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Research Article

Facile design of lidocaine-loaded polymeric hydrogel to persuade effects of local anesthesia drug delivery system: complete in vitro and in vivo toxicity analyses

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Pages 1080-1092 | Received 23 Feb 2021, Accepted 10 May 2021, Published online: 11 Jun 2021

References

  • Abasalizadeh F, Moghaddam SV, Alizadeh E, et al. (2020). Alginate-based hydrogels as drug delivery vehicles in cancer treatment and their applications in wound dressing and 3D bioprinting. J Biol Eng 14:1–22.
  • Abendschön N, Senf S, Deffner P, et al. (2020). Local anesthesia in piglets undergoing castration—a comparative study to investigate the analgesic effects of four local anesthetics based on defensive behavior and side effects. Animals 10:1752–15.
  • Abu-Huwaij R, Assaf S, Salem M, Sallam A. (2007). Mucoadhesive dosage form of lidocaine hydrochloride: I. Mucoadhesive and physicochemical characterization. Drug Dev Ind Pharm 33:855–64.
  • Ahmed EM. (2015). Hydrogel: preparation, characterization, and applications: a review. J Adv Res 6:105–21.
  • Al-Emam E, Soenen H, Caen J, Janssens K. (2020). Characterization of polyvinyl alcohol-borax/agarose (PVA-B/AG) double network hydrogel utilized for the cleaning of works of art. Herit Sci 8:1–14.
  • Alhosseini SN, Moztarzadeh F, Mozafari M, et al. (2012). Synthesis and characterization of electrospun polyvinyl alcohol nanofibrous scaffolds modified by blending with chitosan for neural tissue engineering. Int J Nanomed 7:25–34.
  • Ali I, Shah LA. (2021). Rheological investigation of the viscoelastic thixotropic behavior of synthesized polyethylene glycol-modified polyacrylamide hydrogels using different accelerators. Polym Bull 78:1275–91.
  • Bagshaw KR, Hanenbaum CL, Carbone EJ, et al. (2015). Pain management via local anesthetics and responsive hydrogels. Ther Deliv 6:165–76.
  • Barthel M, Hapfelmeier S, Quintanilla-Martínez L, et al. (2003). Pretreatment of mice with streptomycin provides a Salmonella enterica serovar Typhimurium colitis model that allows analysis of both pathogen and host. IAI 71:2839–58.
  • Becker DE, Reed KL. (2006). Essentials of local anesthetic pharmacology. Anesth Prog 53:98–109.
  • Becker DE, Reed KL. (2012). Local anesthetics: review of pharmacological considerations. Anesth Prog 59:90–102.
  • Bonnet M, Alluin O, Trimaille T, et al. (2020). Delayed injection of a physically cross-linked PNIPAAm-g-PEG hydrogel in rat contused spinal cord improves functional recovery. ACS Omega 5:10247–59.
  • Bružauskaitė I, Bironaitė D, Bagdonas E, Bernotienė E. (2016). Scaffolds and cells for tissue regeneration: different scaffold pore sizes—different cell effects. Cytotechnology 68:355–69.
  • Budianto E, Amalia A. (2020). Swelling behavior and mechanical properties of chitosan-poly(N-vinyl-pyrrolidone) hydrogels. J Polym Eng 40:551–60.
  • Cai Z, Zhang H, Wei Y, Cong F. (2017). Hyaluronan-inorganic nanohybrid materials for biomedical applications. Biomacromolecules 18:1677–96.
  • Deng Z, Wang H, Ma PX, Guo B. (2020). Self-healing conductive hydrogels: preparation, properties and applications. Nanoscale 12:1224–46.
  • El-Boghdadly K, Pawa A, Chin KJ. (2018). Local anesthetic systemic toxicity: current perspectives. LRA 11:35–44.
  • Fozzard HA, Sheets MF, Hanck DA. (2011). The sodium channel as a target for local anesthetic drugs. Front Pharmacol 2:6.
  • Fukunaga M, Kadowaki D, Mori M, et al. (2020). In vivo evaluation of drug dialyzability in a rat model of hemodialysis. PLoS One 15:e0233925–14.
  • Guan TJ, Zhu QH, Ma X, Ding M. (2017). Development of an in situ polymeric hydrogel implant of methylprednisolone for spinal injuries. Trop J Pharm Res 16:3–8.
  • Hoare TR, Kohane DS. (2008). Hydrogels in drug delivery: progress and challenges. Polymer 49:1993–2007.
  • Hou J, Jiang J, Guo H, et al. (2020). Fabrication of fibrillated and interconnected porous poly(ϵ-caprolactone) vascular tissue engineering scaffolds by microcellular foaming and polymer leaching. RSC Adv 10:10055–66.
  • Husain MSB, Gupta A, Alashwal BY, Sharma S. (2018). Synthesis of PVA/PVP based hydrogel for biomedical applications: a review. Energy Sources, Part A: Recovery Utiliz Environ Effects 40:2388–93.
  • Jacob S, Nair AB, Shah J, et al. (2021). Emerging role of hydrogels in drug delivery systems, tissue engineering and wound management. Pharmaceutics 13:357.
  • Jiang Y, Yang Y, Zheng X, et al. (2020). Multifunctional load-bearing hybrid hydrogel with combined drug release and photothermal conversion functions. NPG Asia Mater 12:18.
  • Kaberova Z, Karpushkin E, Nevoralová M, et al. (2020). Microscopic structure of swollen hydrogels by scanning electron and light microscopies: artifacts and reality. Polymers 12:578.
  • Khunmanee S, Jeong Y, Park H. (2017). Crosslinking method of hyaluronic-based hydrogel for biomedical applications. J Tissue Eng 8:2041731417726464.
  • Kudo K, Ishida J, Syuu G, et al. (2014). Structural changes of water in poly(vinyl alcohol) hydrogel during dehydration. J Chem Phys 140:1–8.
  • Lee PI, Kim CJ. (1991). Probing the mechanisms of drug release from hydrogels. J Control Release 16:229–36.
  • Lee JS, Song J, Kim SO, et al. (2016). Multifunctional hydrogel nano-probes for atomic force microscopy. Nat Commun 7:1–14.
  • Levoe SN, Flannery BM, Brignolo L, et al. (2014). Factors influencing adverse skin responses in rats receiving repeated subcutaneous injections and potential impact on neurobehavior. Curr Neurobiol 5:1–10.
  • Li J, Ma L, Chen G, et al. (2015). A high water-content and high elastic dual-responsive polyurethane hydrogel for drug delivery. J Mater Chem B 3:8401–9.
  • Li C, Wang J, Wang Y, et al. (2019). Recent progress in drug delivery. Acta Pharm Sin B 9:1145–62.
  • Loh QL, Choong C. (2013). Three-dimensional scaffolds for tissue engineering applications: role of porosity and pore size. Tissue Eng – Part B: Rev 19:485–502.
  • Ma P, Li T, Xing H, et al. (2017). Local anesthetic effects of bupivacaine loaded lipid-polymer hybrid nanoparticles: in vitro and in vivo evaluation. Biomed Pharmacother 89:689–95.
  • Paolino D, Tudose A, Celia C, et al. (2019). Mathematical models as tools to predict the release kinetic of fluorescein from lyotropic colloidal liquid crystals. Materials 12:693.
  • Parhi R. (2017). Cross-linked hydrogel for pharmaceutical applications: a review. Adv Pharm Bull 7:515–30.
  • Razzak MT, Darwis D., Zainuddin  , Sukirno.   (2001). Irradiation of polyvinyl alcohol and polyvinyl pyrrolidone blended hydrogel for wound dressing. Radiat Phys Chem 62:107–13.
  • Ren J, Zhao L, Zhang L, et al. (2020). Electroconductive and free-shapeable nanocomposite hydrogels with an ultrafast self-healing property and high stretchability performance. Soft Matter 16:8422–31.
  • Sawai Y, Okamoto T, Muranaka Y, et al. (2019). In vivo evaluation of the effect of lithium on peripheral circadian clocks by real-time monitoring of clock gene expression in near-freely moving mice. Sci Rep 9:1–12.
  • Shukla A, Singh AP, Maiti P. (2021). Injectable hydrogels of newly designed brush biopolymers as sustained drug-delivery vehicle for melanoma treatment. Sig Transduct Target Ther 6:63.
  • Silva NV, Angulo SC, Barbosa ASR, et al. (2019). Improved method to measure the strength and elastic modulus of single aggregate particles. Mater Struct/Mater Construct 52:83.
  • Thalhammer JG, Vladimirova M, Bershadsky B, Strichartz GR. (1995). Neurologic evaluation of the rat during sciatic nerve block with lidocaine. Anesthesiology 82:1013–25.
  • Turner PV, Brabb T, Pekow C, Vasbinder MA. (2011). Administration of substances to laboratory animals: routes of administration and factors to consider. J Am Assoc Lab Anim Sci 50:600–13.
  • Utech S, Boccaccini AR. (2016). A review of hydrogel-based composites for biomedical applications: enhancement of hydrogel properties by addition of rigid inorganic fillers. J Mater Sci 51:271–310.
  • Villarinho JG, Pinheiro K, de V, et al. (2013). The antinociceptive effect of reversible monoamine oxidase-A inhibitors in a mouse neuropathic pain model. Prog Neuro-Psychopharmacol Biol Psychiatry 44:136–42.
  • Wang Y, Qin M, Hou J, Chen Y. (2021). In vitro and in vivo evaluation of a lidocaine loaded polymer nanoparticle formulation co-loaded with lidocaine for local anesthetics effect. Process Biochem 102:333–40.
  • 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.
  • Weinberg L. (2015). Pharmacokinetics and pharmacodynamics of lignocaine: a review. WJA 4:17.
  • Weng L, Romanov A, Rooney J, Chen W. (2008). Non-cytotoxic, in situ gelable hydrogels composed of N-carboxyethyl chitosan and oxidized dextran. Biomaterials 29:3905–13.
  • Xie K, Qiao F, Sun Y, et al. (2015). Notch signaling activation is critical to the development of neuropathic pain. BMC Anesthesiol 15:1–7.
  • Xie Z, Wang D, Fan T, et al. (2018). Black phosphorus analogue tin sulfide nanosheets: synthesis and application as near-infrared photothermal agents and drug delivery platforms for cancer therapy. J Mater Chem B 6:4747–55.
  • Xu C, Zhan W, Tang X, et al. (2018). Self-healing chitosan/vanillin hydrogels based on Schiff-base bond/hydrogen bond hybrid linkages. Polym Test 66:155–63.
  • You Y, He L, Ma B, Chen T. (2017). High-drug-loading mesoporous silica nanorods with reduced toxicity for precise cancer therapy against nasopharyngeal carcinoma. Adv Funct Mater 27:1703313.
  • Zhang E, Li J, Zhou Y, et al. (2017). Biodegradable and injectable thermoreversible xyloglucan based hydrogel for prevention of postoperative adhesion. Acta Biomater 55:420–33.
  • 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.
  • Zhang Y, Zhao X, Yang W, et al. (2019). Enhancement of mechanical property and absorption capability of hydrophobically associated polyacrylamide hydrogels by adding cellulose nanofiber. Mater Res Express 7:015319.
  • Zhang Z, Zhou L, Xie N, et al. (2020). Overcoming cancer therapeutic bottleneck by drug repurposing. Sig Transduct Target Ther 5:113.
  • Zhu L, Qiu J, Sakai E. (2017). A high modulus hydrogel obtained from hydrogen bond reconstruction and its application in vibration damper. RSC Adv 7:43755–63.