yan, S.; Lu, M.; Ding, X.; Chen, F.; He, X.; Xu, C.; Zhou, H.; Wang, Q.; Hao, L.; Zou, J. HematoPorphyrin Monomethyl Ether polymer contrast agent for ultrasound/photoacoustic dual-modality imaging-guided synergistic high intensity focused ultrasound (HIFU) therapy. Sci. Rep. 2016, 6, 31833. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Lee, Y.H.; Chang, D.S. Fabrication, characterization, and biological evaluation of anti-HER2 indocyanine green-doxorubicin-encapsulated PEG-b-PLGA copolymeric nanoparticles for targeted photochemotherapy of breast cancer cells. Sci. Rep. 2017, 7, 46688. [Google Scholar] [CrossRef] [PubMed]
- Su, X.; Thomas, R.G.; Bharatula, L.D.; Kwan, J.J. Remote targeted implantation of sound-sensitive biodegradable multi-cavity microparticles with focused ultrasound. Sci. Rep. 2019, 9, 9612. [Google Scholar] [CrossRef]
- Farzin, A.; Hassan, S.; Emadi, R.; Etesami, S.A.; Ai, J. Comparative evaluation of magnetic hyperthermia performance and biocompatibility of magnetite and novel Fe-doped hardystonite nanoparticles for potential bone cancer therapy. Mater. Sci. Eng. C 2019, 98, 930–938. [Google Scholar] [CrossRef]
- Szalai, A.J.; Manivannan, N.; Kaptay, G. Super-paramagnetic magnetite nanoparticles obtained by different synthesis and separation methods stabilized by biocompatible coatings. Colloids Surf. A Physicochem. Eng. Asp. 2019, 568, 113–122. [Google Scholar] [CrossRef]
- Chaurasia, A.K.; Thorat, N.D.; Tandon, A.; Kim, J.H.; Park, S.H.; Kim, K.K. Coupling of radiofrequency with magnetic nanoparticles treatment as an alternative physical antibacterial strategy against multiple drug resistant bacteria. Sci. Rep. 2016, 6, 33662. [Google Scholar] [CrossRef] [Green Version]
- Luo, D.; Poston, R.N.; Gould, D.J.; Sukhorukova, G.B. Magnetically targetable microcapsules display subtle changes in permeability and drug release in response to a biologically compatible low frequency alternating magnetic field. Mater. Sci. Eng. C 2019, 94, 647–655. [Google Scholar] [CrossRef] [PubMed]
- Lengert, E.; Kozlova, A.; Pavlov, A.M.; Atkin, V.; Verkhovskii, R.; Kamyshinsky, R.; Demina, P.; Vasiliev, A.L.; Venig, S.B.; Bukreevaae, T.V. Novel type of hollow hydrogel microspheres with magnetite and silver nanoparticles. Mater. Sci. Eng. C 2019, 98, 1114–1121. [Google Scholar] [CrossRef] [PubMed]
- Huang, K.S.; Yang, C.H.; Wang, Y.C.; Wang, W.T.; Lu, Y.Y. Microfluidic Synthesis of Vinblastine-Loaded Multifunctional Particles for Magnetically Responsive Controlled Drug Release. Pharmaceutics 2019, 11, 212. [Google Scholar] [CrossRef] [PubMed]
- Popa, E.G.; Santo, V.E.; Rodrigues, M.T.; Gomes, M.E. Magnetically-Responsive Hydrogels for Modulation of Chondrogenic Commitment of Human Adipose-Derived Stem Cells. Polymers 2016, 8, 28. [Google Scholar] [CrossRef] [PubMed]
- Miola, M.; Bellare, A.; Laviano, F.; Gerbaldo, R.; Vernéa, E. Bioactive superparamagnetic nanoparticles for multifunctional composite bone cements. Ceram. Int. 2019, 45, 14533–14545. [Google Scholar] [CrossRef]
- Minaei, S.E.; Khoei, S.; Khoee, S.; Vafashoar, F.; Mahabadi, V.P. In vitro anti-cancer efficacy of multi-functionalized magnetite nanoparticles combining alternating magnetic hyperthermia in glioblastoma cancer cells. Mater. Sci. Eng. C 2019, 101, 575–587. [Google Scholar] [CrossRef] [PubMed]
- Rodrigues, R.O.; Baldi, G.; Doumett, S.; Garcia-Hevia, L.; Gallo, J.; Bañobre-López, M.; Dražić, G.; Calhelha, R.C.; Ferreira, I.C.F.R.; Lima, R.; et al. Multifunctional graphene-based magnetic nanocarriers for combined hyperthermia and dual stimuli-responsive drug delivery. Mater. Sci. Eng. C 2018, 93, 206–217. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Peralta, M.E.; Jadhav, S.A.; Magnacca, G.; Scalarone, D.; Mártire, D.O.; Parolo, M.E.; Carlos, L. Synthesis and in vitro testing of thermoresponsive polymer-grafted core-shell magnetic mesoporous silica nanoparticles for efficient controlled and targeted drug delivery. J. Colloid Interface Sci. 2019, 544, 198–205. [Google Scholar] [CrossRef] [PubMed]
- Lim, B.K.; Tighe, E.C.; Kong, S.D. The use of magnetic targeting for drug delivery into cardiac myocytes. J. Magn. Magn. Mater. 2019, 473, 21–25. [Google Scholar] [CrossRef]
- Wei, X.; Liao, J.; Davoudi, Z.; Zheng, H.; Chen, J.; Li, D.; Xiong, X.; Yin, Y.; Yu, X.; Xiong, J.; et al. Folate Receptor-Targeted and GSH-Responsive Carboxymethyl Chitosan Nanoparticles Containing Covalently Entrapped 6-Mercaptopurine for Enhanced Intracellular Drug Delivery in Leukemia. Mar. Drugs 2018, 16, 439. [Google Scholar] [CrossRef]
- Wang, X.; Yang, L.; Zhang, H.; Tian, B.; Li, R.; Hou, X.; Wei, F. Fluorescent magnetic PEI-PLGA nanoparticles loaded with paclitaxel for concurrent cell imaging, enhanced apoptosis and autophagy in human brain cancer. Colloids Surf. B 2018, 172, 708–717. [Google Scholar] [CrossRef] [PubMed]
- Dalmina, M.; Pittella, F.; Sierra, J.A.; Souza, G.R.R.; Silva, A.H.; Pasa, A.A.; Creczynski-Pasa, T.B. Magnetically responsive hybrid nanoparticles for in vitro siRNA delivery to breast cancer cells. Mater. Sci. Eng. C 2019, 99, 1182–2290. [Google Scholar] [CrossRef] [PubMed]
- Xu, Y.H.; Kim, C.S.; Saylor, D.M.; Koo, D. Polymer degradation and drug delivery in PLGA-based drug-polymer applications: A review of experiments and theories. J. Biomed. Mater. Res. Part B Appl. Biomater. 2017, 105, 1692–1716. [Google Scholar] [CrossRef] [PubMed]
- Chang, D.; Lim, M.; Goos, J.A.C.M.; Qiao, R.; Ng, Y.Y.; Mansfeld, F.M.; Jackson, M.; Davis, T.P.; Kavallaris, M. Biologically Targeted Magnetic Hyperthermia: Potential and Limitations. Front. Pharmacol. 2018, 9, 831. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Cazares-Cortes, E.; Cabana, S.; Boitard, C.; Nehlig, E.; Griffete, N.; Fresnais, J.; Wilhelm, C.; Abou-Hassan, A.; Ménager, C. Recent insights in magnetic hyperthermia: From the “hot-spot” effect for local delivery to combined magneto-photo-thermia using magneto-plasmonic hybrids. Adv. Drug Deliv. Rev. 2019, 138, 233–246. [Google Scholar] [CrossRef] [PubMed]
- Sahariah, P.; Másson, M. Antimicrobial Chitosan and Chitosan Derivatives: A Review of the Structure–Activity Relationship. Biomacromolecules 2017, 18, 3846–3868. [Google Scholar] [CrossRef]
- Zeng, T.; Zhang, Y.; Yan, Q.; Huang, Z.; Zhang, L.; Yi, X.; Chen, J.; He, G.; Yin, Y. Construction and in vitro evaluation of enzyme nanoreactors based on carboxymethyl chitosan for arginine deprivation in cancer therapy. Carbohydr. Polym. 2017, 162, 35–41. [Google Scholar] [CrossRef]
- Islam, S.; Rahman Bhuiyan, M.A.; Islam, M.N. Chitin and Chitosan: Structure, Properties and Applications in Biomedical Engineering. J. Polym. Environ. 2017, 25, 854–866. [Google Scholar] [CrossRef]
- Wang, Y.; Beck-Broichsitter, M.; Yang, M.; Rantanen, J.; Bohr, A. Investigation of nanocarriers and excipients for preparation of nanoembedded microparticles. Int. J. Pharm. 2017, 526, 300–308. [Google Scholar] [CrossRef]
- Kenawy, E.R.; Abdel-Hay, F.I.; Tamer, T.M.; Abo-Elghit Ibrahim, E.M.; Mohy Eldin, M.S. Antimicrobial activity of novel modified aminated chitosan with aromatic esters. Polym. Bull. 2019, 1–17. [Google Scholar] [CrossRef]
- Fioramonti Calixto, G.M.; de Annunzio, S.R.; Victorelli, F.D.; Frade, M.L.; Scanavez Ferreira, P.; Chorilli, M.; Fontana, C.R. Chitosan-Based Drug Delivery Systems for Optimization of Photodynamic Therapy: A Review. AAPS Pharm. Sci. Tech. 2019, 20, 253. [Google Scholar] [CrossRef] [PubMed]
- Kulikov, S.N.; Tikhonov, V.E.; Bezrodnykh, E.A.; Lopatin, S.A.; Varlamov, V.P. Comparative evaluation of antimicrobial activity of oligochitosans against Klebsiella pneumoniae. Russ. J. Bioorganic Chem. 2015, 41, 57–62. [Google Scholar] [CrossRef]
- Chien, R.C.; Yen, M.T.; Mau, J.L. Antimicrobial and antitumor activities of chitosan from shiitake stipes, compared to commercial chitosan from crab shells. Carbohydr. Polym. 2016, 138, 259–264. [Google Scholar] [CrossRef]
- Xia, W.; Liu, P.; Zhang, J.; Chen, J. Biological activities of chitosan and chitooligosaccharides. Food Hydrocoll. 2011, 25, 170–179. [Google Scholar] [CrossRef]
- Mansilla, A.Y.; Albertengo, L.; Rodriguez, M.S.; Debbaudt, A.; Zuniga, A.; Casalongue, C.A. Evidence on antimicrobial properties and mode of action of a chitosan obtained from crustacean exoskeletons on Pseudomonas syringae pv. tomato DC3000. Appl. Microbiol. Biotechnol. 2013, 97, 6957–6966. [Google Scholar] [CrossRef] [PubMed]
- Grumezescu, A.M.; Andronescu, E.; Holban, A.M.; Ficai, A.; Ficai, D.; Voicu, G.; Grumezescu, V.; Balaure, P.C.; Chifiriuc, C.M. Water dispersible cross-linked magnetic chitosan beads for increasing the antimicrobial efficiency of aminoglycoside antibiotics. Int. J. Pharm. 2013, 454, 233–240. [Google Scholar] [CrossRef] [PubMed]
- Holban, A.; Grumezescu, V.; Ficai, A.; Grumezescu, A.; Chifiriuc, M.; Iordache, F.; Andronescu, E. Highly biocompatible magnetite nanoparticles functionalized with chitosan for improving the efficiency of antibiotics. Univ. Politeh. Buchar. Sci. Bull. 2016, 78, 1454–2331. [Google Scholar]
- Muñoz-Bonilla, A.; Echeverria, C.; Sonseca, Á.; Arrieta, M.P.; Fernández-García, M. Bio-Based Polymers with Antimicrobial Properties towards Sustainable Development. Materials 2019, 12, 641. [Google Scholar] [CrossRef] [PubMed]
- Rainsford, K.D. Ibuprofen: Pharmacology, efficacy and safety. Inflammopharmacology 2009, 17, 275–342. [Google Scholar] [CrossRef] [PubMed]
- Bushra, R.; Aslam, N. An Overview of Clinical Pharmacology of Ibuprofen. Oman Med. J. 2010, 25, 155–161. [Google Scholar] [CrossRef] [PubMed]
- Ahmetaj-Shala, B.; Tesfai, A.; Constantinou, C.; Leszczynski, R.; Chan, M.V.; Gashaw, H.; Galaris, G.; Mazi, S.; Warner, T.D.; Kirkby, N.S.; et al. Pharmacological assessment of ibuprofen arginate on platelet aggregation and colon cancer cell killing. Biochem. Biophys. Res. Commun. 2017, 484, 762–766. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Gkretsi, V.; Zacharia, L.C.; Stylianopoulos, T. Targeting Inflammation to Improve Tumor Drug Delivery. Trends Cancer 2017, 3, 621–630. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Shah, P.N.; Marshall-Batty, K.R.; Smolen, J.A.; Tagaev, J.A.; Chen, Q.; Rodesney, C.A.; Le, H.H.; Gordon, V.D.; Greenberg, D.E.; Cannon, C.L. Antimicrobial Activity of Ibuprofen against Cystic Fibrosis-Associated Gram-Negative Pathogens. Antimicrob. Agents Chemother. 2018, 62, e01574-17. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Chifiriuc, M.; Grumezescu, A.M.; Andronescu, E.; Ficai, A.; Cotar, A.I.; Grumezescu, V.; Bezirtzoglou, E.; Lazar, V.; Radulescu, R. Water dispersible magnetite nanoparticles influence the efficacy of antibiotics against planktonic and biofilm embedded enterococcus faecalis cells. Anaerobe 2013, 22, 14–19. [Google Scholar] [CrossRef] [PubMed]
- Grumezescu, A.M.; Cristescu, R.; Chifiriuc, M.C.; Dorcioman, G.; Socol, G.; Mihailescu, I.N.; Mihaiescu, D.E.; Ficai, A.; Vasile, O.R.; Enculescu, M.; et al. Fabrication of magnetite-based core–shell coated nanoparticles with antibacterial properties. Biofabrication 2015, 7, 015014. [Google Scholar] [CrossRef] [PubMed]
- Grumezescu, V.; Holban, A.M.; Iordache, F.; Socol, G.; Mogoşanu, G.D.; Grumezescu, A.M.; Ficai, A.; Vasile, B.Ş.; Truşcă, R.; Chifiriuc, M.C.; et al. MAPLE fabricated magnetite@eugenol and (3-hidroxybutyric acid-co-3-hidroxyvaleric acid)–polyvinyl alcohol microspheres coated surfaces with anti-microbial properties. Appl. Surf. Sci. 2014, 306, 16–22. [Google Scholar] [CrossRef]
- Grumezescu, V.; Socol, G.; Grumezescu, A.M.; Holban, A.M.; Ficai, A.; Truşcǎ, R.; Bleotu, C.; Balaure, P.C.; Cristescu, R.; Chifiriuc, M.C. Functionalized antibiofilm thin coatings based on PLA–PVA microspheres loaded with usnic acid natural compounds fabricated by MAPLE. Appl. Surf. Sci. 2014, 302, 262–267. [Google Scholar] [CrossRef]
- Sunaric, S.; Petkovic, M.; Denic, M.; Mitic, S.; Pavlovic, A. Determination of ibuprofen in combined dosage forms and cream by direct uv spectrophotometry after solid-phase extraction. Acta Poloniae Pharm. Drug Res. 2013, 70, 403–411. [Google Scholar]
- Yu-bin, J.; Xin, L.; Guo-song, X.; Qin-bing, X. Detection and Analysis of the Quality of Ibuprofen Granules. IOP Conf. Ser. Earth Environ. Sci. 2017, 100, 012048. [Google Scholar] [CrossRef] [Green Version]
- Kokubo, T.; Kushitani, H.; Sakka, S.; Kitsugi, T.; Yamamuro, T. Solutions able to reproduce in vivo surface-structure changes in bioactive glass-ceramic A-W. J. Biomed. Mater. Res. 1990, 24, 721–734. [Google Scholar] [CrossRef] [PubMed]
- Yamaguchi, S.; Nath, S.; Matsushita, T.; Kokubo, T. Controlled release of strontium ions from a bioactive Ti metal with a Ca-enriched surface layer. Acta Biomater. 2014, 10, 2282–2289. [Google Scholar] [CrossRef] [PubMed]
- Andreu, I.; Natividad, E. Accuracy of available methods for quantifying the heat power generation of nanoparticles for magnetic hyperthermia. Int. J. Hyperth. 2013, 29, 739–751. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Saliev, T.; Feril, L.B., Jr.; Begimbetova, D.; Baiskhanova, D.; Klodzinskyi, A.; Bobrova, X.; Aipov, R.; Baltabayeva, T.; Tachibana, K. Hyperthermia enhances bortezomib-induced apoptosis in human white blood cancer cells. J. Therm. Biol. 2017, 67, 9–14. [Google Scholar] [CrossRef] [PubMed]
- Sun, L.; Cui, Z.G.; Zakki, S.A.; Feng, Q.W.; Li, M.L.; Inadera, H. Mechanistic study of nonivamide enhancement of hyperthermia-induced apoptosis in U937 cells. Free Radic. Biol. Med. 2018, 120, 147–159. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Brinker, C.J.; Frye, G.C.; Hurd, A.J.; Ashley, C.S. Fundamentals of sol-gel dip coating. Thin Solid Films 1991, 201, 97–108. [Google Scholar] [CrossRef]
- Lu, Y.; Ganguli, R.; Drewien, C.A.; Anderson, M.T.; Brinker, C.J.; Gong, W.; Guo, Y.; Soyez, H.; Dunn, B.; Huang, M.H.; et al. Continuous formation of supported cubic and hexagonal mesoporous films by sol-gel dip-coating. Nature 1997, 389, 364–368. [Google Scholar] [CrossRef]
- Kang, B.S.; Choi, J.S.; Lee, S.E.; Lee, J.K.; Kim, T.H.; Jang, W.S.; Tunsirikongkon, A.; Kim, J.K.; Park, J.S. Enhancing the in vitro anticancer activity of albendazole incorporated into chitosan-coated PLGA nanoparticles. Carbohydr. Polym. 2017, 159, 39–47. [Google Scholar] [CrossRef]
- Díaz, E.; Puerto, I.; Ribeiro, S.; Lanceros-Mendez, S.; Barandiarán, J.M. The Influence of Copolymer Composition on PLGA/nHA Scaffolds’ Cytotoxicity and In Vitro Degradation. Nanomaterials 2017, 7, 173. [Google Scholar] [CrossRef]
- Qandil, A.M.; Obaidat, A.A.; Mohammed Ali, M.A.; Al-Taani, B.M.; Tashtoush, B.M.; Al-Jbour, N.D.; Al Remawi, M.M.; Al-Sou’od, K.A.; Badwan, A.A. Investigation of the Interactions in Complexes of LowMolecular Weight Chitosan with Ibuprofen. J. Solution Chem. 2009, 38, 695–712. [Google Scholar] [CrossRef]
- Acharya, M.; Mishra, S.; Sahoo, R.N.; Mallick, S. Infrared Spectroscopy for Analysis of Co-processed Ibuprofen and Magnesium Trisilicate at Milling and Freeze Drying. Acta Chim. Slov. 2017, 64, 45–54. [Google Scholar] [CrossRef]
- Vey, E.; Rodger, C.; Booth, J.; Claybourn, M.; Miller, A.F.; Saiani, A. Degradation kinetics of poly(lactic-co-glycolic) acid block copolymer cast films in phosphate buffer solution as revealed by infrared and Raman spectroscopies. Polym. Degrad. Stabil. 2011, 96, 1882–1889. [Google Scholar] [CrossRef]
- Sebri, N.J.M.; Amin, K.A.M. Gellan Gum/Ibuprofen Hydrogel for Dressing Application: Mechanical Properties, Release Activity and Biocompatibility Studies. Int. J. Appl. Chem. 2016, 12, 499–514. [Google Scholar]
- Schwaminger, S.P.; Bauer, D.; Fraga-García, P.; Wagnerb, F.E.; Berensmeie, S. Oxidation of magnetite nanoparticles: Impact on surface and crystal properties. CrystEngComm 2017, 19, 146–255. [Google Scholar] [CrossRef]
- Icriverzi, M.; Rusen, L.; Brajnicov, S.; Bonciu, A.; Dinescu, M.; Cimpean, A.; Evans, W.R.; Dinca, V.; Roseanu, A. Macrophage in vitro Response on Hybrid Coatings Obtained by Matrix Assisted Pulsed Laser Evaporation. Coatings 2019, 9, 236. [Google Scholar] [CrossRef]
- AL-Janabi, A.A.H.S. In Vitro Antibacterial Activity of Ibuprofen and Acetaminophen. J. Glob. Infect. Dis. 2010, 2, 105–108. [Google Scholar] [CrossRef] [PubMed]
Sample Code | PLGA:Fe3O4:IBUP (Mass Ratio) | Applied Power (P% of 2 kW) | Effective Power (W) | Current Intensity (A) | Current Voltage (V) | Frequency (kHz) |
---|---|---|---|---|---|---|
IBUP10 | 10:0.5:1 | 60 | 708 | 9.2 | 76.95 | 325.5 |
IBUP20 | 10:1:1 | 80 | 1088 | 9.2 | 109.9 | 325.5 |
IBUP50 | 10:2.5:1 | 100 | 1360 | 9.2 | 137.37 | 322 |
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Grumezescu, V.; Gherasim, O.; Negut, I.; Banita, S.; Holban, A.M.; Florian, P.; Icriverzi, M.; Socol, G. Nanomagnetite-embedded PLGA Spheres for Multipurpose Medical Applications. Materials 2019, 12, 2521. https://doi.org/10.3390/ma12162521
Grumezescu V, Gherasim O, Negut I, Banita S, Holban AM, Florian P, Icriverzi M, Socol G. Nanomagnetite-embedded PLGA Spheres for Multipurpose Medical Applications. Materials. 2019; 12(16):2521. https://doi.org/10.3390/ma12162521
Chicago/Turabian StyleGrumezescu, Valentina, Oana Gherasim, Irina Negut, Stefan Banita, Alina Maria Holban, Paula Florian, Madalina Icriverzi, and Gabriel Socol. 2019. "Nanomagnetite-embedded PLGA Spheres for Multipurpose Medical Applications" Materials 12, no. 16: 2521. https://doi.org/10.3390/ma12162521
APA StyleGrumezescu, V., Gherasim, O., Negut, I., Banita, S., Holban, A. M., Florian, P., Icriverzi, M., & Socol, G. (2019). Nanomagnetite-embedded PLGA Spheres for Multipurpose Medical Applications. Materials, 12(16), 2521. https://doi.org/10.3390/ma12162521