2,440
Views
11
CrossRef citations to date
0
Altmetric
RESEARCH ARTICLE

Development of local anesthetic drug delivery system by administration of organo-silica nanoformulations under ultrasound stimuli: in vitro and in vivo investigations

, , , , &
Pages 54-62 | Received 04 Sep 2020, Accepted 23 Nov 2020, Published online: 21 Dec 2020

References

  • Alexander A, Dwivedi S, Ajazuddin,   et al. (2012). Approaches for breaking the barriers of drug permeation through transdermal drug delivery. J Control Release 164:26–40.
  • Brown MB, Martin GP, Jones SA, Akomeah FK. (2006). Dermal and transdermal drug delivery systems: current and future prospects. Drug Deliv 13:175–87.
  • Chakravarty R, Goel S, Hong H, et al. (2015). Functionalized hollow mesoporous silica nanoparticles for tumor vasculature targeting and pet image-guided drug delivery. Nanomedicine (Lond) 10:1233–46.
  • Chen WR, Korbelik M, Bartels KE, et al. (2005). Enhancement of laser cancer treatment by a chitosan-derived immunoadjuvant. Photochem Photobiol 81:190–5.
  • Chen Y, Xu P, Wu M, et al. (2014). Colloidal RBC-shaped, hydrophilic, and hollow mesoporous carbon nanocapsules for highly efficient biomedical engineering. Adv Mater 26:4294–301.
  • Da'na E. (2017). Adsorption of heavy metals on functionalized-mesoporous silica: a review. Microporous Mesoporous Mater 247:145–57.
  • de Araujo DR, da Silva DC, Barbosa RM, et al. (2013). Strategies for delivering local anesthetics to the skin: focus on liposomes, solid lipid nanoparticles, hydrogels and patches. Expert Opin Drug Deliv 10:1551–63.
  • Foley PL, Ulery BD, Kan HM, et al. (2013). A chitosan thermogel for delivery of ropivacaine in regional musculoskeletal anesthesia. Biomaterials 34:2539–46.
  • Franz-Montan M, Silva ALR, Cogo K, et al. (2007). Liposome-encapsulated ropivacaine for topical anesthesia of human oral mucosa. Anesth Analg 104:1528–31.
  • Galley FH, McCormick B, Wilson KL, et al. (2017). Melatonin limits paclitaxel-induced mitochondrial dysfunction in vitro and protects against paclitaxel-induced neuropathic pain in the rat. J Pineal Res 63:1–14.
  • Geng H, Zhao Y, Liu J, et al. (2016). Hollow mesoporous silica as a high drug loading carrier for regulation insoluble drug release. Int J Pharm 20:184–94.
  • Giraldo LF, López BL, Pérez L, et al. (2007). Mesoporous silica applications. Macromol Symp 258:129–41.
  • Grant G, Bansinath M. (2001). Liposomal delivery systems for local anesthetics. Reg Anesth Pain Med 26:61–3.
  • Grant SA, Nielsen KC, Greengrass RA, et al. (2001). Continuous peripheral nerve block for ambulatory surgery. Reg Anesth Pain Med 26:209–14.
  • Gupta B, Verma RK, Kumar S, Chaudhary G. (2017). Comparison of analgesic efficacy of dexmedetomidine and midazolam as adjuncts to lignocaine for intravenous regional anesthesia. Anesth Essays Res 11:62–6.
  • Kachbouri S, Mnasri N, Elaloui E, Moussaoui Y. (2018). Tuning particle morphology of mesoporous silica nanoparticles for adsorption of dyes from aqueous solution. J Saudi Chem Soc 22:405–15.
  • Liu H, Li W, Shen D, et al. (2015). Graphitic carbon conformal coating of mesoporous TiO2 hollow spheres for high-performance lithium ion battery anodes. J Am Chem Soc 137:13161–6.
  • Ma X, Zhao Y, Ng KW, Zhao Y. (2013). Integrated hollow mesoporous silica nanoparticles for target drug/siRNA co-delivery. Chemistry 19:15593–603.
  • Mbaraka IK, McGuire KJ, Shanks BH. (2006). Acidic mesoporous silica for the catalytic conversion of fatty acids in beef tallow. Ind Eng Chem Res 45:3022–8.
  • Murali S, Aparna V, Suresh MK, et al. (2018). Amphotericin B loaded sulphonated chitosan nanoparticles for targeting macrophages to treat intracellular Candida glabrata infections. Int J Biol Macromol 110:133–9.
  • Pathak P, Nagarsenker M. (2009). Formulation and evaluation of lidocaine lipid nanosystems for dermal delivery. AAPS PharmSciTech 10:985–92.
  • Pignatello R, Basile L, Puglisi G. (2009). Chitosan glutamate hydrogels with local anesthetic activity for buccal application. Drug Deliv 16:176–81.
  • Puglia C, Sarpietro MG, Bonina F, et al. (2011). Development, characterization, and in vitro and in vivo evaluation of benzocaine- and lidocaine-loaded nanostructured lipid carriers. J Pharm Sci 100:1892–9.
  • Rahman ZU, Wei N, Li Z, et al. (2017). Preparation of hollow mesoporous silica nanospheres: controllable template synthesis and their application in drug delivery. New J Chem 41:14122–9.
  • She X, Chen L, Li C, et al. (2015). Functionalization of hollow mesoporous silica nanoparticles for improved 5-FU loading. J Nanomater 2015:1–9.
  • Shi S, Chen F, Cai W. (2013). Biomedical applications of functionalized hollow mesoporous silica nanoparticles: focusing on molecular imaging. Nanomedicine (Lond) 8:2027–39.
  • Souza KC, Andrade GF, Vasconcelos I, et al. (2014). Magnetic solid-phase extraction based on mesoporous silica-coated magnetic nanoparticles for analysis of oral antidiabetic drugs in human plasma. Mater Sci Eng C Mater Biol Appl 40:275–80.
  • Terechova EL, Zhang G, Chen J, et al. (2014). Combined chemical coagulation–flocculation/ultraviolet photolysis treatment for anionic surfactants in laundry wastewater. J Environ Chem Eng 2:2111–9.
  • Wakaskar RR. (2018). General overview of lipid–polymer hybrid nanoparticles, dendrimers, micelles, liposomes, spongosomes and cubosomes. J Drug Target 26:311–8.
  • Wang J, Zhang L, Chi H, Wang S. (2016). An alternative choice of lidocaine-loaded liposomes: lidocaine-loaded lipid–polymer hybrid nanoparticles for local anesthetic therapy. Drug Deliv 23:1254–60.
  • Wang Y, Su W, Li Q, et al. (2013). Preparation and evaluation of lidocaine hydrochloride-loaded TAT-conjugated polymeric liposomes for transdermal delivery. Int J Pharm 441:748–56.
  • Weiniger CF, Golovanevski M, Sokolsky-Papkov M, Domb AJ. (2010). Review of prolonged local anesthetic action. Expert Opin Drug Deliv 7:737–52.
  • Wu S, Huang X, Du X. (2015). pH- and redox-triggered synergistic controlled release of a ZnO-gated hollow mesoporous silica drug delivery system. J Mater Chem B 3:1426–32.
  • Xu F, Liu H, Wu X, et al. (1999). Measurement of X-ray attenuation coefficients of aqueous solutions of indocyanine green and glycated chitosan. Med Phys 26:1371–4.
  • Yu C-Y, Li N-M, Yang S, et al. (2015). Fabrication of galactosylated chitosan–5-fluorouracil acetic acid based nanoparticles for controlled drug delivery. J Appl Polym Sci.
  • Zaleski R, Gorgol M, Kierys A, Goworek J. (2016). Positron porosimetry study of mesoporous polymer–silica composites. Adsorption 22:745–54.
  • Zhang Y, Yue Y, Chang M. (2017). Local anaesthetic pain relief therapy: in vitro and in vivo evaluation of a nanotechnological formulation co-loaded with ropivacaine and dexamethasone. Biomed Pharmacother 96:443–9.
  • Zhou F, Song S, Chen WR, Xing D. (2011). Immunostimulatory properties of glycated chitosan. J Xray Sci Technol 19:285–92.
  • Zhu Y, Shi J. (2007). A mesoporous core-shell structure for pH-controlled storage and release of water-soluble drug. Microporous Mesoporous Mater 103:243–9.
  • Zuo M, Duan G-L, Ge Z-G, et al. (2004). Simultaneous determination of ropivacaine and antipyrine by high performance liquid chromatography and its application to the in vitro transplacental study. Biomed Chromatogr 18:752–5.