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Current Drug Delivery

Editor-in-Chief

ISSN (Print): 1567-2018
ISSN (Online): 1875-5704

Review Article

Current Drug Delivery Strategies for Buccal Cavity Ailments using Mouth Dissolving Wafer Technology: A Comprehensive Review on the Present State of the Art

Author(s): Bani Kumar Jana, Mohini Singh*, Rajat Subhra Dutta and Bhaskar Mazumder

Volume 21, Issue 3, 2024

Published on: 27 December, 2022

Page: [339 - 359] Pages: 21

DOI: 10.2174/1567201820666221128152010

Price: $65

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Abstract

Background: Mouth-dissolving wafer is polymer-based matrice that incorporates various pharmaceutical agents for oral drug delivery. This polymeric wafer is ingenious in the way that it needs not be administered with water, like in conventional tablet dosage form. It has better compliance among the pediatric and geriatric groups owing to its ease of administration.

Objective: The polymeric wafer dissolves quickly in the oral cavity and is highly effective for a targeted local effect in buccal-specific ailments. It is a safe, effective, and versatile drug delivery carrier for a range of drugs used to treat a plethora of oral cavity-specific ailments that inflict common people, like thrush, canker sores, periodontal disease, benign oral cavity tumors, buccal neoplasm, and malignancies. This review paper focuses thoroughly on the present state of the art in mouth-dissolving wafer technology for buccal drug delivery and targeting. Moreover, we have also addressed present-time limitations associated with wafer technology to aid researchers in future developments in the arena of buccal drug delivery.

Conclusion: This dynamic novel formulation has tremendous future implications for designing drug delivery systems to target pernicious ailments and diseases specific to the buccal mucosa. In a nutshell, this review paper aims to summarize the present state of the art in buccal targeted drug delivery.

Graphical Abstract

[1]
Peres, M.A.; Macpherson, L.M.D.; Weyant, R.J.; Daly, B.; Venturelli, R.; Mathur, M.R.; Listl, S.; Celeste, R.K.; Guarnizo-Herreño, C.C.; Kearns, C.; Benzian, H.; Allison, P.; Watt, R.G. Oral diseases: A global public health challenge. Lancet, 2019, 394(10194), 249-260.
[http://dx.doi.org/10.1016/S0140-6736(19)31146-8] [PMID: 31327369]
[2]
Kessler, P.; Grabenbauer, G.; Leher, A.; Bloch-Birkholz, A.; Vairaktaris, E.; Neukam, F.W. Neoadjuvant and adjuvant therapy in patients with oral squamous cell carcinoma. Br. J. Oral Maxillofac. Surg., 2008, 46(1), 1-5.
[http://dx.doi.org/10.1016/j.bjoms.2007.08.006] [PMID: 17931758]
[3]
Iranmanesh, B.; Khalili, M.; Amiri, R.; Zartab, H.; Aflatoonian, M. Oral manifestations of COVID ‐19 disease: A review article. Dermatol. Ther., 2021, 34(1), e14578.
[http://dx.doi.org/10.1111/dth.14578] [PMID: 33236823]
[4]
Emeršič N.; Tomaževič T.; Točkova, O.; Kopač M.; Volavšek, M.; Ključevšek, D.; Avčin, T. Case report: Necrotizing stomatitis as a manifestation of covid-19-associated vasculopathy. Front Pediatr., 2021, 9, 800576.
[http://dx.doi.org/10.3389/fped.2021.800576] [PMID: 34966708]
[5]
Bayer, I.S. Recent advances in mucoadhesive interface materials, mucoadhesion characterization, and technologies. Adv. Mater. Interfaces, 2022, 9(18), 2200211.
[http://dx.doi.org/10.1002/admi.202200211]
[6]
Boateng, J.S.; Auffret, A.D.; Matthews, K.H.; Humphrey, M.J.; Stevens, H.N.E.; Eccleston, G.M. Characterisation of freeze-dried wafers and solvent evaporated films as potential drug delivery systems to mucosal surfaces. Int. J. Pharm., 2010, 389(1-2), 24-31.
[http://dx.doi.org/10.1016/j.ijpharm.2010.01.008] [PMID: 20083177]
[7]
Spain, C.V.; Wright, J.J.; Hahn, R.M.; Wivel, A.; Martin, A.A. Self-reported barriers to adherence and persistence to treatment with injectable medications for type 2 diabetes. Clin. Ther., 2016, 38(7), 1653-1664.e1.
[http://dx.doi.org/10.1016/j.clinthera.2016.05.009] [PMID: 27364806]
[8]
Standing, J.F.; Tuleu, C. Paediatric formulations-getting to the heart of the problem. Int. J. Pharm., 2005, 300(1-2), 56-66.
[http://dx.doi.org/10.1016/j.ijpharm.2005.05.006] [PMID: 15979830]
[9]
Kumar, A.; Sharma, P.K.; Ali, A. HPMC/CMC based fast dissolvable oral films of an anxiolytic: In vitro drug release and texture analysis. Int. J. Drug Deliv., 2013, 5(3), 344.
[10]
Galgatte, U.; Chaudhari, P.P. Development of fast dissolving sublingual wafers by using film former: Optimization and characterization. J. Chem. Pharm. Res., 2009, 9(4), 82-91.
[11]
Aravind, S.R.; Lakshmi, S.S.R.; Krishnan, L.K. Sustained release of curcumin from fibrin matrix induces cancer cell death and immunomodulation. Biomed. Pharmacother., 2021, 133, 110967.
[http://dx.doi.org/10.1016/j.biopha.2020.110967] [PMID: 33221650]
[12]
Godbole, A.; Joshi, R.; Sontakke, M. Oral thin film technology-Current challenges and future scope., Inter. J. Adv. Res. Eng. Appl.Sci, 2018, 7(2) Available from: https://papers.ssrn.com/sol3/papers.cfm?abstract_id=3133991
[13]
Ayenew, Z.; Puri, V.; Kumar, L.; Bansal, A. Trends in pharmaceutical taste masking technologies: A patent review. Recent Pat. Drug Deliv. Formul., 2009, 3(1), 26-39.
[http://dx.doi.org/10.2174/187221109787158364] [PMID: 19149727]
[14]
Genco, R.J.; Borgnakke, W.S. Risk factors for periodontal disease. Periodontol. 2000, 2013, 62(1), 59-94.
[http://dx.doi.org/10.1111/j.1600-0757.2012.00457.x] [PMID: 23574464]
[15]
Guthmiller, J.M.; Novak, K.F. Periodontal diseases; Polymicrobial. Dis, 2002, pp. 137-152.
[http://dx.doi.org/10.1128/9781555817947.ch8]
[16]
Tonetti, M.S.; Jepsen, S.; Jin, L.; Otomo-Corgel, J. Impact of the global burden of periodontal diseases on health, nutrition and wellbeing of mankind: A call for global action. J. Clin. Periodontol., 2017, 44(5), 456-462.
[http://dx.doi.org/10.1111/jcpe.12732] [PMID: 28419559]
[17]
Williams, R.C. Periodontal disease. N. Engl. J. Med., 1990, 322(6), 373-382.
[http://dx.doi.org/10.1056/NEJM199002083220606] [PMID: 2405268]
[18]
Könönen, E.; Gursoy, M.; Gursoy, U. Periodontitis: A multifaceted disease of tooth-supporting tissues. J. Clin. Med., 2019, 8(8), 1135.
[http://dx.doi.org/10.3390/jcm8081135] [PMID: 31370168]
[19]
Vályi, P.; Gorzó, I. Periodontal abscess: etiology, diagnosis and treatment. Fogorv. Sz., 2004, 97(4), 151-155.
[PMID: 15495540]
[20]
Scannapieco, F.A.; Gershovich, E. The prevention of periodontal disease-An overview. Periodontol. 2000, 2020, 84(1), 9-13.
[http://dx.doi.org/10.1111/prd.12330] [PMID: 32844421]
[21]
Leite, F.R.M.; Nascimento, G.G.; Scheutz, F.; López, R. Effect of smoking on periodontitis: A systematic review and meta-regression. Am. J. Prev. Med., 2018, 54(6), 831-841.
[http://dx.doi.org/10.1016/j.amepre.2018.02.014] [PMID: 29656920]
[22]
Sindi, A.M.; Alharbi, W.S.; Alkhalidi, H.M.; Alghaith, A.F.; Hosny, K.M. Development and optimization of Clotrimazole‒Rosehip oil nanoethosomal-gel for oral thrush and gingivitis. J. Drug Deliv. Sci. Technol., 2021, 63, 102482.
[http://dx.doi.org/10.1016/j.jddst.2021.102482]
[23]
Chamorro-Petronacci, C.; García-García, A.; Lorenzo-Pouso, A.I.; Gómez-García, F.J.; Padín-Iruegas, M.E.; Gándara-Vila, P.; Blanco-Carrión, A.; Pérez-Sayáns, M. Management options for low-dose methotrexate-induced oral ulcers: A systematic review. Med. Oral Patol. Oral Cir. Bucal, 2019, 24(2), e181-e189.
[http://dx.doi.org/10.4317/medoral.22851] [PMID: 30818310]
[24]
Miranda-Cadena, K.; Marcos-Arias, C.; Mateo, E.; Aguirre, J.M.; Quindós, G.; Eraso, E. Prevalence and antifungal susceptibility profiles of Candida glabrata, Candida parapsilosis and their close-related species in oral candidiasis. Arch. Oral Biol., 2018, 95, 100-107.
[http://dx.doi.org/10.1016/j.archoralbio.2018.07.017] [PMID: 30096698]
[25]
Ali, S.A.; Sindi, A.M.; Mair, Y.H.; Khallaf, R.A. Oral gel loaded by ethotransfersomes of antifungal drug for oral thrush: Preparation, characterization, and assessment of antifungal activity. J. Drug Deliv. Sci. Technol., 2021, 66, 102841.
[http://dx.doi.org/10.1016/j.jddst.2021.102841]
[26]
Dekhuijzen, P.N.R.; Batsiou, M.; Bjermer, L.; Bosnic-Anticevich, S.; Chrystyn, H.; Papi, A.; Rodríguez-Roisin, R.; Fletcher, M.; Wood, L.; Cifra, A.; Soriano, J.B.; Price, D.B. Incidence of oral thrush in patients with COPD prescribed inhaled corticosteroids: Effect of drug, dose, and device. Respir. Med., 2016, 120, 54-63.
[http://dx.doi.org/10.1016/j.rmed.2016.09.015] [PMID: 27817816]
[27]
Price, D.; Thomas, M.; Haughney, J.; Lewis, R.A.; Burden, A.; von Ziegenweidt, J.; Chisholm, A.; Hillyer, E.V.; Corrigan, C.J. Real-life comparison of beclometasone dipropionate as an extrafine- or larger-particle formulation for asthma. Respir. Med., 2013, 107(7), 987-1000.
[http://dx.doi.org/10.1016/j.rmed.2013.03.009] [PMID: 23643486]
[28]
Lewis, M.A.O.; Williams, D.W. Diagnosis and management of oral candidosis. Br. Dent. J., 2017, 223(9), 675-681.
[http://dx.doi.org/10.1038/sj.bdj.2017.886] [PMID: 29123282]
[29]
Erchick, D.J.; Rai, B.; Agrawal, N.K.; Khatry, S.K.; Katz, J.; LeClerq, S.C.; Reynolds, M.A.; Mullany, L.C. Oral hygiene, prevalence of gingivitis, and associated risk factors among pregnant women in Sarlahi District, Nepal. BMC Oral Health, 2019, 19(1), 2.
[http://dx.doi.org/10.1186/s12903-018-0681-5] [PMID: 30611255]
[30]
Gendreau, L.; Loewy, Z.G. Epidemiology and etiology of denture stomatitis. J. Prosthodont., 2011, 20(4), 251-260.
[http://dx.doi.org/10.1111/j.1532-849X.2011.00698.x] [PMID: 21463383]
[31]
Girard, B., Jr; Landry, R.G.; Giasson, L. Denture stomatitis: etiology and clinical considerations. J. Can. Dent. Assoc., 1996, 62(10), 808-812.
[PMID: 8963921]
[32]
Ramage, G.; Tomsett, K.; Wickes, B.L.; López-Ribot, J.L.; Redding, S.W. Denture stomatitis: A role for Candida biofilms. Oral Surg. Oral Med. Oral Pathol. Oral Radiol. Endod., 2004, 98(1), 53-59.
[http://dx.doi.org/10.1016/j.tripleo.2003.04.002] [PMID: 15243471]
[33]
Iacopino, A.M.; Wathen, W.F. Oral candidal infection and denture stomatitis: A comprehensive review. J. Am. Dent. Assoc., 1992, 123(1), 46-51.
[http://dx.doi.org/10.14219/jada.archive.1992.0023] [PMID: 1740572]
[34]
Radford, D.R.; Challacombe, S.J.; Walter, J.D. Denture plaque and adherence of Candida albicans to denture-base materials in vivo and in vitro. Crit. Rev. Oral Biol. Med., 1999, 10(1), 99-116.
[http://dx.doi.org/10.1177/10454411990100010501] [PMID: 10759429]
[35]
Webb, B.C.; Thomas, C.J.; Willcox, M.D.P.; Harty, D.W.S.; Knox, K.W. Candida-associated denture stomatitis. Aetiology and management: A review: Part1. Factors influencing distribution of candida species in the oral cavity. Aust. Dent. J., 1998, 43(1), 45-50.
[http://dx.doi.org/10.1111/j.1834-7819.1998.tb00152.x] [PMID: 9583226]
[36]
Barbeau, J.; Séguin, J.; Goulet, J.P.; de Koninck, L.; Avon, S.L.; Lalonde, B.; Rompré, P.; Deslauriers, N. Reassessing the presence of Candida albicans in denture-related stomatitis. Oral Surg. Oral Med. Oral Pathol. Oral Radiol. Endod., 2003, 95(1), 51-59.
[http://dx.doi.org/10.1067/moe.2003.44] [PMID: 12539027]
[37]
Yarborough, A.; Cooper, L.; Duqum, I.; Mendonça, G.; McGraw, K.; Stoner, L. Evidence regarding the treatment of denture stomatitis. J. Prosthodont., 2016, 25(4), 288-301.
[http://dx.doi.org/10.1111/jopr.12454] [PMID: 27062660]
[38]
Martori, E.; Ayuso-Montero, R.; Martinez-Gomis, J.; Viñas, M.; Peraire, M. Risk factors for denture-related oral mucosal lesions in a geriatric population. J. Prosthet. Dent., 2014, 111(4), 273-279.
[http://dx.doi.org/10.1016/j.prosdent.2013.07.015] [PMID: 24355508]
[39]
Altarawneh, S.; Bencharit, S.; Mendoza, L.; Curran, A.; Barrow, D.; Barros, S.; Preisser, J.; Loewy, Z.G.; Gendreau, L.; Offenbacher, S. Clinical and histological findings of denture stomatitis as related to intraoral colonization patterns of Candida albicans, salivary flow, and dry mouth. J. Prosthodont., 2013, 22(1), 13-22.
[http://dx.doi.org/10.1111/j.1532-849X.2012.00906.x] [PMID: 23107189]
[40]
Scully, C.; Bagan, J.V. Adverse drug reactions in the orofacial region. Crit. Rev. Oral Biol. Med., 2004, 15(4), 221-239.
[http://dx.doi.org/10.1177/154411130401500405] [PMID: 15284187]
[41]
Naranjo, J.; Poniachik, J.; Cisco, D.; Contreras, J.; Oksenberg, D.; Valera, J.M.; Díaz, J.C.; Rojas, J.; Cardemil, G.; Mena, S.; Castillo, J.; Rencoret, G.; Godoy, J.; Escobar, J.; Rodríguez, J.; Leyton, P.; Fica, A.; Toledo, C. Oral ulcers produced by mycophenolate mofetil in two liver transplant patients. Transplant. Proc., 2007, 39(3), 612-614.
[http://dx.doi.org/10.1016/j.transproceed.2006.12.028] [PMID: 17445557]
[42]
Vucicevic Boras, V.; Savage, N.; Mohamad Zaini, Z. Oral aphthous-like ulceration due to tiotropium bromide. Med. Oral Patol. Oral Cir. Bucal, 2007, 12(3), E209-E210.
[PMID: 17468716]
[43]
Mizrahi, B.; Golenser, J.; Wolnerman, J.S.; Domb, A.J. Adhesive tablet effective for treating canker sores in humans. J. Pharm. Sci., 2004, 93(12), 2927-2935.
[http://dx.doi.org/10.1002/jps.20193] [PMID: 15459950]
[44]
Preeti, L.; Magesh, K.T.; Rajkumar, K.; Karthik, R. Recurrent aphthous stomatitis. J. Oral Maxillofac. Pathol., 2011, 15(3), 252-256.
[http://dx.doi.org/10.4103/0973-029X.86669] [PMID: 22144824]
[45]
Cui, R.Z.; Bruce, A.J.; Rogers, R.S. III Recurrent aphthous stomatitis. Clin. Dermatol., 2016, 34, 475-481.
[http://dx.doi.org/10.1016/j.clindermatol.2016.02.020]
[46]
Jin, L.J.; Lamster, I.B.; Greenspan, J.S.; Pitts, N.B.; Scully, C.; Warnakulasuriya, S. Global burden of oral diseases: emerging concepts, management and interplay with systemic health. Oral Dis., 2016, 22(7), 609-619.
[http://dx.doi.org/10.1111/odi.12428] [PMID: 26704694]
[47]
Schemel-Suárez, M.; López-López, J.; Chimenos-Küstner, E. Oral ulcers: Differential diagnosis and treatment. Med. Clin., 2015, 145(11), 499-503. [In Spanish].
[PMID: 26049962]
[48]
Sánchez-Bernal, J.; Conejero, C.; Conejero, R. Recurrent aphthous stomatitis. Actas Dermosifiliogr., 2020, 111(6), 471-480. [English Edition].
[PMID: 32451064]
[49]
Akintoye, S.O.; Greenberg, M.S. Recurrent aphthous stomatitis. Dent. Clin. North Am., 2014, 58(2), 281-297.
[http://dx.doi.org/10.1016/j.cden.2013.12.002] [PMID: 24655523]
[50]
de Barros Gallo, C.; Mimura, M.A.M.; Sugaya, N.N. Psychological stress and recurrent aphthous stomatitis. Clinics (São Paulo), 2009, 64(7), 645-648.
[http://dx.doi.org/10.1590/S1807-59322009000700007] [PMID: 19606240]
[51]
Sawair, F.A. Does smoking really protect from recurrent aphthous stomatitis? Ther. Clin. Risk Manag., 2010, 6, 573-577.
[http://dx.doi.org/10.2147/TCRM.S15145] [PMID: 21151626]
[52]
Marakoglu, K.; Sezer, R.E.; Toker, H.C.; Marakoglu, I. The recurrent aphthous stomatitis frequency in the smoking cessation people. Clin. Oral Investig., 2007, 11, 149-153.
[http://dx.doi.org/10.1007/s00784-007-0102-7]
[53]
Akman, A.; Sallakci, N.; Coskun, M.; Bacanli, A.; Yavuzer, U.; Alpsoy, E. TNF-a gene 1031 T/C polymorphism in Turkish patients with Behc¸et’s disease. Br. J. Dermatol., 2006, 155, 350-356.
[54]
Akman, A.; Ekinci, N.C.; Karcaroglu, H.; Yavuzer, U.; Alpsoy, E.; Yegin, O. Relationship between periodontal findings and specific polymorphisms of interleukin-1a and -1b in Turkish patients with Behcet’s disease. Arch. Dermatol. Res., 2008, 300, 19-26.
[55]
Bazrafshani, M.R.; Hajeer, A.H.; Ollier, W.E.; Thornhill, M.H. IL-1B and IL-6 gene polymorphisms encode significant risk for the development of recurrent aphthous stomatitis (RAS). Genes Immun., 2002, 3, 302-305.
[56]
Bazrafshani, M.R.; Hajeer, A.H.; Ollier, W.E.; Thornhill, M.H. Polymorphisms in the IL-10 and IL-12 gene cluster and risk of developing recurrent aphthous stomatitis. Oral Dis., 2003, 9, 287-291.
[57]
Guimarães, A.L.; de Sá, A.R.; Victória, J.M.; Correia-Silva, J.F.; Pessoa, P.S.; Diniz, M.G. Association of IL-1b polymorphism with recurrent aphthous stomatitis in Brazilian individuals. Oral Dis., 2006, 12, 580-583.
[58]
Guimarães, A.L.; Correia-Silva, J.F.; Sá, A.R.; Victória, J.M.; Diniz, M.G.; Costa, F.O. Investigation of functional gene polymorphisms IL-1b, IL-6, IL-10 and TNF-a in individuals with recurrent aphthous stomatitis. Arch. Oral Biol., 2007, 52, 268-272.
[59]
Hall, M.A.; McGlinn, E.; Coakley, G.; Fisher, S.A.; Boki, K.; Middleton, D. Genetic polymorphism of IL-12 p40 gene in immunemediated disease. Genes Immun., 2000, 1, 219-224.
[60]
Kalkan, G.; Yigit, S.; Karakus, N.; Bas¸, Y.; Sec, H.Y. Association between interleukin 4 gene intron 3 VNTR polymorphism and recurrent aphthous stomatitis in a cohort of Turkish patients. Gene, 2013, 527, 207-210.
[61]
Pekiner, F.N.; Aytugar, E.; Demirel, G.Y.; Borahan, M.O. Interleukin2, interleukin-6 and T regulatory cells in peripheral blood of patients with Behcet’s disease and recurrent aphthous ulcerations. J. Oral Pathol. Med., 2012, 41, 73-79.
[62]
Lalla, R.V.; Choquette, L.E.; Feinn, R.S.; Zawistowski, H.; Latortue, M.C.; Kelly, E.T.; Baccaglini, L. Multivitamin therapy for recurrent aphthous stomatitis. J. Am. Dent. Assoc., 2012, 143(4), 370-376.
[http://dx.doi.org/10.14219/jada.archive.2012.0179] [PMID: 22467697]
[63]
Rajan, B.; Ahmed, J.; Shenoy, N.; Denny, C.; Ongole, R.; Binnal, A. Assessment of quality of life in patients with chronic oral mucosal diseases: A questionnaire-based study. Perm. J., 2014, 18(1), e123-e127.
[http://dx.doi.org/10.7812/TPP/13-095] [PMID: 24626087]
[64]
Rivera, C. Essentials of recurrent aphthous stomatitis. Biomed. Rep., 2019, 11(2), 47-50.
[PMID: 31384457]
[65]
Albrektson, M.; Hedström, L.; Bergh, H. Recurrent aphthous stomatitis and pain management with low-level laser therapy: A randomized controlled trial. Oral Surg. Oral Med. Oral Pathol. Oral Radiol., 2014, 117(5), 590-594.
[http://dx.doi.org/10.1016/j.oooo.2014.01.228] [PMID: 24725989]
[66]
Cardona, F. Tumoresbenignos de la mucosa y submucosa oral.Medicina y patología oral; Bagán, J.V.; Scully, C., Eds.; Medicina Oral: Valencia, 2006, pp. 117-126.
[67]
Torres, D.S.; Bagán, S.J.V.; Jiménez, S.Y.; Poveda, R.R.; Murillo, C.J.; Díaz, F.J.M.; Sanchís, B.J.M. GavaldáEsteve, C.; GavaldáEsteve, E. Benign tumors of the oral mucosa: A study of 300 patients. Med. Oral Patol. Oral Cir. Bucal, 2008, 13(3), E161-E166.
[68]
Psychogios, G.; Bohr, C.; Constantinidis, J.; Canis, M.; Vander Poorten, V.; Plzak, J.; Knopf, A.; Betz, C.; Guntinas-Lichius, O.; Zenk, J. Review of surgical techniques and guide for decision making in the treatment of benign parotid tumors. Eur. Arch. Otorhinolaryngol., 2021, 278(1), 15-29.
[http://dx.doi.org/10.1007/s00405-020-06250-x] [PMID: 32749609]
[69]
Foy, J.P.; Bertolus, C.; Goudot, P.; Deneuve, S.; Blanc, E.; Lasset, C.; Pérol, D.; Saintigny, P. Bibliometric analysis of a century of research on oral erythroplakia and leukoplakia. J. Oral Pathol. Med., 2018, 47(4), 388-395.
[http://dx.doi.org/10.1111/jop.12683] [PMID: 29344996]
[70]
Starzyńska, A.; Pawłowska, A.; Renkielska, D.; Michajłowski, I.; Sobjanek, M.; Błażewicz, I.; Włodarkiewicz, A. Estimation of oral leukoplakia treatment records in the research of the Department of Maxillofacial and Oral Surgery, Medical University of Gdansk. Postepy Dermatol. Alergol., 2015, 2(2), 114-122.
[http://dx.doi.org/10.5114/pdia.2014.40791] [PMID: 26015781]
[71]
Ioanina, P.; Serban, T.; Lelia, M. Treatment approach of oral leukoplakia. Review of literature. Med Con., 2013, 8(3), 39-43.
[72]
Deliverska, E.G.; Petkova, M. Management of oral leukoplakia - analysis of the literature. J. IMAB, 2017, 23(1), 1495-1504.
[http://dx.doi.org/10.5272/jimab.2017231.1495]
[73]
Kumar, A.; Cascarini, L.; McCaul, J.A.; Kerawala, C.J.; Coombes, D.; Godden, D.; Brennan, P.A. How should we manage oral leukoplakia? Br. J. Oral Maxillofac. Surg., 2013, 51(5), 377-383.
[http://dx.doi.org/10.1016/j.bjoms.2012.10.018] [PMID: 23159193]
[74]
Arruda, J.A.A.; Álvares, P.R.; Sobral, A.P.V.; Mesquita, R.A. A review of the surgical and nonsurgical treatment of oral leukoplakia. J. Dent. Oral Disord., 2016, 2(2), 1009.
[75]
Roza, A.L.O.C.; Kowalski, L.P.; William, W.N., Jr; de Castro, G., Jr; Chaves, A.L.F.; Araújo, A.L.D.; Ribeiro, A.C.P.; Brandão, T.B.; Lopes, M.A.; Vargas, P.A.; Santos-Silva, A.R. Oral leukoplakia and erythroplakia in young patients: A systematic review. Oral Surg. Oral Med. Oral Pathol. Oral Radiol., 2021, 131(1), 73-84.
[http://dx.doi.org/10.1016/j.oooo.2020.09.002] [PMID: 33187936]
[76]
Metgud, R.; Gupta, K.; Prasad, U.; Gupta, J. Cytomorphometric analysis of oral submucous fibrosis and leukoplakia using methyl green-pyronin Y, Feulgen staining and exfoliative brush cytology. Biotech. Histochem., 2015, 90(1), 8-13.
[http://dx.doi.org/10.3109/10520295.2014.919025] [PMID: 24867495]
[77]
Mehta, T.R.; Shah, S.; Dave, B.; Shah, R.; Dave, R. Socioeconomic and cultural impact of tobacco in India. J. Family Med. Prim. Care, 2018, 7(6), 1173-1176.
[http://dx.doi.org/10.4103/jfmpc.jfmpc_36_18] [PMID: 30613493]
[78]
Bray, F.; Ferlay, J.; Soerjomataram, I.; Siegel, R.L.; Torre, L.A.; Jemal, A. Global cancer statistics 2018: GLOBOCAN estimates of incidence and mortality worldwide for 36 cancers in 185 countries. CA Cancer J. Clin., 2018, 68(6), 394-424.
[http://dx.doi.org/10.3322/caac.21492] [PMID: 30207593]
[79]
Mehrtash, H.; Duncan, K.; Parascandola, M.; David, A.; Gritz, E.R.; Gupta, P.C.; Mehrotra, R.; Amer Nordin, A.S.; Pearlman, P.C.; Warnakulasuriya, S.; Wen, C.P.; Zain, R.B.; Trimble, E.L. Defining a global research and policy agenda for betel quid and areca nut. Lancet Oncol., 2017, 18(12), e767-e775.
[http://dx.doi.org/10.1016/S1470-2045(17)30460-6] [PMID: 29208442]
[80]
Warnakulasuriya, S. Causes of oral cancer – an appraisal of controversies. Br. Dent. J., 2009, 207(10), 471-475.
[http://dx.doi.org/10.1038/sj.bdj.2009.1009] [PMID: 19946320]
[81]
Winn, D.M.; Lee, Y-C.A.; Hashibe, M.; Boffetta, P. The inhance consortium: Toward a better understanding of the causes and mechanisms of head and neck cancer. Oral Dis., 2015, 21(6), 685-693.
[http://dx.doi.org/10.1111/odi.12342] [PMID: 25809224]
[82]
Mehanna, H.; Beech, T.; Nicholson, T.; El-Hariry, I.; McConkey, C.; Paleri, V.; Roberts, S. Prevalence of human papillomavirus in oropharyngeal and nonoropharyngeal head and neck cancer-systematic review and meta-analysis of trends by time and region. Head Neck, 2013, 35(5), 747-755.
[http://dx.doi.org/10.1002/hed.22015] [PMID: 22267298]
[83]
Pérez-Sayáns, M.; Suárez-Peñaranda, J.M.; Pilar, G.D.; Barros-Angueira, F.; Gándara-Rey, J.M.; García-García, A. Hypoxia-inducible factors in OSCC. Cancer Lett., 2011, 313(1), 1-8.
[http://dx.doi.org/10.1016/j.canlet.2011.08.017] [PMID: 21959110]
[84]
Chin, D.; Boyle, G.M.; Porceddu, S.; Theile, D.R.; Parsons, P.G.; Coman, W.B. Head and neck cancer: past, present and future. Expert Rev. Anticancer Ther., 2006, 6(7), 1111-1118.
[http://dx.doi.org/10.1586/14737140.6.7.1111] [PMID: 16831082]
[85]
Conway, D.I.; Brenner, D.R.; McMahon, A.D.; Macpherson, L.M.D.; Agudo, A.; Ahrens, W.; Bosetti, C.; Brenner, H.; Castellsague, X.; Chen, C.; Curado, M.P.; Curioni, O.A.; Dal Maso, L.; Daudt, A.W.; de Gois Filho, J.F.; D’Souza, G.; Edefonti, V.; Fabianova, E.; Fernandez, L.; Franceschi, S.; Gillison, M.; Hayes, R.B.; Healy, C.M.; Herrero, R.; Holcatova, I.; Jayaprakash, V.; Kelsey, K.; Kjaerheim, K.; Koifman, S.; La Vecchia, C.; Lagiou, P.; Lazarus, P.; Levi, F.; Lissowska, J.; Luce, D.; Macfarlane, T.V.; Mates, D.; Matos, E.; McClean, M.; Menezes, A.M.; Menvielle, G.; Merletti, F.; Morgenstern, H.; Moysich, K.; Müller, H.; Muscat, J.; Olshan, A.F.; Purdue, M.P.; Ramroth, H.; Richiardi, L.; Rudnai, P.; Schantz, S.; Schwartz, S.M.; Shangina, O.; Simonato, L.; Smith, E.; Stucker, I.; Sturgis, E.M.; Szeszenia-Dabrowska, N.; Talamini, R.; Thomson, P.; Vaughan, T.L.; Wei, Q.; Winn, D.M.; Wunsch-Filho, V.; Yu, G.P.; Zhang, Z.F.; Zheng, T.; Znaor, A.; Boffetta, P.; Chuang, S.C.; Ghodrat, M.; Amy Lee, Y.C.; Hashibe, M.; Brennan, P. Estimating and explaining the effect of education and income on head and neck cancer risk: INHANCE consortium pooled analysis of 31 case-control studies from 27 countries. Int. J. Cancer, 2015, 136(5), 1125-1139.
[http://dx.doi.org/10.1002/ijc.29063] [PMID: 24996155]
[86]
Kim, S.G.; Jang, H.S. Ameloblastoma: A clinical, radiographic, and histopathologic analysis of 71 cases. Oral Surg. Oral Med. Oral Pathol. Oral Radiol. Endod., 2001, 91(6), 649-653.
[http://dx.doi.org/10.1067/moe.2001.114160] [PMID: 11402276]
[87]
Ram, H.; Mohammad, S.; Husain, N.; Gupta, P.N. Ameloblastic carcinoma. J. Maxillofac. Oral Surg., 2010, 9(4), 415-419.
[http://dx.doi.org/10.1007/s12663-010-0169-6] [PMID: 22190836]
[88]
Jentsch, H.; Pomowski, R.; Kundt, G.; Göcke, R. Treatment of gingivitis with hyaluronan. J. Clin. Periodontol., 2003, 30(2), 159-164.
[http://dx.doi.org/10.1034/j.1600-051X.2003.300203.x] [PMID: 12622859]
[89]
Abdulkareem, A.A.; Al Marah, Z.A.; Abdulbaqi, H.R.; Alshaeli, A.J.; Milward, M.R. A randomized double‐blind clinical trial to evaluate the efficacy of chlorhexidine, antioxidant, and hyaluronic acid mouthwashes in the management of biofilm‐induced gingivitis. Int. J. Dent. Hyg., 2020, 18(3), 268-277.
[http://dx.doi.org/10.1111/idh.12432] [PMID: 32100933]
[90]
Sahayata, V.N.; Bhavsar, N.V.; Brahmbhatt, N.A. An evaluation of 0.2% hyaluronic acid gel (Gengigel®) in the treatment of gingivitis: A clinical & microbiological study. Oral Health Dent. Manag., 2014, 13(3), 779-785.
[PMID: 25284557]
[91]
Pilloni, A.; Annibali, S.; Dominici, F.; Di Paolo, C.; Papa, M.; Cassini, M.A.; Polimeni, A. Evaluation of the efficacy of an hyaluronic acid-based biogel on periodontal clinical parameters. A randomized-controlled clinical pilot study. Ann. Stomatol. (Roma), 2011, 2(3-4), 3-9.
[PMID: 22545183]
[92]
Chandra, R.V.; Prabhuji, M.L.; Roopa, D.A.; Ravirajan, S.; Kishore, H.C. Efficacy of lycopene in the treatment of gingivitis: A randomised, placebo-controlled clinical trial. Oral Health Prev. Dent., 2007, 5(4), 327-336.
[PMID: 18173095]
[93]
Somu, C.A.; Ravindra, S.; Ajith, S.; Ahamed, M. Efficacy of a herbal extract gel in the treatment of gingivitis: A clinical study. J. Ayurveda Integr. Med., 2012, 3(2), 85-90.
[http://dx.doi.org/10.4103/0975-9476.96525] [PMID: 22707865]
[94]
Pradeep, A.R.; Suke, D.K.; Martande, S.S.; Singh, S.P.; Nagpal, K.; Naik, S.B. Triphala, a new herbal mouthwash for the treatment of gingivitis: A randomized controlled clinical trial. J. Periodontol., 2016, 87(11), 1352-1359.
[http://dx.doi.org/10.1902/jop.2016.130406] [PMID: 27442086]
[95]
Fatemi, K.; Chavoshi, A.; Alidadiani, A.; Mokhtari, M. Comparison of curcumin topical nanogel and chlorhexidine mouthwash for the treatment of chronic gingivitis: A randomized clinical trial. J. Oral Health Oral Epidemiol., 2022, 11(1), 13-18.
[96]
Abouhussein, D.; El Nabarawi, M.A.; Shalaby, S.H.; El-Bary, A.A. Cetylpyridinium chloride chitosan blended mucoadhesive buccal films for treatment of pediatric oral diseases. J. Drug Deliv. Sci. Technol., 2020, 57, 101676.
[http://dx.doi.org/10.1016/j.jddst.2020.101676]
[97]
Akram, Z.; Shafqat, S.S.; Aati, S.; Kujan, O.; Fawzy, A. Clinical efficacy of probiotics in the treatment of gingivitis: A systematic review and meta‐analysis. Aust. Dent. J., 2020, 65(1), 12-20.
[http://dx.doi.org/10.1111/adj.12733] [PMID: 31682012]
[98]
Montero, E.; Iniesta, M.; Rodrigo, M.; Marín, M.J.; Figuero, E.; Herrera, D.; Sanz, M. Clinical and microbiological effects of the adjunctive use of probiotics in the treatment of gingivitis: A randomized controlled clinical trial. J. Clin. Periodontol., 2017, 44(7), 708-716.
[http://dx.doi.org/10.1111/jcpe.12752] [PMID: 28556062]
[99]
Barbosa de Souza Ferreira, S.; Fukase, G.O.; Gomes, R.G.; Bruschi, M.L. Mucoadhesive wafers for buccal delivery of probiotic bacteria: Mechanical properties and enumeration. J. Drug Deliv. Sci. Technol., 2021, 61, 102201.
[http://dx.doi.org/10.1016/j.jddst.2020.102201]
[100]
El-Feky, G.S.; Farouk Abdulmaguid, R.; Zayed, G.M.; Kamel, R. Mucosal co-delivery of ketorolac and lidocaine using polymeric wafers for dental application. Drug Deliv., 2018, 25(1), 35-42.
[http://dx.doi.org/10.1080/10717544.2017.1413445] [PMID: 29226726]
[101]
Ahuja, A.; Ali, J.; Rahman, S. Biodegradable periodontal intrapocket device containing metronidazole and amoxycillin: Formulation and characterisation. Pharmazie, 2006, 61(1), 25-29.
[PMID: 16454202]
[102]
Higashi, K.; Matsushita, M.; Morisaki, K.; Hayashi, S.; Mayumi, T. Local drug delivery systems for the treatment of periodontal disease. J. Pharmacobiodyn., 1991, 14(2), 72-81.
[http://dx.doi.org/10.1248/bpb1978.14.72] [PMID: 1870076]
[103]
Kilicarslan, M.; Ilhan, M.; Inal, O.; Orhan, K. Preparation and evaluation of clindamycin phosphate loaded chitosan/alginate polyelectrolyte complex film as mucoadhesive drug delivery system for periodontal therapy. Eur. J. Pharm. Sci., 2018, 123, 441-451.
[http://dx.doi.org/10.1016/j.ejps.2018.08.007] [PMID: 30086353]
[104]
Piñón-Segundo, E.; Ganem-Quintanar, A.; Alonso-Pérez, V.; Quintanar-Guerrero, D. Preparation and characterization of triclosan nanoparticles for periodontal treatment. Int. J. Pharm., 2005, 294(1-2), 217-232.
[http://dx.doi.org/10.1016/j.ijpharm.2004.11.010] [PMID: 15814246]
[105]
Ashri, L.Y.; Abou El Ela, A.E.S.F.; Ibrahim, M.A.; Alshora, D.H.; Naguib, M. Optimization and evaluation of chitosan buccal films containing tenoxicam for treating chronic periodontitis: In vitro and in vivo studies. J. Drug Deliv. Sci. Technol., 2020, 57, 101720.
[http://dx.doi.org/10.1016/j.jddst.2020.101720]
[106]
Bakó, J.; Szepesi, M.; Márton, I.; Borbély, J.; Hegedûs, C. [Synthesis of nanoparticles for dental drug delivery systems Fogorv. Sz., 2007, 100(3), 109-113.
[PMID: 17695047]
[107]
Addy, M.; Langeroudi, M. Comparison of the immediate effects on the sub-gingival microflora of acrylic strips containing 40% chlorhexidine, metronidazole or tetracycline. J. Clin. Periodontol., 1984, 11(6), 379-386.
[http://dx.doi.org/10.1111/j.1600-051X.1984.tb01336.x] [PMID: 6589239]
[108]
Goodson, J.M.; Haffajee, A.; Socransky, S.S. Periodontal therapy by local delivery of tetracycline. J. Clin. Periodontol., 1979, 6(2), 83-92.
[http://dx.doi.org/10.1111/j.1600-051X.1979.tb02186.x] [PMID: 379050]
[109]
Tonetti, M.; Cugini, M.A.; Goodson, J.M. Zero-order delivery with periodontal placement of tetracycline-loaded ethylene vinyl acetate fibers. J. Periodontal Res., 1990, 25(4), 243-249.
[http://dx.doi.org/10.1111/j.1600-0765.1990.tb00911.x] [PMID: 2142733]
[110]
Agarwal, R.K.; Robinson, D.H.; Maze, G.I.; Reinhardt, R.A. Development and characterization of tetracycline-poly(lactide/glycolide) films for the treatment of periodontitis. J. Control. Release, 1993, 23(2), 137-146.
[http://dx.doi.org/10.1016/0168-3659(93)90039-8]
[111]
Addy, M.; Hassan, H.; Moran, J.; Wade, W.; Newcombe, R. Use of antimicrobial containing acrylic strips in the treatment of chronic periodontal disease. A three month follow-up study. J. Periodontol., 1988, 59(9), 557-564.
[http://dx.doi.org/10.1902/jop.1988.59.9.557] [PMID: 3054047]
[112]
Golomb, G.; Friedman, M.; Soskolne, A.; Stabholz, A.; Sela, M.N. Sustained release device containing metronidazole for periodontal use. J. Dent. Res., 1984, 63(9), 1149-1153.
[http://dx.doi.org/10.1177/00220345840630091101] [PMID: 6589279]
[113]
El-Kamel, A.H.; Ashri, L.Y.; Alsarra, I.A. Micromatricial metronidazole benzoate film as a local mucoadhesive delivery system for treatment of periodontal diseases. AAPS PharmSciTech, 2007, 8(3), E184-E194.
[http://dx.doi.org/10.1208/pt0803075] [PMID: 17915825]
[114]
Junmahasathien, T.; Panraksa, P.; Protiarn, P.; Hormdee, D.; Noisombut, R.; Kantrong, N.; Jantrawut, P. Preparation and evaluation of metronidazole-loaded pectin films for potentially targeting a microbial infection associated with periodontal disease. Polymers (Basel), 2018, 10(9), 1021.
[http://dx.doi.org/10.3390/polym10091021] [PMID: 30960947]
[115]
Vasavada, R.C.; Junnarkar, G.H. Release of metronidazole from poly (ortho ester) matrices. Proc. Int. Symp. Control. Release Bioact. Mater., 1997, 24, 499-500.
[116]
Ozmeriç, N.; Özcan, G.; Haytaç, C.M. Alaaddinoğlu, E.E.; Sargon, M.F.; Şenel, S. Chitosan film enriched with an antioxidant agent, taurine, in fenestration defects. J. Biomed. Mater. Res., 2000, 51(3), 500-503.
[http://dx.doi.org/10.1002/1097-4636(20000905)51:3<500:AID-JBM26>3.0.CO;2-P] [PMID: 10880094]
[117]
Higashi, K.; Morisaki, K.; Hayashi, S.; Kitamura, M.; Fujimoto, N.; Kimura, S.; Ebisu, S.; Okada, H. Local ofloxacin delivery using a controlled-release insert (PT-01) in the human periodontal pocket. J. Periodontal Res., 1990, 25(1), 1-5.
[http://dx.doi.org/10.1111/j.1600-0765.1990.tb01201.x] [PMID: 2137167]
[118]
Kimura, S.; Toda, H.; Shimabukuro, Y.; Kitamura, M.; Fujimoto, N.; Miki, Y.; Okada, H. Topical chemotherapy in human periodontitis using a new controlled-release insert containing ofloxacin. I. Microbiological observation. J. Periodontal Res., 1991, 26(1), 33-41.
[http://dx.doi.org/10.1111/j.1600-0765.1991.tb01623.x] [PMID: 1825332]
[119]
Wu, W.; Chen, W.; Jin, Q. Oral mucoadhesive buccal film of ciprofloxacin for periodontitis: Preparation and characterization. Trop. J. Pharm. Res., 2016, 15(3), 447-451.
[http://dx.doi.org/10.4314/tjpr.v15i3.3]
[120]
Elkayam, R.; Friedman, M.; Stabholz, A.; Soskolne, A.W.; Sela, M.N.; Golub, L. Sustained release device containing minocycline for local treatment of periodontal disease. J. Control. Release, 1988, 7(3), 231-236.
[http://dx.doi.org/10.1016/0168-3659(88)90055-7]
[121]
Kyun, K.D.; Yun, K.S.; Young, J.S.; Pyoung, C.C.; Heui, S.S. Development of minocycline containing polycaprolactone film as a local drug delivery. Taehan Chikkwa Uisa Hyophoe Chi, 1990, 28(3), 279-290.
[PMID: 2133344]
[122]
Taner, I.L.; Özcan, G. Doğanay, T.; Iscanolu, M.; Taplamacioğlu, B.; Gültekin, S.E.; Baloş K. Comparison of the antibacterial effects on subgingival microflora of two different resorbable base materials containing doxycycline. J. Nihon Univ. Sch. Dent., 1994, 36(3), 183-190.
[http://dx.doi.org/10.2334/josnusd1959.36.183] [PMID: 7989960]
[123]
Perugini, P.; Genta, I.; Conti, B.; Modena, T.; Pavanetto, F. Periodontal delivery of ipriflavone: new chitosan/PLGA film delivery system for a lipophilic drug. Int. J. Pharm., 2003, 252(1-2), 1-9.
[http://dx.doi.org/10.1016/S0378-5173(02)00602-6] [PMID: 12550776]
[124]
Aminu, N.; Chan, S.Y.; Yam, M.F.; Toh, S.M. A dual-action chitosan-based nanogel system of triclosan and flurbiprofen for localised treatment of periodontitis. Int. J. Pharm., 2019, 570, 118659.
[http://dx.doi.org/10.1016/j.ijpharm.2019.118659] [PMID: 31493495]
[125]
Wang, L.C.; Chen, X.G.; Zhong, D.Y.; Xu, Q.C. Study on poly(vinyl alcohol)/carboxymethyl-chitosan blend film as local drug delivery system. J. Mater. Sci. Mater. Med., 2007, 18(6), 1125-1133.
[http://dx.doi.org/10.1007/s10856-007-0159-5] [PMID: 17268861]
[126]
Lim, S.Y.; Dafydd, M.; Ong, J.; Ord-McDermott, L.A.; Board-Davies, E.; Sands, K.; Williams, D.; Sloan, A.J.; Heard, C.M. Mucoadhesive thin films for the simultaneous delivery of microbicide and anti-inflammatory drugs in the treatment of periodontal diseases. Int. J. Pharm., 2020, 573, 118860.
[http://dx.doi.org/10.1016/j.ijpharm.2019.118860] [PMID: 31759104]
[127]
Işılay Özdoğan, A.; Akca, G.; Şenel, S. Development and in vitro evaluation of chitosan based system for local delivery of atorvastatin for treatment of periodontitis. Eur. J. Pharm. Sci., 2018, 124, 208-216.
[http://dx.doi.org/10.1016/j.ejps.2018.08.037] [PMID: 30171985]
[128]
Khajuria, D.K.; Patil, O.N.; Karasik, D.; Razdan, R. Development and evaluation of novel biodegradable chitosan based metformin intrapocket dental film for the management of periodontitis and alveolar bone loss in a rat model. Arch. Oral Biol., 2018, 85, 120-129.
[http://dx.doi.org/10.1016/j.archoralbio.2017.10.009] [PMID: 29055230]
[129]
Li, A.; Khan, I.N.; Khan, I.U.; Yousaf, A.M.; Shahzad, Y. Gellan gum-based bilayer mucoadhesive films loaded with moxifloxacin hydrochloride and clove oil for possible treatment of periodontitis. Drug Des. Devel. Ther., 2021, 15, 3937-3952.
[http://dx.doi.org/10.2147/DDDT.S328722] [PMID: 34556975]
[130]
Rajeswari, S.R.; Gowda, T.; Kumar, T.B.; Thimmasetty, J.; Mehta, D. An appraisal of innovative meloxicam mucoadhesive films for periodontal postsurgical pain control: A double-blinded, randomized clinical trial of effectiveness. Contemp. Clin. Dent., 2015, 6(3), 299-304.
[http://dx.doi.org/10.4103/0976-237X.161857] [PMID: 26321824]
[131]
Hosny, K.M.; Aldawsari, H.M.; Bahmdan, R.H.; Sindi, A.M.; Kurakula, M.; Alrobaian, M.M.; Aldryhim, A.Y.; Alkhalidi, H.M.; Bahmdan, H.H.; Khallaf, R.A.; El Sisi, A.M. Preparation, optimization, and evaluation of hyaluronic acid-based hydrogel loaded with miconazole self-nanoemulsion for the treatment of oral thrush. AAPS PharmSciTech, 2019, 20(7), 297.
[http://dx.doi.org/10.1208/s12249-019-1496-7] [PMID: 31444661]
[132]
Nafee, N.A.; Ismail, F.A.; Boraie, N.A.; Mortada, L.M. Mucoadhesive buccal patches of miconazole nitrate: In vitro/in vivo performance and effect of ageing. Int. J. Pharm., 2003, 264(1-2), 1-14.
[http://dx.doi.org/10.1016/S0378-5173(03)00371-5] [PMID: 12972331]
[133]
Hoppe, J.E.; Hahn, H. Randomized comparison of two nystatin oral gels with miconazole oral gel for treatment of oral thrush in infants. Infection, 1996, 24(2), 136-139.
[http://dx.doi.org/10.1007/BF01713319] [PMID: 8740106]
[134]
Llabot, J.M.; Palma, S.D.; Manzo, R.H.; Allemandi, D.A. Design of novel antifungal mucoadhesive films. Int. J. Pharm., 2007, 330(1-2), 54-60.
[http://dx.doi.org/10.1016/j.ijpharm.2006.08.042] [PMID: 17071026]
[135]
Narayanan, A.V.; Banu, S. Curcumin intra-oral controlled release films for oral candidiasis: a comparative study with fluconazole, elucidation of release mechanism. Curr. Drug Ther., 2018, 13(1), 43-55.
[http://dx.doi.org/10.2174/1574885512666171006162948]
[136]
Potaś J.; Szymańska, E.; Wróblewska, M.; Kurowska, I.; Maciejczyk, M.; Basa, A.; Wolska, E.; Wilczewska, A.Z.; Winnicka, K. Multilayer films based on chitosan/pectin polyelectrolyte complexes as novel platforms for buccal administration of clotrimazole. Pharmaceutics, 2021, 13(10), 1588.
[http://dx.doi.org/10.3390/pharmaceutics13101588] [PMID: 34683881]
[137]
Mura, P.; Mennini, N.; Kosalec, I.; Furlanetto, S.; Orlandini, S.; Jug, M. Amidated pectin-based wafers for econazole buccal delivery: Formulation optimization and antimicrobial efficacy estimation. Carbohydr. Polym., 2015, 121, 231-240.
[http://dx.doi.org/10.1016/j.carbpol.2014.11.065] [PMID: 25659694]
[138]
Kumar, J.K.; Jayachandran, E.; Srinivas, G.M. Formulation and evalution of pH-induced povidone iodine in situ gel for oralthrush. J. Pharm. Sci. Res, 2010, 2(5), 294.
[139]
Pathak, K.; Sharma, V.; Akhtar, N.; Rastogi, P. Localization of fluconazole in oral cavity by preferential coating of buccoadhesive tablet for treatment of oral thrush. Int. J. Pharm. Investig., 2016, 6(2), 106-115.
[http://dx.doi.org/10.4103/2230-973X.177826] [PMID: 27051630]
[140]
Kumar, J.R.; Muralidharan, S.; Dhanaraj, S.A. Development and in vitro evalution of guar gum based fluconazole in situ gel for oral thrush. J. Pharm. Sci. Res., 2012, 4(12), 2009.
[141]
Yehia, S.; El-Gazayerly, O.; Basalious, E. Fluconazole mucoadhesive buccal films: In vitro/in vivo performance. Curr. Drug Deliv., 2009, 6(1), 17-27.
[http://dx.doi.org/10.2174/156720109787048195] [PMID: 19418952]
[142]
Gajdošová, M.; Vetchý, D.; Muselík, J.; Gajdziok, J. Juřica, J.; Vetchá, M.; Hauptman, K.; Jekl, V. Bilayer mucoadhesive buccal films with prolonged release of ciclopirox olamine for the treatment of oral candidiasis: In vitro development, ex vivo permeation testing, pharmacokinetic and efficacy study in rabbits. Int. J. Pharm., 2021, 592, 120086.
[http://dx.doi.org/10.1016/j.ijpharm.2020.120086] [PMID: 33188896]
[143]
Juliano, C.; Cossu, M.; Pigozzi, P.; Rassu, G.; Giunchedi, P. Preparation, in vitro characterization and preliminary in vivo evaluation of buccal polymeric films containing chlorhexidine. AAPS PharmSciTech, 2008, 9(4), 1153-1158.
[http://dx.doi.org/10.1208/s12249-008-9153-6] [PMID: 19015998]
[144]
Martin-Mazuelos, E.; Aller, A.I.; Romero, M.J.; Armijo, A.R.; Gutierrez, M.J.; Bernal, S.; Montero, O. Response to fluconazole and itraconazole of Candida spp. in denture stomatitis. Mycoses, 1997, 40(7-8), 283-289.
[http://dx.doi.org/10.1111/j.1439-0507.1997.tb00233.x] [PMID: 9476511]
[145]
Mima, E.G.; Vergani, C.E.; Machado, A.L.; Massucato, E.M.S.; Colombo, A.L.; Bagnato, V.S.; Pavarina, A.C. Comparison of Photodynamic Therapy versus conventional antifungal therapy for the treatment of denture stomatitis: A randomized clinical trial. Clin. Microbiol. Infect., 2012, 18(10), E380-E388.
[http://dx.doi.org/10.1111/j.1469-0691.2012.03933.x] [PMID: 22731617]
[146]
Silva, M.M.; Mima, E.G.O.; Colombo, A.L.; Sanitá, P.V.; Jorge, J.H.; Massucato, E.M.S.; Vergani, C.E. Comparison of denture microwave disinfection and conventional antifungal therapy in the treatment of denture stomatitis: A randomized clinical study. Oral Surg. Oral Med. Oral Pathol. Oral Radiol., 2012, 114(4), 469-479.
[http://dx.doi.org/10.1016/j.oooo.2012.05.006] [PMID: 22986242]
[147]
de Senna, A.M.; Vieira, M.M.F.; Machado-de-Sena, R.M.; Bertolin, A.O.; Núñez, S.C.; Ribeiro, M.S. Photodynamic inactivation of Candida ssp. on denture stomatitis. A clinical trial involving palatal mucosa and prosthesis disinfection. Photodiagn. Photodyn. Ther., 2018, 22, 212-216.
[http://dx.doi.org/10.1016/j.pdpdt.2018.04.008] [PMID: 29678677]
[148]
Khozeimeh, F; Shahtalebi, MA; Noori, M; Savabi, O Comparative evaluation of ketoconazole tablet and topical ketoconazole 2% in orabase in treatment of Candida-infected denture stomatitis. J Contemp Dent Pract., 2010, 11(2), 017-024.
[149]
Aoun, G.; Saadeh, M.; Berberi, A. Effectiveness of Hexetidine 0.1% compared to Chlorhexidine Digluconate 0.12% in eliminating Candida albicans colonizing dentures: A randomized clinical in vivo study. J. Int. Oral Health, 2015, 7(8), 5-8.
[PMID: 26464531]
[150]
Cross, L.; Williams, D.; Sweeney, C.; Jackson, M.; Lewis, M.; Bagg, J. Evaluation of the recurrence of denture stomatitis and Candida colonization in a small group of patients who received itraconazole. Oral Surg. Oral Med. Oral Pathol. Oral Radiol. Endod., 2004, 97(3), 351-358.
[http://dx.doi.org/10.1016/j.tripleo.2003.10.006] [PMID: 15024360]
[151]
Cross, L.J.; Bagg, J.; Aitchison, T.C. Efficacy of the cyclodextrin liquid preparation of itraconazole in treatment of denture stomatitis: comparison with itraconazole capsules. Antimicrob. Agents Chemother., 2000, 44(2), 425-427.
[http://dx.doi.org/10.1128/AAC.44.2.425-427.2000] [PMID: 10639376]
[152]
Czerninski, R.; Pikovsky, A.; Gati, I.; Friedman, M.; Steinberg, D. Comparison of the efficacy of a novel sustained release clotrimazole varnish and clotrimazole troches for the treatment of oral candidiasis. Clin. Oral Investig., 2015, 19(2), 467-473.
[http://dx.doi.org/10.1007/s00784-014-1259-5] [PMID: 24867230]
[153]
BahriNajafi, R.; Eghbali, M.; Peykanpour, M.; Mirzaei, M. H.R. Preparation and physicochemical evaluation of Nystatine mucoadhesive buccal film. J. Rep. Pharm. Sci., 2013, 2(1), 25.
[154]
El-Batal, A.I.; Ahmed, S.F. Therapeutic effect of Aloe vera and silver nanoparticles on acid-induced oral ulcer in gamma-irradiated mice. Braz. Oral Res., 2018, 32(0), e004.
[http://dx.doi.org/10.1590/1807-3107bor-2018.vol32.0004] [PMID: 29412224]
[155]
Yamamura, K.; Yotsuyanagi, T.; Okamoto, T.; Nabeshima, T. Pain relief of oral ulcer by dibucaine-film. Pain, 1999, 83(3), 625-626.
[http://dx.doi.org/10.1016/S0304-3959(99)00164-5] [PMID: 10568871]
[156]
Coşkunmeriç, N.; Üstündağ Okur, N.; Okur, M.E.; Ayla, Ş.; Yoltaş A.; Karavana, S.Y. Promising nanogels loaded with usnic acid for oral ulcer treatment: development, characterization, and in vivo evaluation in rabbits. Pharm. Dev. Technol., 2021, 26(4), 431-443.
[http://dx.doi.org/10.1080/10837450.2021.1885441] [PMID: 33567946]
[157]
Qi, X.; Lin, W.; Wu, Y.; Li, Q.; Zhou, X.; Li, H.; Xiao, Q.; Wang, Y.; Shao, B.; Yuan, Q. CBD Promotes Oral Ulcer Healing via Inhibiting CMPK2-Mediated Inflammasome. J. Dent. Res., 2021, •••, 00220345211024528.
[PMID: 34269108]
[158]
Zhang, C.; Liu, Y.; Li, W.; Gao, P.; Xiang, D.; Ren, X.; Liu, D. Mucoadhesive buccal film containing ornidazole and dexamethasone for oral ulcers: In vitro and in vivo studies. Pharm. Dev. Technol., 2019, 24(1), 118-126.
[http://dx.doi.org/10.1080/10837450.2018.1428814] [PMID: 29334299]
[159]
Alves, T.F.R.; Rios, A.C.; da Silva Pontes, K.; Portella, D.L.; Aranha, N.; Severino, P.; Souto, E.B.; Gonsalves, J.K.M.; de Souza Nunes, R.; Chaud, M.V. Bilayer mucoadhesive buccal film for mucosal ulcers treatment: development, characterization, and single study case. Pharmaceutics, 2020, 12(7), 657.
[http://dx.doi.org/10.3390/pharmaceutics12070657] [PMID: 32664574]
[160]
Takeuchi, I.; Togo, C.; Makino, K. Rebamipide-containing film using chitosan and HPMC for oral mucositis induced by cancer chemotherapy. Anticancer Res., 2019, 39(12), 6531-6536.
[http://dx.doi.org/10.21873/anticanres.13868] [PMID: 31810918]
[161]
Gajdziok, J.; Holešová, S.; Štembírek, J.; Pazdziora, E.; Landová, H.; Doležel, P.; Vetchý, D. Carmellose mucoadhesive oral films containing vermiculite/chlorhexidine nanocomposites as innovative biomaterials for treatment of oral infections. BioMed Res. Int., 2015, 2015, 1-15.
[http://dx.doi.org/10.1155/2015/580146] [PMID: 26064926]
[162]
Watanabe, S.; Suemaru, K.; Yamaguchi, T.; Hidaka, N.; Sakanaka, M.; Araki, H. Effect of oral mucosal adhesive films containing ginsenoside Rb1 on 5-fluorouracil-induced oral mucositis in hamsters. Eur. J. Pharmacol., 2009, 616(1-3), 281-286.
[http://dx.doi.org/10.1016/j.ejphar.2009.06.028] [PMID: 19549519]
[163]
Reda, R.; Wen, M.M.; El-Kamel, A. Ketoprofen-loaded Eudragit electrospun nanofibers for the treatment of oral mucositis. Int. J. Nanomedicine, 2017, 12, 2335-2351.
[http://dx.doi.org/10.2147/IJN.S131253] [PMID: 28392691]
[164]
Shin, B.K.; Baek, E.J.; Choi, S.G.; Davaa, E.; Nho, Y.C.; Lim, Y.M.; Park, J.S.; Huh, K.M.; Park, J.S. Preparation and irradiation of Pluronic F127-based thermoreversible and mucoadhesive hydrogel for local delivery of naproxen. Drug Dev. Ind. Pharm., 2013, 39(12), 1874-1880.
[http://dx.doi.org/10.3109/03639045.2012.665925] [PMID: 22409199]
[165]
Timur, S.S. Yüksel, S.; Akca, G.; Şenel, S. Localized drug delivery with mono and bilayered mucoadhesive films and wafers for oral mucosal infections. Int. J. Pharm., 2019, 559, 102-112.
[http://dx.doi.org/10.1016/j.ijpharm.2019.01.029] [PMID: 30682450]
[166]
Lim, S.; Paech, M.; Sunderland, B.; Liu, Y. In vitro and in vivo evaluation of a sublingual fentanyl wafer formulation. Drug Des. Devel. Ther., 2013, 7, 317-324.
[http://dx.doi.org/10.2147/DDDT.S42619] [PMID: 23596347]
[167]
Porter, S.R.; Cbe, C.S. Aphthous ulcers (recurrent). BMJ Clin. Evid., 2007, 2007, 1303.
[168]
Arafa, M.G.; Ghalwash, D.; El-Kersh, D.M.; Elmazar, M.M. Propolis-based niosomes as oromuco-adhesive films: A randomized clinical trial of a therapeutic drug delivery platform for the treatment of oral recurrent aphthous ulcers. Sci. Rep., 2018, 8(1), 18056.
[http://dx.doi.org/10.1038/s41598-018-37157-7] [PMID: 30575794]
[169]
Sharma, D.; Sharma, A.; Garg, R. Design, development and in vitro/ex vivo evaluation of mucoadhesive buccal film of benzydamine hydrochloride for the effective treatment of aphthous stomatitis. Recent Pat. Drug Deliv. Formul., 2019, 12(4), 277-294.
[http://dx.doi.org/10.2174/1872211313666190128151038] [PMID: 30706830]
[170]
Terekhova, N.V.; Banchenko, G.V. Aĭrapetian, G.O.; Barkovskiĭ V.S. Use of atropine sulfate drug films for treating and preventing chronic recurrent aphthous stomatitis. Stomatologia (Mosk.), 1986, 65(5), 22-24.
[PMID: 3466419]
[171]
Ghalayani, P.; Emami, H.; Pakravan, F.; Nasr Isfahani, M. Comparison of triamcinolone acetonide mucoadhesive film with licorice mucoadhesive film on radiotherapy-induced oral mucositis: A randomized double-blinded clinical trial. Asia Pac. J. Clin. Oncol., 2017, 13(2), e48-e56.
[http://dx.doi.org/10.1111/ajco.12295] [PMID: 25347930]
[172]
Fernandes, F.P.; Fortes, A.C.; da Cruz Fonseca, S.G.; Breitkreutz, J.; Ferraz, H.G. Manufacture and characterization of mucoadhesive buccal films based on pectin and gellan gum containing triamcinolone acetonide. Int. J. Polym. Sci., 2018, 2018, 1-10.
[http://dx.doi.org/10.1155/2018/2403802]
[173]
Dalessandri, D.; Zotti, F.; Laffranchi, L.; Migliorati, M.; Isola, G.; Bonetti, S.; Visconti, L. Treatment of recurrent aphthous stomatitis (RAS; aphthae; canker sores) with a barrier forming mouth rinse or topical gel formulation containing hyaluronic acid: A retrospective clinical study. BMC Oral Health, 2019, 19(1), 153.
[http://dx.doi.org/10.1186/s12903-019-0850-1] [PMID: 31311529]
[174]
Benner, S.E.; Winn, R.J.; Lippman, S.M.; Poland, J.; Hansen, K.S.; Luna, M.A.; Hong, W.K. Regression of oral leukoplakia with α-tocopherol: A community clinical oncology program chemoprevention study. J. Natl. Cancer Inst., 1993, 85(1), 44-47.
[http://dx.doi.org/10.1093/jnci/85.1.44] [PMID: 8416256]
[175]
Liede, K.; Hietanen, J.; Saxen, L.; Haukka, J.; Timonen, T.; Häyrinen-Immonen, R.; Heinonen, O.P. Long-term supplementation with alpha-tocopherol and beta-carotene and prevalence of oral mucosal lesions in smokers. Oral Dis., 1998, 4(2), 78-83.
[http://dx.doi.org/10.1111/j.1601-0825.1998.tb00261.x] [PMID: 9680894]
[176]
Sankaranarayanan, R.; Mathew, B.; Varghese, C.; Sudhakaran, P.R.; Menon, V.; Jayadeep, A.; Nair, M.K.; Mathews, C.; Mahalingam, T.R.; Balaram, P.; Nair, P.P. Chemoprevention of oral leukoplakia with vitamin A and beta carotene: An assessment. Oral Oncol., 1997, 33(4), 231-236.
[http://dx.doi.org/10.1016/S0964-1955(97)00010-9] [PMID: 9307711]
[177]
Stich, H.F.; Hornby, A.P.; Mathew, B.; Sankaranarayanan, R.; Krishnan Nair, M. Response of oral leukoplakias to the administration of vitamin A. Cancer Lett., 1988, 40(1), 93-101.
[http://dx.doi.org/10.1016/0304-3835(88)90266-2] [PMID: 3370632]
[178]
Epstein, J.B.; Gorsky, M. Topical application of vitamin A to oral leukoplakia. Cancer, 1999, 86(6), 921-927.
[http://dx.doi.org/10.1002/(SICI)1097-0142(19990915)86:6<921:AID-CNCR5>3.0.CO;2-6] [PMID: 10491516]
[179]
Singh, M.; Krishanappa, R.; Bagewadi, A.; Keluskar, V. Efficacy of oral lycopene in the treatment of oral leukoplakia. Oral Oncol., 2004, 40(6), 591-596.
[http://dx.doi.org/10.1016/j.oraloncology.2003.12.011] [PMID: 15063387]
[180]
Epstein, J.B.; Gorsky, M.; Wong, F.L.W.; Millner, A. Topical bleomycin for the treatment of dysplastic oral leukoplakia. Cancer, 1998, 83(4), 629-634.
[http://dx.doi.org/10.1002/(SICI)1097-0142(19980815)83:4<629:AID-CNCR1>3.0.CO;2-F] [PMID: 9708924]
[181]
Rauck, R.; North, J.; Gever, L.N.; Tagarro, I.; Finn, A.L. Fentanyl buccal soluble film (FBSF) for breakthrough pain in patients with cancer: A randomized, double-blind, placebo-controlled study. Ann. Oncol., 2010, 21(6), 1308-1314.
[http://dx.doi.org/10.1093/annonc/mdp541] [PMID: 19940014]
[182]
Nam, S.; Lee, J.J.; Lee, S.Y.; Jeong, J.Y.; Kang, W.S.; Cho, H.J. Angelica gigas Nakai extract-loaded fast-dissolving nanofiber based on poly(vinyl alcohol) and Soluplus for oral cancer therapy. Int. J. Pharm., 2017, 526(1-2), 225-234.
[http://dx.doi.org/10.1016/j.ijpharm.2017.05.004] [PMID: 28478278]
[183]
Nam, S.; Lee, S.Y.; Cho, H.J. Phloretin-loaded fast dissolving nanofibers for the locoregional therapy of oral squamous cell carcinoma. J. Colloid Interface Sci., 2017, 508, 112-120.
[http://dx.doi.org/10.1016/j.jcis.2017.08.030] [PMID: 28822860]
[184]
Italo Giannola, L.; De Caro, V.; Giandalia, G.; Gabriella Siragusa, M.; Paderni, C.; Campisi, G.; Maria Florena, A. 5-Fluorouracil buccal tablets for locoregional chemotherapy of oral squamous cell carcinoma: formulation, drug release and histological effects on reconstituted human oral epithelium and porcine buccal mucosa. Curr. Drug Deliv., 2010, 7(2), 109-117.
[http://dx.doi.org/10.2174/156720110791011792] [PMID: 20158481]
[185]
Wang, H.M.; Hsueh, C.T.; Wang, C.S.; Chen, I.H.; Liao, C.T.; Tsai, M.H.; Yeh, S.P.; Chang, J.T.C. Phase II trial of cisplatin, tegafur plus uracil and leucovorin as neoadjuvant chemotherapy in patients with squamous cell carcinoma of the oropharynx and hypopharynx. Anticancer Drugs, 2005, 16(4), 447-453.
[http://dx.doi.org/10.1097/00001813-200504000-00012] [PMID: 15746582]
[186]
Gebbia, V.; Mantovani, G.; Farris, A.; Agostara, B.; Desogus, A.; Curreli, L.; Moschella, F.; Di Gregorio, C.; Bajetta, E.; Gebbia, N. Vinorelbine, cisplatin, and 5-fluorouracil as initial treatment for previously untreated, unresectable squamous cell carcinoma of the head and neck. Cancer, 1997, 79(7), 1394-1400.
[http://dx.doi.org/10.1002/(SICI)1097-0142(19970401)79:7<1394:AID-CNCR17>3.0.CO;2-V] [PMID: 9083162]
[187]
Chang, P.Y.; Peng, S.F.; Lee, C.Y.; Lu, C.C.; Tsai, S.C.; Shieh, T.M.; Wu, T.S.; Tu, M.G.; Chen, M.Y.; Yang, J.S. Curcumin-loaded nanoparticles induce apoptotic cell death through regulation of the function of MDR1 and reactive oxygen species in cisplatin-resistant CAR human oral cancer cells. Int. J. Oncol., 2013, 43(4), 1141-1150.
[http://dx.doi.org/10.3892/ijo.2013.2050] [PMID: 23917396]
[188]
Singh, S.P.; Sharma, M.; Gupta, P.K. Enhancement of phototoxicity of curcumin in human oral cancer cells using silica nanoparticles as delivery vehicle. Lasers Med. Sci., 2014, 29(2), 645-652.
[http://dx.doi.org/10.1007/s10103-013-1357-7] [PMID: 23807180]
[189]
Lin, H.Y.; Thomas, J.L.; Chen, H.W.; Shen, C.M.; Yang, W.J.; Lee, M.H. In vitro suppression of oral squamous cell carcinoma growth by ultrasound-mediated delivery of curcumin microemulsions. Int. J. Nanomedicine, 2012, 7, 941-951.
[PMID: 22393291]
[190]
Mognetti, B.; Di Carlo, F.; Berta, G.N. Animal models in oral cancer research. Oral Oncol., 2006, 42(5), 448-460.
[http://dx.doi.org/10.1016/j.oraloncology.2005.07.014] [PMID: 16266822]
[191]
Wang, Z.Q.; Liu, K.; Huo, Z.J.; Li, X.C.; Wang, M.; Liu, P.; Pang, B.; Wang, S.J. A cell-targeted chemotherapeutic nanomedicine strategy for oral squamous cell carcinoma therapy. J. Nanobiotechnology, 2015, 13(1), 63.
[http://dx.doi.org/10.1186/s12951-015-0116-2] [PMID: 26427800]
[192]
Holpuch, A.S.; Phelps, M.P.; Desai, K.G.H.; Chen, W.; Koutras, G.M.; Han, B.B.; Warner, B.M.; Pei, P.; Seghi, G.A.; Tong, M.; Border, M.B.; Fields, H.W.; Stoner, G.D.; Larsen, P.E.; Liu, Z.; Schwendeman, S.P.; Mallery, S.R. Evaluation of a mucoadhesive fenretinide patch for local intraoral delivery: A strategy to reintroduce fenretinide for oral cancer chemoprevention. Carcinogenesis, 2012, 33(5), 1098-1105.
[http://dx.doi.org/10.1093/carcin/bgs122] [PMID: 22427354]
[193]
Matos, B.N.; Pereira, M.N.; Bravo, M.O.; Cunha-Filho, M.; Saldanha-Araújo, F.; Gratieri, T.; Gelfuso, G.M. Chitosan nanoparticles loading oxaliplatin as a mucoadhesive topical treatment of oral tumors: Iontophoresis further enhances drug delivery ex vivo. Int. J. Biol. Macromol., 2020, 154, 1265-1275.
[http://dx.doi.org/10.1016/j.ijbiomac.2019.11.001] [PMID: 31726173]
[194]
Pornpitchanarong, C.; Rojanarata, T.; Opanasopit, P.; Ngawhirunpat, T.; Patrojanasophon, P. Catechol-modified chitosan/hyaluronic acid nanoparticles as a new avenue for local delivery of doxorubicin to oral cancer cells. Colloids Surf. B Biointerfaces, 2020, 196, 111279.
[http://dx.doi.org/10.1016/j.colsurfb.2020.111279] [PMID: 32750605]
[195]
Kies, M.S.; Holsinger, F.C.; Lee, J.J.; William, W.N., Jr; Glisson, B.S.; Lin, H.Y.; Lewin, J.S.; Ginsberg, L.E.; Gillaspy, K.A.; Massarelli, E.; Byers, L.; Lippman, S.M.; Hong, W.K.; El-Naggar, A.K.; Garden, A.S.; Papadimitrakopoulou, V. Induction chemotherapy and cetuximab for locally advanced squamous cell carcinoma of the head and neck: results from a phase II prospective trial. J. Clin. Oncol., 2010, 28(1), 8-14.
[http://dx.doi.org/10.1200/JCO.2009.23.0425] [PMID: 19917840]
[196]
Meylina, L.; Muchtaridi, M.; Joni, I.M.; Mohammed, A.F.A.; Wathoni, N. Nanoformulations of α-mangostin for cancer drug delivery system. Pharmaceutics, 2021, 13(12), 1993.
[http://dx.doi.org/10.3390/pharmaceutics13121993] [PMID: 34959275]
[197]
Ahmadian, E.; Dizaj, S.M.; Sharifi, S.; Shahi, S.; Khalilov, R.; Eftekhari, A.; Hasanzadeh, M. The potential of nanomaterials in theranostics of oral squamous cell carcinoma: Recent progress. Trends Analyt. Chem., 2019, 116, 167-176.
[http://dx.doi.org/10.1016/j.trac.2019.05.009]
[198]
Mazzarino, L.; Loch-Neckel, G.; Bubniak, L.D.S.; Mazzucco, S.; Santos-Silva, M.C.; Borsali, R.; Lemos-Senna, E. Curcumin-loaded chitosan-coated nanoparticles as a new approach for the local treatment of oral cavity cancer. J. Nanosci. Nanotechnol., 2015, 15(1), 781-791.
[http://dx.doi.org/10.1166/jnn.2015.9189] [PMID: 26328442]
[199]
Legha, S.S.; Ring, S.; Bedikian, A.; Plager, C.; Eton, O.; Buzaid, A.C.; Papadopoulos, N. Treatment of metastatic melanoma with combined chemotherapy containing cisplatin, vinblastine and dacarbazine (CVD) and biotherapy using interleukin-2 and interferon-α. Ann. Oncol., 1996, 7(8), 827-835.
[http://dx.doi.org/10.1093/oxfordjournals.annonc.a010762] [PMID: 8922197]
[200]
Gupta, N.; Hanley, M.J.; Venkatakrishnan, K.; Bessudo, A.; Rasco, D.W.; Sharma, S.; O’Neil, B.H.; Wang, B.; Liu, G.; Ke, A.; Patel, C.; Rowland Yeo, K.; Xia, C.; Zhang, X.; Esseltine, D.L.; Nemunaitis, J. Effects of strong CYP3A inhibition and induction on the pharmacokinetics of ixazomib, an oral proteasome inhibitor: results of drug‐drug interaction studies in patients with advanced solid tumors or lymphoma and a physiologically based pharmacokinetic analysis. J. Clin. Pharmacol., 2018, 58(2), 180-192.
[http://dx.doi.org/10.1002/jcph.988] [PMID: 28800141]
[201]
Duvic, M.; Vu, J. Vorinostat: A new oral histone deacetylase inhibitor approved for cutaneous T-cell lymphoma. Expert Opin. Investig. Drugs, 2007, 16(7), 1111-1120.
[http://dx.doi.org/10.1517/13543784.16.7.1111] [PMID: 17594194]
[202]
Witzig, T.E.; Wiernik, P.H.; Moore, T.; Reeder, C.; Cole, C.; Justice, G.; Kaplan, H.; Voralia, M.; Pietronigro, D.; Takeshita, K.; Ervin-Haynes, A.; Zeldis, J.B.; Vose, J.M. Lenalidomide oral monotherapy produces durable responses in relapsed or refractory indolent non-Hodgkin’s Lymphoma. J. Clin. Oncol., 2009, 27(32), 5404-5409.
[http://dx.doi.org/10.1200/JCO.2008.21.1169] [PMID: 19805688]
[203]
Costa, J.S.R.; de Oliveira Cruvinel, K.; Oliveira-Nascimento, L. A mini-review on drug delivery through wafer technology: Formulation and manufacturing of buccal and oral lyophilizates. J. Adv. Res., 2019, 20, 33-41.
[http://dx.doi.org/10.1016/j.jare.2019.04.010] [PMID: 31193385]
[204]
Liao, Z.; Zeng, R.; Hu, L.; Maffucci, K.G.; Qu, Y. Polysaccharides from tubers of Bletilla striata: Physicochemical characterization, formulation of buccoadhesive wafers and preliminary study on treating oral ulcer. Int. J. Biol. Macromol., 2019, 122, 1035-1045.
[http://dx.doi.org/10.1016/j.ijbiomac.2018.09.050] [PMID: 30227203]
[205]
Nagar, P.; Singh, K.; Chauhan, I.; Verma, M.; Yasir, M.; Khan, A.; Sharma, R.; Gupta, N. Orally disintegrating tablets: formulation, preparation techniques and evaluation. J. Appl. Pharm. Sci., 2011, 1(04), 35-45.
[206]
Andrews, G.P.; Laverty, T.P.; Jones, D.S. Mucoadhesive polymeric platforms for controlled drug delivery. Eur. J. Pharm. Biopharm., 2009, 71(3), 505-518.
[http://dx.doi.org/10.1016/j.ejpb.2008.09.028] [PMID: 18984051]
[207]
Lade, M.S.; Payghan, S.A.; Tamboli, Z.J.; Disouza, J.I. Polymer based wafer technology: A Review. Int. J. Pharm. Biol. Arch., 2013, 4(6), 1060-1074.
[208]
Bromberg, L.E.; Braman, V.M.; Rothstein, D.M.; Spacciapoli, P.; O’Connor, S.M.; Nelson, E.J.; Buxton, D.K.; Tonetti, M.S.; Friden, P.M. Sustained release of silver from periodontal wafers for treatment of periodontitis. J. Control. Release, 2000, 68(1), 63-72.
[http://dx.doi.org/10.1016/S0168-3659(00)00233-9] [PMID: 10884580]
[209]
Kirsch, K.; Hanke, U.; Weitschies, W. Preparation and characterization of gastrointestinal wafer formulations. Int. J. Pharm., 2017, 522(1-2), 165-171.
[http://dx.doi.org/10.1016/j.ijpharm.2017.02.045] [PMID: 28263833]
[210]
Matthews, K.H.; Stevens, H.N.E.; Auffret, A.D.; Humphrey, M.J.; Eccleston, G.M. Lyophilised wafers as a drug delivery system for wound healing containing methylcellulose as a viscosity modifier. Int. J. Pharm., 2005, 289(1-2), 51-62.
[http://dx.doi.org/10.1016/j.ijpharm.2004.10.022] [PMID: 15652198]
[211]
Matthews, K.; Stevens, H.; Auffret, A.; Humphrey, M.; Eccleston, G. Gamma-irradiation of lyophilised wound healing wafers. Int. J. Pharm., 2006, 313(1-2), 78-86.
[http://dx.doi.org/10.1016/j.ijpharm.2006.01.023] [PMID: 16503387]
[212]
Bunte, H.; Drooge, D.J.; Ottjes, G.; Roukema, R.; Verrijk, R.; Yessine, M. Key considerations when developing freeze-dried formulation and current trends. Pharm. Technol. Eur. Digit., 2010, 22, 2-4.
[213]
Mostafa, D.A.E.; Hashad, A.M.; Ragab, M.F.; Wagdy, H.A. Comparison between the pharmacokinetics data of ketorolac tromethamine wafer a novel drug delivery system and conventional ketorolac tromethamine tablets to enhance patient compliance using a new LC-MS/MS method. Bionanoscience, 2020, 10(3), 745-757.
[http://dx.doi.org/10.1007/s12668-020-00754-w]
[214]
Gliadel Wafer. Available from: https://www.gliadel.com/hcp [Accessed on: March 20, 2022]
[215]
Pepcidine, RPD Wafer. Available from : https://www.gnhindia.com/products/nz-drugs/pepcidine-rpd-wafer-20-mg/ [Accessed on: March 20, 2022]
[216]
Zofran Zydis Wafer. Available from : https://www.gnhindia.com/products/nz-drugs/zofran-zydis-wafer-4-mg/ [Accessed on: March 20, 2022]
[217]
Zyprexa Zydis Wafers. Available from : https://www.mydr.com.au/medicines/zyprexa-zydis-wafers/ [Accessed on: March 20, 2022]
[218]
Public Drug Database. PARALYOC 500 mg, oral lyophilisate Patient Information Leaflet. Available from : https://base--donnees-- publique-medicaments-gouvfr.translate.goog/affichageDoc.php?typedoc=N&specid=64169778 &_x_tr_sl=fr&_x_tr_tl=en&_x_tr_hl=en&_x_tr_pto=sc [Accessedon: March 20, 2022]
[220]
Datapharm Communications Limited. Medicines and Healthcare products Regulatory Agency, European Medicines Agency. ElectronicMedicines Compendium (eMC), 2022. Available from : https://www.medicines.org.uk/emc/ [Accessed on: March 20,2022]
[221]
U.S. Food and Drug Administration. 2022. Available from : https://www.fda.gov/ [Accessed on: March 20, 2022]
[222]
Kaiser Foundation Health Plan Coenzyme Q10 600 mg oral wafer., Available from : https://healthy.kaiserpermanente.org/health-wellness/drug-encyclopedia/drug.coenzyme-q10-600-mg-oral-wafer.472689 [Accessed on: March 20, 2022]
[224]
Vaidya, M.M.; Khutle, N.M.; Gide, P.S. Oral fast dissolving drug delivery system: A modern approach for patient compliance. World J. Pharm. Res., 2013, 2(3), 558-577.
[225]
Nagesh, G.; Santosh, J.; Audumbar, M.; Manojkumar, P. A review on recent trends in oral drug delivery-Lyophilized wafer technology. Int. J. Res. Pharm. Pharm. Sci., 2016, 1, 5-9.

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