Horn R, Kramer J. Postoperative Pain Control. In: StatPearls [Internet]. StatPearls Publishing, Treasure Island (FL), PMID: 31335018. 2024. https://pubmed.ncbi.nlm.nih.gov/31335018/. Accessed 9 Jan 2024.
Gupta A, Kaur K, Sharma S, Goyal S, Arora S, Murthy RSR. Clinical aspects of acute post-operative pain management & its assessment. J Adv Pharm Technol Res. 2010;1(2):97–108.
Article CAS PubMed PubMed Central Google Scholar
Yue Y, Zhao D, Yin Q. Hyaluronic acid modified nanostructured lipid carriers for transdermal bupivacaine delivery: in vitro and in vivo anesthesia evaluation. Biomed Pharmacother. 2018;98:813–20.
Article CAS PubMed Google Scholar
Liu Y, Cheng M, Zhao J, Zhang X, Huang Z, Zang Y, et al. Transdermal delivery of lidocaine-loaded elastic nano-liposomes with microneedle array pretreatment. Biomedicines. 2021;9:592.
Article CAS PubMed PubMed Central Google Scholar
Michel-Levy JM. Pharmacokinetics and pharmacodynamics of local anesthetics. Topics in Local Anesthetics. IntechOpen; 2020. pp. 1–16.
Hu J-W, Yen M-W, Wang A-J, Chu I-M. Effect of oil structure on cyclodextrin-based Pickering emulsions for bupivacaine topical application. Colloids Surf B Biointerfaces. 2018;161:51–8.
Article CAS PubMed Google Scholar
Xia Y, Chen E, Tibbits DL, Reilley TE, McSweeney TD. Comparison of effects of lidocaine hydrochloride, buffered lidocaine, diphenhydramine, and normal saline after intradermal injection. J Clin Anesth. 2002;14(5):339–43.
Article CAS PubMed Google Scholar
Pete DD, D’Souza MS. Chapter 12 - local anesthetics. Side effects of drugs Annual 42. Amsterdam: Elsevier; 2020. pp. 155–63.
Patel D, Chaudhary SA, Parmar B, Bhura N. Transdermal drug delivery system: a review. Pharm Innov. 2012;1(4):66–75.
Alkilani AZ, McCrudden MTC, Donnelly RF. Transdermal drug delivery: innovative pharmaceutical developments based on disruption of the barrier properties of the stratum corneum. Pharmaceutics. 2015;7:438–70.
Article CAS PubMed Google Scholar
Ramadon D, McCrudden MTC, Courtenay AJ, Donnelly RF. Enhancement strategies for transdermal drug delivery systems: current trends and applications. Drug Deliv Transl Res. 2022;12:758–91.
Mihalache C, Rata DM, Cadinoiu AN, Patras X, Sindilar EV, Bacaita SE, et al. Bupivacaine-loaded chitosan hydrogels for topical anesthesia in dentistry. Polym Int. 2020;69:1152–60.
Suksaeree J, Maneewattanapinyo P. Ionic liquid drug–based polymeric matrices for transdermal delivery of lidocaine and diclofenac. J Polym Environ. 2020;28:2771–9.
Suksaeeree J, Waiprib R, Pichakorn W. Improving the hydrophilic properties of deproteinized natural rubber latex films for lidocaine transdermal patches by starch blending. J Polym Environ. 2022;30:1574–86.
Maneewattanapinyo P, Yeesamun A, Watthana F, Panrat K, Pichayakorn W, Suksaeree J. Controlled release of lidocaine–diclofenac ionic liquid drug from freeze-thawed gelatin/poly(vinyl alcohol) transdermal patches. AAPS PharmSciTech. 2019;20(322):1–9.
Maneewattanapinyo P, Yeesamun A, Watthana F, Panrat K, Pichayakorn W, Suksaeree J. Transdermal patches of lidocaine/aspirin ionic liquid drug-loaded gelatin/polyvinyl alcohol composite film prepared by freeze-thawed procedure. Acad Bras Cienc. 2020;92(2):e20191073.
Rawat S, Vengurlekar S, Rakesh B, Jain S, Srikarti G. Transdermal Delivery by Iontophoresis. Indian J Pharm Sci. 2008;70(1):5–10.
Article PubMed PubMed Central Google Scholar
Seeni RZ, Zheng M, Lio DCS, Wiraja C, Yusoff MFBM, Koh WTY, et al. Targeted delivery of anesthetic agents to bone tissues using conductive microneedles enhanced iontophoresis for painless dental anesthesia. Adv Funct Mater. 2021;31(47):2105686.
Yu L, Liu Y, Sang M. Iontophoresis-assisted pediatric transdermal delivery of ropivacaine to enhance anesthetic effect. Trop J Pharm Res. 2021;20(4):681–6.
Martin DJ, Osman AF, Andriani Y, Edwards GA. 11 - thermoplastic polyurethane (TPU)-based polymer nanocomposites. Advances in Polymer nanocomposites. Cambridge: Woodhead Publishing Series in Composites Science and Engineering; 2012. pp. 321–50.
Claeys B, Vervaeck A, Hillewaere XKD, Possemiers S, Hansen L, de Beer T, et al. Thermoplastic polyurethanes for the manufacturing of highly dosed oral sustained release matrices via hot melt extrusion and injection molding. Eur J Pharm Biopharm. 2015;90:44–52.
Article CAS PubMed Google Scholar
Basu A, Farah S, Kunduru KR, Doppalapudi S, Khan W, Domb AJ. 8– polyurethanes for controlled drug delivery. Advances in polyurethane biomaterials. Cambridge: Woodhead Publishing; 2016. pp. 217–46.
Wang H, Liu X, Christiansen DE, Fattahpour S, Wang K, Song H, et al. Thermoplastic polyurethane with controllable degradation and critical anti-fouling properties. Biomater Sci. 2021;9:1381–96.
Article CAS PubMed Google Scholar
Mandru M, Bercea M, Gradinaru LM, Ciobanu C, Drobota M, Vlad S, et al. Polyurethane/poly(vinyl alcohol) hydrogels: Preparation, characterization and drug delivery. Eur Polym J. 2019;118:137–45.
Morarad R, Naeowong W, Niamlang S, Sirivat A. Iontophoresis of basal insulin controlled delivery based on thermoplastic polyurethane. J Drug Deliv Sci Technol. 2022;76:103756.
Korsmeyer RW, Gurny R, Doelker E, Buri P, Peppas NA. Mechanisms of solute release from porous hydrophilic polymers. Int J Pharm. 1983;15:25–35.
Higuchi T. Mechanism of sustained-action medication: theoretical analysis of rate of release of solid drugs dispersed in solid matrices. J Pharm Sci. 1963;52(12):1145–9.
Article CAS PubMed Google Scholar
Morarad R, Naeowong W, Sirivat A. Iontophoretically controlled insulin delivery via water-soluble conductive polymer PANI:PSS and thermoplastic polyurethane matrix. Drug Deliv Transl Res. 2024;14(1):280–93.
Article CAS PubMed Google Scholar
Tong L, Wang X, He X, Nie G, Zhang J, Zhang B, et al. Electrically conductive TPU nanofibrous composite with high stretchability for flexible strain sensor. Nanoscale Res Lett. 2018;13:86.
Article PubMed PubMed Central Google Scholar
Mi H, Salick MR, Jing X, Jacques BR, Crone WC, Peng X, et al. Characterization of thermoplastic polyurethane/polylactic acid (TPU/PLA) tissue engineering scaffolds fabricated by microcellular injection molding. Mater Sci Eng C. 2013;33:4767–76.
Oh J, Kim YK, Hwang S-H, Kim H-C, Jung J-H, Jeon C, et al. Synthesis of thermoplastic polyurethanes containing bio-based polyester polyol and their fiber property. Polymers. 2022;14(10):2033.
Article CAS PubMed PubMed Central Google Scholar
Zain NM, Ahmad SH, Ahad NA, Ali ES. Influence of isocyanate structures on mechanical performance of aluminum bonded with green polyurethane adhesive. Adv Mater Res. 2014;879:119–27.
Martins ML, Eckert J, Jacobsen H, dos Santos EC, Ignazzi R, de Araujo DR, et al. Raman and Infrared spectroscopies and X-ray diffraction data on bupivacaine and ropivacaine complexed with 2-hydroxypropyl– β– cyclodextrin. Data Br. 2017;15:25–9.
deFD JS, dosS SMD, dasNRF J, M BM, B DF, H W, et al. Antinociceptive effects of bupivacaine and its sulfobutylether-β-cyclodextrin inclusion complex in orofacial pain. Naunyn Schmiedebergs Arch Pharmacol. 2022;395:1405–17.
Kochhar JS, Lim WXS, Zou S, Foo WY, Pan J, Kang L. Microneedle integrated transdermal patch for fast onset and sustained delivery of lidocaine. Mol Pharm. 2013;10:4272–80.
Article CAS PubMed Google Scholar
Bahmani S, Khajavi R, Ehsani M, Rahimi MK, Kalaee MR. Transdermal drug delivery system of lidocaine hydrochloride based on dissolving gelatin/sodium carboxymethylcellulose microneedles. AASP Open. 2023;9:7.
Alejo T, Uson L, Landa G, Prieto M, Argón CY, Garcia-Salinas S, et al. Nanogels with high loading of anesthetic nanocrystals for extended duration of sciatic nerve block. ACS Appl Mater Interfaces. 2021;13:17220–35.
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