Applications of polysaccharides in topical and transdermal drug delivery

A recent update of literature

Autores

  • Rabinarayan Parhi Department of Pharmaceutical Sciences, Susruta School of Medical and Paramedical Sciences, Assam University (A Central University), Silchar-788011, Assam, India https://orcid.org/0000-0003-4010-4368
  • Suvendu Kumar Sahoo GITAM Institute of Pharmacy, GITAM Deemed to be University, Gandhi Nagar Campus, Rushikonda, Visakhapatnam-530045, Andhra Pradesh, India
  • Anik Das GITAM Institute of Pharmacy, GITAM Deemed to be University, Gandhi Nagar Campus, Rushikonda, Visakhapatnam-530045, Andhra Pradesh, India

DOI:

https://doi.org/10.1590/s2175-97902022e20802

Palavras-chave:

Polysaccharides, Transdermal drug delivery, Natural polymers, Controlled drug delivery, Hydrogel

Resumo

The main aim of transdermal drug delivery (TDD) is to deliver a specific dose of drug across the skin and to reach systemic circulation at a controlled rate. On the other hand skin is the target for topical drug delivery. Mentioned drug delivery systems (DDS) have numerous advantages compared to oral and parenteral routes. Avoidance of first-pass metabolism, prevent drug degradation due to harsh environment of the stomach, allow controlled drug delivery, provide patient compliance, and pain-free administration are a few of them. To achieve all of them, a DDS with suitable polymer is the primary requisite. Based on the recent trends, natural polymers have been more popular in comparison to synthetic polymers because the former possesses favourable properties including nontoxic, biodegradable, biocompatible, low cost, sustainable and renewable resources. In this context polysaccharides, composed of chains of monosaccharides bound together by glycosidic bonds, have been successfully employed to augment drug delivery into and across the skin with various formulations such as gel, membrane, patches, nanoparticles, nanofibres, nanocomposite, and microneedles. In this chapter, various polysaccharides such as cellulose, chitosan, and their semisynthetic derivatives, alginate, pectin, carrageenan etc, were discussed with their diverse topical and TDD applications. In addition, various formulations based on polysaccharides and limitations of polysaccharides were also briefly discussed.

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Referências

Abdel-Hafez SM, Hathout RM, Sammour OA. Tracking the transdermal penetration pathways of optimized curcumin-loaded chitosan nanoparticles via confocal laser scanning microscopy. Int J Biol Macromol. 2018;108:753-64.

Abioye AO, Issah S, Kola-Mustapha AT. Ex vivo skin permeation and retention studies on chitosan-ibuprofen-gellan ternary nanogel prepared by in situ ionic gelation technique-a tool for controlled transdermal delivery of ibuprofen. Int J Pharm. 2015;490(1-2):112-30.

Abnoos M, Mohseni M, Mousavi SAJ, Ashtari K, Ilka R, Mehravi B. Chitosan-alginate nano-carrier for transdermal delivery of pirfenidone in idiopathic pulmonary fibrosis. Int J Biol Macromol . 2018;118(Pt A):1319-25.

N, Sánchez E, Calderón L, Cordoba-Diaz M, Cordoba-Diaz D, Dom S, et al. Physical stability studies of semi-solid formulations from natural compounds loaded with chitosan microspheres. Mar Drugs. 2015;13(9):5901-19.

Ahmed OAA, Badr-Eldin SM. Development of an optimized avanafil-loaded invasomal transdermal film: Ex vivo skin permeation and in vivo evaluation. Int J Pharm . 2019;570:118657.

Ahmed TA, Alay AMS, Okbazghi SZ, Alhakamy NA. Two-step optimization to develop a transdermal film loaded with dapoxetine nanoparticles: a promising technique to improve drug skin permeation. Dose-Response. 2020;18(2):1-15.

Ahmed TA, El-Say KM. Development of alginate-reinforced chitosan nanoparticles utilizing W/O nanoemulsification/ internal crosslinking technique for transdermal delivery of rabeprazole. Life Sci. 2014;110(1):35-43.

Ali HSM, Hanafy AF. Glibenclamide nanocrystals in a biodegradable chitosan patch for transdermal delivery: engineering, formulation, and evaluation. J Pharm Sci. 2017;106(1):402-10.

Al-Kassas R, Wen J, Cheng AE-M, Kim AM-J, Sze S, Liu M, et al. Transdermal delivery of propranolol hydrochloride through chitosan nanoparticles dispersed in mucoadhesive gel. Carbohyd Polym. 2016;153:176-86.

Alshhab A, Yilmaz E. Sodium alginate/poly(4-vinylpyridine) polyelectrolyte multilayer films: Preparation, characterization and ciprofloxacin HCl release. Int J Biol Macromol . 2020;147:809-20.

Alvarez-Lorenzo C, Blanco-Fernandez B, Puga AM, Concheiro A. Crosslinked ionic polysaccharides for stimuli-sensitive drug delivery. Adv Drug Deliv Rev. 2013;65(9):1148-71.

Alvarez-Roman R, Naik A, Kalia YN, Guy RH, Fessi H. Skin penetration and distribution of polymeric nanoparticles. J Control Release. 2004;99(1):53-62.

Anirudhan TS, Binusree J. Dextran based nanosized carrier for the controlled and targeted delivery of curcumin toliver cancer cells. Int J Biol Macromol . 2016;88:222-35.

Bakrudeen HV, Sudarvizhi C, Reddy BSR. Starch nanocrystals based hydrogel: Construction, characterizations and transdermal application. Mater Sci Eng C Mater Biol Appl. 2016;68:880-889.

Bejenariu A, Popa M, Cerf D, Picton L. Stiffness xanthan hydrogels: synthesis, swelling characteristics and controlled release properties. Polym Bull. 2008;61(5):631-41.

Bhunia T, Giri A, Nasim T, Chattopadhyay D, Bandyopadhyay A. Uniquely different PVA-xanthan gum irradiated membranes as transdermal diltiazem delivery device. Carbohyd Polym . 2013;95(1):252-61.

Bigucci F, Abruzzo A, Saladini B, Gallucci MC, Cerchiara T, Luppi B. Development and characterization of chitosan/ hyaluronan film for transdermal delivery of thiocolchicoside. Carbohyd Polym . 2015;130:32-40.

Birajdar RP, Patil SB, Alange VV, Kulkarni RV. Electro-responsive polyacrylamide-grafted-gum ghatti copolymer for transdermal drug delivery application. J Macromol Sci Part A: Pure Appl Chem. 2019;56(4):306-15.

Birajdar RP, Patil SB, Alange VV, Kulkarni RV. Synthesis and characterization of electrically responsive poly(acrylamide)-grafted-chondroitin sulfate hydrogel for transdermal drug delivery application. Int J Polym Mater Polym Biomater. 2020;69(3):148-57.

Cai XJ, Mesquida P, Jones SA. Investigating the ability of nanoparticle-loaded hydroxypropyl methylcellulose and xanthan gum gels to enhance drug penetration into the skin. Int J Pharm . 2016;513(1-2):302-8.

Caon T, Porto LC, Granada A, Tagliari MP, Silva MAS, Simões CMO, et al. Chitosan-decorated polystyrene-b- poly(acrylic acid) polymersomes as novel carriers for topical delivery of finasteride. Eur J Pharm Sci . 2014;52:165-72.

Capanema NSV, Mansur AAP, Carvalho SM, Carvalho IC, Chagas P, de Oliveira LCA, et al. Bioengineered carboxymethyl cellulose-doxorubicin prodrug hydrogels for topical chemotherapy of melanoma skin cancer. Carbohyd Polym . 2018;195:401-12.

Carmona-Moran CA, Zavgorodnya O, Penman AD, Kharlampieva E, Bridges Jr SL, Hergenrother RW, et al. Development of gellan gum containing formulations for transdermal drug delivery: Component evaluation and controlled drug release using temperature responsive nanogels. Int J Pharm . 2016;509(1-2):465-76.

Chatterjee S, Hui PC-L, Wat E, Kan C-W, Leung P-C, Wang W. Drug delivery system of dual-responsive PF127 hydrogel with polysaccharide-based nano-conjugate for textile-based transdermal therapy. Carbohyd Polym . 2020;236:116074.

Chen F, Huang G, Huang H. Preparation and application of dextran and its derivatives as carriers. Int J Biol Macromol . 2020;145:827-34.

Chen SX, Ma M, Xue F, Shen S, Chen Q, Kuang Y, et al. Construction of microneedle-assisted co-delivery platform and its combining photodynamic/immunotherapy. J Control Release . 2020;324:218-27.

Cheung RCF, Ng TB, Wong JH, Chan WY. Chitosan: an update on potential biomedical and pharmaceutical applications. Mar Drugs . 2015;13(8):5156-86.

Chomto P, Nunthanid J. Physicochemical and powder characteristics of various citrus pectins and their application for oral pharmaceutical tablets. Carbohyd Polym . 2017;174:25-31.

Cirillo G, Hampel S, Spizzirri UG, Parisi OI, Nevio PN, Iemma F. Carbon nanotubes hybrid hydrogels in drug delivery: a perspective review. BioMed Res Int. 2014;2014:17.

Coelho JF, Ferreira PC, Alves P, Cordeiro R, Fonseca AC, Góis JR, et al. Drug delivery systems: Advanced technologies potentially applicable in personalized treatments. EPMA J. 2010;1(1):164-209.

Coltelli MB, Danti S, Clerk KD, Lazzeri A, Morganti P.Pullulan for advanced sustainable body-and skin-contact applications. J Funct Biomater. 2020;11(1):20.

Contardi M, Russo D, Suarato G, Heredia-Guerrero JA, Ceseracciu L, Penna I, et al. Polyvinylpyrrolidone/ hyaluronic acid-based bilayer constructs for sequential delivery of cutaneous antiseptic and antibiotic. Chem Eng J. 2019;358:912-23.

Demir YK, Kerimoglu O. Novel use of pectin as a microneedle base. Chem Pharm Bull (Tokyo). 2015;63(4):300-4.

Dias SFL, Nogueira SS, de França DF, Guimarães MA, Pitombeira NA de O, Gobbo GG, et al. Acetylated cashew gum-based nanoparticles for transdermal delivery of diclofenac diethyl amine. Carbohydr Polym. 2016;143:254-61.

Dragan ES, Dinu MV. Polysaccharides constructed hydrogels as vehicles for proteins and peptides. A review. Carbohyd Polym . 2019;225:115210.

Dutta K, Das B, Mondal D, Adhikari A, Rana D, Chattopadhyay AK, et al. An ex situ approach to fabricating nanosilica reinforced polyacrylamide grafted guar gum nanocomposites as an efficient biomaterial for transdermal drug delivery application. New J Chem. 2017;41(17):9461-71.

Einbu A, Vayrum KM. Characterization of chitin and its hydrolysis to GlcNAc and GlcN. Biomacromol. 2008;9(7):1870-5.

El-Naggar ME, El-Rafie MH, El-sheikh MA, El-Feky GS, Hebeish A. Synthesis, characterization, release kinetics and toxicity profile of drug-loaded starch nanoparticles. Int J Biol Macromol . 2015;81:718-29.

Engkagul V, Klaharn I, Sereemaspun A, Chirachanchai S. Chitosan whisker grafted with oligo(lactic acid) nanoparticles via a greensynthesis pathway: Potential as a transdermal drug delivery system. Nanomedicine. 2017;13(8):2523-31.

lFonseca DFS, Costa PC, Almeida IF, Dias-Pereira P, Correia-Sá I, Bastos V, et al. Pullulan microneedle patches for the efficient transdermal administration of insulin envisioning diabetes treatment. Carbohydr Polym . 2020;241:116314.

Franzé S, Marengo A, Stella B, Minghetti P, Arpicco S, Cilurzo F. Hyaluronan-decorated liposomes as drug delivery systems for cutaneous administration. Int J Pharm . 2018;535(1-2):333-9.

Fu L, Zhu J, Zhang S, Li X, Zhang B, Pu H, et al. Hierarchical structure and thermal behavior of hydrophobic starch-based films with different amylose contents. Carbohydr Polym . 2018;181:528-35.

Fukushima K, Yamazaki T, Hasegawa R, Ito Y, Sugioka N, Takada K. Pharmacokinetic and pharmacodynamic evaluation of insulin dissolving microneedles in dogs. Diabetes Technol Ther. 2010;12(6):465-74.

Galipoğlu M, Erdal MS, Güngör S. Biopolymer-based transdermal films of donepezil as an alternative delivery approach in Alzheimer’s disease treatment. AAPS PharmSciTech. 2015;16(2),284-92.

Gandhi A, Jana S, Paul A, Sheet S, Nag R, Sen KK. Metoprolol tartrate containing glutaraldehyde cross-linked chitosan-polyvinyl pyrrolidone matrix transdermal patch: preparation and characterization. J PharmaSciTech. 2014;3(2):72-6.

Ganti SS, Nguyen HX, Murnane KS, Blough BE, Banga AK. Transdermal formulation of 4-benzylpiperidine for cocaine-use disorder. J Drug Deliv Sci Technol. 2018;47:299-308.

Gencturk A, Kahraman E, Güngör S, Özhan G, Özsoy Y, Sarac AS. Polyurethane/hydroxypropyl cellulose electrospun nanofiber mats as potential transdermal drug delivery system: characterization studies and in vitro assays. Artif Cells Nanomed Biotechnol. 2017;45(3):655-64.

Ghorani B, Goswami P, Blackburn RS, Russell SJ. Enrichment of cellulose acetate nanofibre assemblies for therapeutic delivery of l-tryptophan. Int J Biol Macromol . 2018;108:1-8.

Giri A, Bhunia T, Mishra SM, Goswami L, Panda AB, Bandyopadhya A. A transdermal device from 2-hydroxyethyl methacrylate grafted carboxymethyl guar gum-multi-walled carbon nanotube composites. RSC Adv. 2014;4(26):13546-56.

Gopinath V, Saravanan S, Al-Maleki AR, Ramesh M, Vadivelu J. A review of natural polysaccharides for drug delivery applications: Special focus on cellulose, starch and glycogen. Biomed Pharmacoth. 2018;107:96-108.

Goyal R, Macri LK, Kaplan HM, Kohn J. Nanoparticles and nanofibers for topical drug delivery. J Controlled Release. 2016;240:77-92.

Gul R, Ahmed N, Ullah N, Khan MI, Elaissari A, Rehman A. Biodegradable ingredient-based emulgel loaded with ketoprofen nanoparticles. AAPS PharmSciTech . 2018;19(4):1869-81.

Guo MQ, Hu X, Wang C, Ai L. Polysaccharides: Structure and Solubility. InTech. 2017. DOI:10.5772/intechopen.71570.

» https://doi.org/10.5772/intechopen.71570

Hadebe SI, Ngubane PS, Serumula MR, Musabayane CT. Transdermal delivery of insulin by amidated pectin hydrogel matrix patch in streptozotocin-induced diabetic rats: effects on some selected metabolic parameters. PLoS One. 2014;9(7):101461.

Huang Y, Li Y, Fan H, Xia Q. Preparation and characterization of salicylic acid-loaded microcapsules as delivery systems for cosmetics. Integr Ferroelectr. 2014;152(1):22.

Huerta-Ángeles G, Brandejsová M, Štěpán P, Pavlík V, Starigazdová J, Orzol P, et al. Retinoic acid grafted to hyaluronan for skin delivery: Synthesis, stability studies, and biological evaluation. Carbohyd Polym . 2020;231:115733.

Hutton ARJ, McCrudden MTC, Larrañeta E, Donnelly RF. Influence of molecular weight on transdermal delivery of model macromolecules using hydrogel-forming microneedles: potential to enhance the administration of novel low molecular weight biotherapeutics. J Mater Chem2020; 8(19):4202.

Im SH, Jung HT, Ho MJ, Lee JE, Kim HT, Kim DY, et al. Montelukast nanocrystals for transdermal delivery with improved chemical stability. Pharmaceutics. 2019;12(1):18.

Jain D, Bar-Shalom D. Alginate drug delivery systems: application in context of pharmaceutical and biomedical research. Drug Dev Ind Pharm. 2014;40(12):1576-84.

Jana S, Manna S, Nayak AK, Sen KK, Basu SK. Carbopol gel containing chitosan-egg albumin nanoparticles for transdermal aceclofenac delivery. Coll Surf, B. 2014;114:36-44.

Jeong JH, Back SK, An JH, Lee N-S, Kim D-K, Na CS, et al. Topical film prepared with Rhus verniciflua extract-loaded pullulan hydrogel for atopic dermatitis treatment. J Biomed Mater Res B Appl Biomater. 2019;107(7):2325-34.

Kamel S. Pharmaceutical significance of cellulose: a review. Polym Lett. 2008;2(11):758-78.

Kaur R, Sharma A, Puri V, Singh I. Preparation and characterization of biocomposite films of carrageenan/ locust bean gum/montmorrillonite for transdermal delivery of curcumin. BioImpacts. 2019;9(1):37-43.

Kim H, Jeong H, Han S, Beack S, Hwang BW, Shin M, et al. Hyaluronate and its derivatives for customized biomedical applications. Biomaterials. 2017;123:155-71.

Kim IY, Seo SJ, Moon HS, Yoo MK, Park IY, Kim BC, et al. Chitosan and its derivatives for tissue engineering applications. Biotechnol Adv. 2008;26(1):1-21.

Kodoth AK, Ghate VM, Lewis SA, Prakash B, Badalamoole V. Pectin-based silver nanocomposite film for transdermal delivery of Donepezil. Int J Biol Macromol . 2019;134:269-79.

Kong BJ, Kim A, Park SN. Properties and in vitro drug release of hyaluronic acid-hydroxyethyl cellulose hydrogels for transdermal delivery of isoliquiritigenin. Carbohydr Polym . 2016;147:473-81.

Kumari B, Kesavan K. Effect of chitosan coating on microemulsion for effective dermal clotrimazole delivery. Pharm Dev Technol. 2017;22(4):617-26.

Kushner J 4th, Blankschtein D, Langer R. Evaluation of hydrophilic permeant transport parameters in the localized and non-localized transport regions of skin treated simultaneously with low-frequency ultrasound and sodium lauryl sulfate. J Pharm Sci . 2008;97(2):906-18.

Kushner J 4th, Blankschtein D, Langer R. Evaluation of the porosity, the tortuosity, and the hindrance factor for the transdermal delivery of hydrophilic permeants in the context of the aqueous pore pathway hypothesis using dual-radiolabeled permeability experiments. J Pharm Sci . 2007;96(12):3263-82.

Kwon SS, Kong BJ, Park SN. Physicochemical properties of pH-sensitive hydrogels based on hydroxyethyl cellulose-hyaluronic acid and for applications as transdermal delivery systems for skin lesions. Eur J Pharm Biopharm. 2015;92:146-54.

Lane ME. Skin penetration enhancers. Int J Pharm . 2013;447(1-2):12-21.

Layek B, Mandal S. Natural polysaccharides for controlled delivery of oral therapeutics: a recent update. Carbohydr Polym . 2020;230:115617.

Layek B, Singh J. Chitosan for DNA and gene therapy. In: Jennings JA, Bumgardner JD, editors, Chitosan Based Biomaterials . Woodhead Publishing: 2017. p. 209-44.

Lee EH, Lim SJ, Lee MK. Chitosan-coated liposomes to stabilize and enhance transdermal delivery of indocyanine green for photodynamic therapy of melanoma. Carbohydr Polym . 2019;224:115143.

Li L, Ni R, Shao Y, Mao S. Carrageenan and its applications in drug delivery. Carbohyd Polym . 2014a;103:1-11.

Li Y, Huang Y-Q, Fan H-F, Xia Q. Heat-resistant sustained-release fragrance microcapsules. J Appl Polym Sci. 2014b;131(7):40053.

Lorenzo FD, Silipo A, Molinaro A, Parrilli M, Schiraldi C, D’Agostino A, et al. The polysaccharide and low molecular weight components of Opuntia ficus indica cladodes: structure and skin repairing properties. Carbohydr Polym . 2017;157:128-36.

Luesakul U, Puthong S, Sansanaphongpricha K, Muangsin N. Quaternized chitosan-coated nanoemulsions: A novel platform for improving the stability, anti-inflammatory, anti-cancer and transdermal properties of Plai extract. Carbohydr Polym . 2020;230:115625.

Malviya R. Non-invasive drug delivery system for the delivery of protein/peptide using neem gum and its derivatives. Biointerf Res Appl Chem. 2020;10(3):5460-55.

Nair AB, Shah J, Aljaeid BM, Al-Dhubiab BE, Jacob S. Gellan gum-based hydrogel for the transdermal delivery of nebivolol: optimization and evaluation. Polymers (Basel). 2019;11(10):1699.

Nair KK, Suman K, Thompkinson DK. Inulin dietary fiber with functional and health attributes-A review. Food Rev Int. 2010;26(2):189-203.

Naito S, Ito Y, Kiyohara T, Kataoka M, Ochiai M, Takada K. Antigen-loaded dissolving microneedle array as a novel tool for percutaneous vaccination. Vaccine. 2012;30(6):1191-7.

Nematpour N, Farhadian KN, Ebrahimi OS, Arkan E, Seyedi F, Khaledian S, et al. Sustained release nanofibrous composite patch for transdermal antibiotic delivery. Colloids Surf, A. 2020;586:124267.

Nesic AR, Seslija SI. The influence of nanofillers on physical-chemical properties of polysaccharide-based film intended for food packaging. In: AM Grumezescu, editor, Food Packaging. Academic Press: 2017. p. 637-97.

Ngan CL, Basri M, Tripathy M, Karjiban RA, Abdul-Malek E. Physicochemical characterization and thermodynamic studies of nanoemulsion-based transdermal delivery system for fullerene. Sci World J. 2014;2014:219035.

Ning X, Wiraja C, Chin D, Lio S, Xu C. A double-layered microneedle platform fabricated through frozen spray-coating. Adv Healthc Mater. 2020;9(10):2000147.

Panonnummal R, Jayakumar R, Sabitha M. Comparative anti-psoriatic efficacy studies of clobetasol loaded chitin nanogel and marketed cream. EurJ Pharm Sci . 2017;96:193-206.

Parhi R. Chitin and Chitosan in Drug Delivery. In: Crini G, Lichtfouse E, editors. Chitin and Chitosan Applications in Food, Agriculture, Pharmacy, Medicine and Waste water treatment. Cham: Springer International Publishing; 2019. p. 175-240.

Parhi R, Goli VVN. Design and optimization of film-forming gel of etoricoxib using research surface methodology. Drug Deliv Translation Res. 2020;10(2):498-514.

Parhi R, Suresh P, Patnaik S. Formulation optimization of PVA/HPMC cryogel of Diltiazem HCl using 3-level factorial design and evaluation for ex vivo permeation. J Pharm Investig. 2015b;45(3):319-27.

Parhi R, Suresh P, Patnaik S. Physical means of stratum corneum barrier manipulation to enhance transdermal drug delivery. Cur Drug Deliv. 2015a;12(2):122-38.

Parhi R, Suresh P, Patnaik S. Transdermal delivery of diltiazem hydrochloride from Poloxamer-HPMC Gel: in vitro, ex vivo, and in vivo Studies. Drug Deliv Lett. 2015c;5(3):163-72.

Parhi R, Suresh P. Transdermal delivery of diltiazem HCl from matrix film: Effect of penetration enhancers and study of antihypertensive activity in rabbit model. J Adv Res. 2016;7(3):539-50.

Parhi R. Development and optimization of pluronic® F127 and HPMC based thermosensitive gel for the skin delivery of metoprolol succinate. J Drug Deliv Sci Technol . 2016;36:23-33.

Parhi R. Drug delivery applications of chitin and chitosan: a review. Environ Chem Lett. 2020a;18:577-94.

Parhi R. Recent Advances in the Development of Semisolid-dosage forms. In: Beg S, Rahman M, Imam SS, Alruwaili NK, Al Robaian M, Panda SK, editors. Pharmaceutical Drug Product Development and Process Optimization, Boca Raton: Apple Academic Press (CRC) ; 2020b. p. 125-90.

Park JK, Chung MJ, Choi HN, Park YI. Effects of the molecular weight and the degree of deacetylation of chitosan oligosaccharides on antitumor activity. Int J Mol Sci. 2011;12(1):266-77.

Paşcalău V, Bogdan C, Pall E, Matroş L, Pandrea S-L, Suciu M, et al. Development of BSA gel/Pectin/Chitosan polyelectrolyte complex microcapsules for Berberine delivery and evaluation of their inhibitory effect on Cutibacterium acnes React Funct Polym. 2020;147:104457.

Patil SB, Inamdar SZ, Das KK, Akamanchi KG, Patil AV, Inamadar AC, et al. Tailor-made electrically-responsive poly(acrylamide)-graft-pullulan copolymer based transdermal drug delivery systems: Synthesis, characterization, in-vitro and ex-vivo evaluation. J Drug Deliv Sci Technol . 2020;56(Part A):101525.

Patil SB, Inamdar SZ, Reddy KR, Raghu AV, Soni SK, Kulkarni RV. Novel biocompatible poly(acrylamide)-grafted- dextran hydrogels: Synthesis, characterization and biomedical applications. J Microbiol Methods. 2019;159:200-10.

Pegg AM. The application of natural hydrocolloids to foods and beverages. In: Baines D, Seal R, editors, Natural Food Additives, Ingredients and Flavourings. Cambridge; Woodhead Publishing: 2012. p. 175-96.

Prabaharan M. Chitosan derivatives as promising materials for controlled drug delivery. J Biomater Appl. 2008;23(1):5-36.

Prajapati SK, Jain A, Jain A, Jain S. Biodegradable polymers and constructs: A novel approach in drug delivery. Eur Polym J. 2019;120:109191.

Qian S, Chen Y, Gui S, Wang J, Zhou Y, Chen L. Enhanced penetration of sinomenine fomulations following skin pretreatment with a polymer microneedle patch. Lat Am J Pharm. 2014;33(3):464-9.

Rajesh N, Siddaramaiah. Feasibility of xanthan gum-sodium alginate as a transdermal drug delivery system for domperidone. J Mater Sci Mater Med. 2009;20(10):2085-9.

Rebouh S, Lefnaoui S, Bouhedda Yahoum MM. Artificial neural network-genetic algorithm based prediction of metformin diffusion from transdermal films based on biopolymers for diabetes disease treatment. Published. In: 2019 International Conference on Applied Automation and Industrial Diagnostics (ICAAID), Date of Conference: 25-27 Sept. 2019.

Reshmi CR, Suja PS, Manaf O, Sanu PP, Sujith A. Nanochitosan enriched poly-caprolactone electrospun wound dressing membranes: A fine tuning of physicochemical properties, hemocompatibility and curcumin release profile. Int J Biol Macromol . 2018;108:1261-72.

Ribeiro DML, Carvalho Júnior AR, Vale de Macedo GHR, Chagas VL, Silva LS, Cutrim BS, et al. Polysaccharide-based formulations for healing of skin-related wound infections: lessons from animal models and clinical trials. Biomolecules. 2020;10(1):63.

Roberfroid MB. Introducing inulin-type fructans. Br J Nutr. 2003;93( Suppl 1):13-26.

Sabitha M, Rejinold NS, Nair A, Lakshmanan VK, Nair SV, Jayakumar R. Development and evaluation of 5-fluorouracil loaded chitin nanogels for treatment of skin cancer. Carbohydr Polym . 2013;91(1):48-57.

Saboktakin MR, Akhyari S, Nasirov FA. Synthesis and characterization of modified starch/polybutadiene as novel transdermal drug delivery system. Int J Biol Macromol . 2014; 69:442.

Sadeghia M, Ganjia F, Taghizadehb SM, Daraei B. Iranian preparation and characterization of rivastigmine transdermal patch based on chitosan microparticles. Iran J Pharm Res. 2016;15(3):283-94.

Saidin NM, Anuar NK, Affandi MMRMM. Roles of polysaccharides in transdermal drug delivery system and future prospects. J Appl Pharm Sci. 2018;8(3):141-57.

Santos LF, Correia IJ, Silvaa AS, Mano JF. Biomaterials for drug delivery patches. Eur J Pharm Sci . 2018;118:49-66.

Sarphie DF, Johnson B, Cormier M, Burkotha TL, Bellhouse BJ. Bioavailability following transdermal powdered delivery (TPD) of radiolabeled inulin to hairless guinea pigs. J Control Release . 1997;47(1):61-9.

Selzer D, Abdel-Mottaleb MMA, Hahn T, Schaefer UF, Neumann D. Finite and infinite dosing: Difficulties in measurements, evaluations and predictions. Adv Drug Deliv Rev . 2013;65(2):278-94.

Shamsi M, Zahedi P, Ghourchian H, Minaeian S. Microfluidic-aided fabrication of nanoparticles blend based on chitosan for a transdermal multidrug delivery application. Int J Biol Macromol . 2017;99:433-42.

Shankrayya M, Basavaraj S, Sreenivasa GM. Evaluation of semi synthetic guar gum derivative for the development of transdermal patches of aceclofenac. Res J Pharm Biol Chem Sci. 2016;7(6):2485-91.

Shin LGH, Park HJ. Solid lipid nanoparticles loaded thermoresponsive pluronic-xanthan gum hydrogel as a transdermal delivery system. J Appl Polym Sci . 2018;135(11):46004.

Shinde UA, Modani SH, Singh KH. Design and development of repaglinide microemulsion gel for transdermal delivery. AAPS PharmSciTech . 2018;19(1):315-25.

Shu Z, Cao Y, Tao Y, Liang X, Wang F, Li Z, et al. Polyvinylpyrrolidone microneedles for localized delivery of sinomenine hydrochloride: preparation, release behavior of in vitro ∈ vivo, and penetration mechanism. Drug Deliv. 2020;27(1):642-51.

Singh N, Upasani CD. Skin permeation of zidovudine from crosslinked chitosan film containing terpene enhancers for transdermal use. Middle East J Sci Res. 2013;16(8):1027-1036.

Singh RS, Kaur N, Kennedy JF. Pullulan and pullulan derivatives as promising biomolecules for drug and gene targeting. Carbohydr Polym . 2015;123:190-207.

Singh S, Parhi R, Garg A. Formulation of topical bioadhesive gel of aceclofenac using 3-level factorial design. Iran J Pharm Res . 2011;10(3):435-45.

So HP, Hyuk SS, Soo NP. Novel pH-responsive hydrogel based on carboxymethyl cellulose/2-hydroxyethyl acrylate for transdermal delivery of naringenin. Carbohydr Polym . 2018;200:341-52.

Suksaeree J, Karnsopa P, Wannaphruek N, Prasomkij J, Panrat K, Monton C, et al. Use of isolated pectin from a cissampelos pareira-based polymer blend matrix for the transdermal delivery of nicotine. J Polym Environ. 2018;26(9):3531-9.

Szymańska E, Winnicka K. Stability of chitosan-a challenge for pharmaceutical and biomedical applications. Mar drugs. 2015;13(4):1819-46.

Tak HY, Yun YH, Lee CM, Yoon SD. Sulindac imprinted mungbean starch/PVA biomaterial films as a transdermal drug delivery patch. Carbohydr Polym . 2019;208:261-4.

Tezel A, Sens A, Mitragotri S. Description of transdermal transport of hydrophilic solutes during low-frequency sonophoresis based on a modified porous pathway model. J Pharm Sci . 2003;92(2):381-93.

Thoorens G, Krier F, Leclercq B, Carlin B, Evrard B. Microcrystalline cellulose, a direct compression binder in a quality by design environment-A review. Int J Pharm . 2014;473(1-2):64-2.

Tripodo G, Trapani A, Torre ML, Giammona G, Trapani G, Mandracchia D. Hyaluronic acid and its derivatives in drug delivery and imaging: Recent advances and challenges. Eur J Pharm Biopharm . 2015;97(Pt B):400-16.

Vasvani S, Kulkarni P, Rawtani D. Hyaluronic acid: A review on its biology, aspects of drug delivery, route of administrations and a special emphasis on its approved marketed products and recent clinical studies. Int J Biol Macromol . 2020;151:1012.

Vishwanath B, Shivakumar HR, Sheshappa RK, Ganesh S, Prasad P, Guru GS, et al. In-Vitro release study of metoprolol succinate from the bioadhesive films of pullulan-polyacrylamide blends. Int J Polym Mater Polym Biomater . 2012;61(4):300-7.

Vora LK, Courtenay AJ, Tekko IA, Larrañeta E, Donnelly RF. Pullulan-based dissolving microneedle arrays for enhanced transdermal delivery of small and large biomolecules. Int J Biol Macromol . 2020;146:290-8.

Wang PH, Lu W. Biomimetic PDMS-gum Arabic hybrid biopolymer adhesive for drug delivery, 22nd International Conference on Miniaturized Systems for Chemistry and Life Sciences, MicroTAS, 2018. p. 544-6.

Xie J, Ji Y, Xue W, Ma D, Hu Y. Hyaluronic acid-containing ethosomes as a potential carrier for transdermal drug delivery. Colloids Surf, B. 2018;172:323-9.

Yalcintas EP, Ackerman DS, Korkmaz E, Telmer CA, Jarvik JW, Campbell PG, et al. Analysis of in vitro cytotoxicity of carbohydrate-based materials used for dissolvable microneedle arrays. Pharm Res. 2020;37(3):33.

Yang H, Wu X, Zhou Z, Chen X, Kong M. Enhanced transdermal lymphatic delivery of doxorubicin via hyaluronic acid based transfersomes/microneedle complex for tumor metastasis therapy. Int J Biol Macromol . 2019;125:9-16.

Yee CM, Hasan ZAA, Ahma N, Hazimah AH. Development of carrageenan hydrogel as a sustained release matrix containing tocotrienol-rich palm-based vitamin E. J Oil Palm Res. 2016;28(3):373-86.

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.

Zhang YQ, Xiong WD, Mi ZY, Ma Z, Li XL. Adhesive and in vitro release properties of the konjac glucomannan and xanthan gum mixture gel film, 4th International Conference on Bioinformatics and Biomedical Engineering, ICBBE. 2010; 5516579.

Zhou W, Liu W, Zou L, Liu W, Liu C, Liang R, et al.Storage stability and skin permeation of vitamin C liposomes improved by pectin coating. Colloids Surf B Biointerfac. 2014;117:330-7.

Zimon RL, Lerman G, Elharrar E, Meningher T, Barzilai A, Masalha M, et al. Ultrasound targeting of Q-starch/miR-197 complexes for topical treatment of psoriasis. J Control Release . 2018;284:103-11.

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2023-01-26

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Applications of polysaccharides in topical and transdermal drug delivery: A recent update of literature. (2023). Brazilian Journal of Pharmaceutical Sciences, 58. https://doi.org/10.1590/s2175-97902022e20802