Aloe vera and ofloxacin incorporated chitosan hydrogels show antibacterial activity, stimulate angiogenesis and accelerate wound healing in full thickness rat model.


Journal

Journal of biomedical materials research. Part B, Applied biomaterials
ISSN: 1552-4981
Titre abrégé: J Biomed Mater Res B Appl Biomater
Pays: United States
ID NLM: 101234238

Informations de publication

Date de publication:
02 2023
Historique:
revised: 18 07 2022
received: 03 04 2022
accepted: 17 08 2022
pubmed: 3 9 2022
medline: 15 12 2022
entrez: 2 9 2022
Statut: ppublish

Résumé

Burns are potentially fatal and physically debilitating injuries, causing psychological and physical scars and result in chronic disabilities. A well vascularized wound bed is required to achieve complete and scar free wound closure. For many centuries, a variety of herbal plants have been used for wound healing, among these aloe vera (AV) has been found to be very effective in wound healing. Secondly, the main reason for delayed wound healing is bacterial infections. Ofloxacin (OX) has been reported as an active antibacterial drug for topical infections and it is effective against both positive and negative bacterial strains. In current research three different concentrations of OX (0.5, 2.5, and 5 mg) were loaded into chitosan (CS)/AV based hydrogels prepared by freeze gelation. The surface morphology of prepared CS/AV based OX loaded hydrogels were evaluated by scanning electron microscopy (SEM). In drug release analysis, 0.5 mg OX loaded hydrogel showed a sustained drug release behavior over 3 days period. An effective dose dependent antibacterial activity was exhibited by OX loaded hydrogels. Alamar Blue cells viability assay revealed that 0.5 mg OX hydrogel (CA 0.5 OX) showed comparatively better 3 T3 fibroblast cells proliferation as compared to CA 2.5 OX (2.5 mg OX) and CA 5 OX hydrogel (5 mg OX). Moreover, all OX loaded hydrogels showed good angiogenic activity in CAM bioassay while higher angiogenic potential was observed from CA 0.5 OX containing comparatively lower concentration of OX. These OX incorporated CS/AV based hydrogels are promising wound dressings for future clinical use.

Identifiants

pubmed: 36053925
doi: 10.1002/jbm.b.35153
doi:

Substances chimiques

Hydrogels 0
Chitosan 9012-76-4
Ofloxacin A4P49JAZ9H
Anti-Bacterial Agents 0

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

331-342

Informations de copyright

© 2022 Wiley Periodicals LLC.

Références

Abdel-Sayed P, Kaeppeli A, Siriwardena T, et al. Anti-microbial dendrimers against multidrug-resistant P. aeruginosa enhance the angiogenic effect of biological burn-wound bandages. Sci Rep. 2016;6(1):1-11.
Atiyeh BS, Gunn SWA, Dibo SA. Metabolic implications of severe burn injuries and their management: a systematic review of the literature. World J Surg. 2008;32(8):1857-1869.
Wu Z, Duan F, Zhang J, Li S, Ma H, Nie L. In vivo dual-scale photoacoustic surveillance and assessment of burn healing. Biomed Opt Express. 2019;10(7):3425-3433.
Church D, Elsayed S, Reid O, Winston B, Lindsay R. Burn wound infections. Clin Microbiol Rev. 2006;19(2):403-434.
Rethikala PK, Nair RP, Krishnan LK, Krishnan KV. In-vitro release study and antimicrobial property evaluation of ofloxacin loaded poly (2-hydroxyethyl methacrylate)/poly (caprolactone)/poly (ethylene glycol) hydrogel system for burn wound management. J Drug Deliv Therap. 2017;7(1):13-20.
Graham C. The role of silver in wound healing. Br J Nurs. 2005;14(Sup5):S22-S28.
Augustine R, Rehman SRU, Ahmed R, et al. Electrospun chitosan membranes containing bioactive and therapeutic agents for enhanced wound healing. Int J Biol Macromol. 2020;156:153-170.
Augustine R, Hasan A, Dalvi YB, et al. Growth factor loaded in situ photocrosslinkable poly (3-hydroxybutyrate-co-3-hydroxyvalerate)/gelatin methacryloyl hybrid patch for diabetic wound healing. Mater Sci Eng C. 2021;118:111519.
de Breij A, Rihool M, Cordfunke RA, et al. The antimicrobial peptide SAAP-148 combats drug-resistant bacteria and biofilms. Sci Transl Med. 2018;10(423):eaan4044.
El-Kased RF, Amer RI, Attia D, Elmazar MM. Honey-based hydrogel: in vitro and comparative in vivo evaluation for burn wound healing. Sci Rep. 2017;7(1):1-11.
Liche E, Zulu R, Kasongo ZM, Munthali JC. Effects of silver sulfadiazine and Actilite® honey on bacteria wound colonisation and wound healing in children with partial superficial burn wounds at University Teaching Hospital, Lusaka, Zambia. Med J Zambia. 2018;45(4):210-215.
Herman A, Herman AP. Herbal products for treatment of burn wounds. J Burn Care Res. 2020;41:457-465.
Dikici S, Yar M, Bullock AJ, Shepherd J, Roman S, MacNeil S. Developing wound dressings using 2-deoxy-D-ribose to induce angiogenesis as a backdoor route for stimulating the production of vascular endothelial growth factor. Int J Mol Sci. 2021;22(21):11437.
Aleem AR, Shahzadi L, Nasir M, et al. Developing sulfur-doped titanium oxide nanoparticles loaded chitosan/cellulose-based proangiogenic dressings for chronic ulcer and burn wounds healing. J Biomed Mater Res Pt B Appl Biomater. 2021;110:1069-1081.
Li J, Zhang YP, Kirsner RS. Angiogenesis in wound repair: angiogenic growth factors and the extracellular matrix. Microsc Res Tech. 2003;60(1):107-114.
Tredget EE. The basis of fibrosis and wound healing disorders following thermal injury. J Trauma Acute Care Surg. 2007;62(6):S69.
Hoareau L, DaSilva EJ. Medicinal plants: a re-emerging health aid. Electron J Biotechnol. 1999;2(2):3-4.
Surjushe A, Vasani R, Saple D. Aloe vera: a short review. Indian J Dermatol. 2008;53(4):163-166.
Marshall JM. Aloe vera gel: what is the evidence. Pharm J. 1990;24:360-362.
Reynolds T, Dweck A. Constituents in aloe. J Ethnopharmacol. 1999;68:32-37.
Hussain Z, Thu HE, Shuid AN, Katas H, Hussain F. Recent advances in polymer-based wound dressings for the treatment of diabetic foot ulcer: an overview of state-of-the-art. Curr Drug Targets. 2018;19(5):527-550.
Sarkhil MZ, Prakash KG, Haseeb A, Ahmed K, Udupa P, Muguregowda HT. Evaluation of altered ground matrix and matrix metalloproeinase (MMP'S) in wound healing with Aloe vera extract. Asian J Pharm Pharmacol. 2020;6(1):32-36.
Tudose A, Celia C, Cardamone F, Vono M, Molinaro R, Paolino D. Regenerative properties of aloe vera juice on human keratinocyte cell culture. Farmacia. 2009;57:590-597.
Gao Y, Kuok KL, Jin Y, Wang R. Biomedical applications of Aloe vera. Crit Rev Food Sci Nutr. 2019;59(sup1):S244-S256.
Elaiyaraja G, Dhama K, Asokumar M, et al. Effect of Aloe vera gel extract on the haematological parameters in white leghorn chicks vaccinated against infectious bursal disease virus. J Pure Appl Microbiol. 2016;10(4):2875-2882.
Bunyapraphatsara N, Jirakulchaiwong S, Thirawarapan S, Manonukul J. The efficacy of Aloe vera cream in the treatment of first, second and third degree burns in mice. Phytomedicine. 1996;2(3):247-251.
Choi SW, Son BW, Son YS, Park YI, Lee SK, Chung MH. The wound-healing effect of a glycoprotein fraction isolated from aloe vera. Br J Dermatol. 2001;145(4):535-545.
Gallagher J, Gray M. Is aloe vera effective for healing chronic wounds? J Wound Ostomy Cont Nurs. 2003;30(2):68-71.
Rodriguez-Bigas M, Cruz NI, Suarez A. Comparative evaluation of aloe vera in the management of burn wounds in Guinea pigs. Plast Reconstr Surg. 1988;81(3):386-389.
LogithKumar R, KeshavNarayan A, Dhivya S, Chawla A, Saravanan S, and Selvamurugan N. A review of chitosan and its derivatives in bone tissue engineering. Carbohydrate polymers. 2016;151:172-188.
Tangsadthakun C, Kanokpanont S, Sanchavanakit N, et al. The influence of molecular weight of chitosan on the physical and biological properties of collagen/chitosan scaffolds. J Biomater Sci Polym Ed. 2007;18(2):147-163.
Zhu R, Chen YX, Ke QF, Zhang CQ, Guo YP. Controlled release of core-shell ZSM-5/chitosan ellipsoids loaded with pifithrin-α for enhanced osteoinductivity. Mater Des. 2017;122:118-127.
Torres-Giner S, Ocio MJ, Lagaron JM. Novel antimicrobial ultrathin structures of zein/chitosan blends obtained by electrospinning. Carbohydr Polym. 2009;77(2):261-266.
Altiok D, Altiok E, Tihminlioglu F. Physical, antibacterial and antioxidant properties of chitosan films incorporated with thyme oil for potential wound healing applications. J Mater Sci Mater Med. 2010;21(7):2227-2236.
Silva SS, Luna SM, Gomes ME, et al. Plasma surface modification of chitosan membranes: characterization and preliminary cell response studies. Macromol Biosci. 2008;8(6):568-576.
Aleem AR, Shahzadi L, Alvi F, et al. Thyroxin releasing chitosan/collagen based smart hydrogels to stimulate neovascularization. Mater Des. 2017;133:416-425.
Ahtzaz S, Nasir M, Shahzadi L, et al. A study on the effect of zinc oxide and zinc peroxide nanoparticles to enhance angiogenesis-pro-angiogenic grafts for tissue regeneration applications. Mater Des. 2017;132:409-418.
Yar M, Shahzad S, Shahzadi L, et al. Heparin binding chitosan derivatives for production of pro-angiogenic hydrogels for promoting tissue healing. Mater Sci Eng C. 2017;74:347-356.
Monk JP, Campoli-Richards DM. Ofloxacin. Drugs. 1987;33(4):346-391.
Silva SS, Caridade SG, Mano JF, Reis RL. Effect of crosslinking in chitosan/aloe vera-based membranes for biomedical applications. Carbohydr Polym. 2013;98(1):581-588.
Zahid AA, Ahmed R, Raza ur Rehman S, Augustine R, Tariq M, Hasan A. Nitric oxide releasing chitosan-poly (vinyl alcohol) hydrogel promotes angiogenesis in chick embryo model. Int J Biol Macromol. 2019;136:901-910.
Yar M, Shahzadi L, Mehmood A, et al. Deoxy-sugar releasing biodegradable hydrogels promote angiogenesis and stimulate wound healing. Mater Today Commun. 2017;13:295-305.
Ahtzaz S, Sher Waris T, Shahzadi L, Anwar Chaudhry A, Ur Rehman I, Yar M. Boron for tissue regeneration-it's loading into chitosan/collagen hydrogels and testing on chorioallantoic membrane to study the effect on angiogenesis. Int J Polym Mater Polym Biomater. 2020;69(8):525-534.
Shahzadi L, Chaudhry AA, Aleem AR, et al. Development of K-doped ZnO nanoparticles encapsulated crosslinked chitosan based new membranes to stimulate angiogenesis in tissue engineered skin grafts. Int J Biol Macromol. 2018;120:721-728.
Qasim SB, Delaine-Smith RM, Fey T, Rawlinson A, Rehman IU. Freeze gelated porous membranes for periodontal tissue regeneration. Acta Biomater. 2015;23:317-328.
Shahzad S, Yar M, Siddiqi SA, et al. Chitosan-based electrospun nanofibrous mats, hydrogels and cast films: novel anti-bacterial wound dressing matrices. J Mater Sci Mater Med. 2015;26(3):136.
Hua S, Yang H, Wang W, Wang A. Controlled release of ofloxacin from chitosan-montmorillonite hydrogel. Appl Clay Sci. 2010;50(1):112-117.
Shahzad S, Shahzadi L, Mahmood N, et al. A new synthetic methodology for the preparation of biocompatible and organo-soluble barbituric-and thiobarbituric acid based chitosan derivatives for biomedical applications. Mater Sci Eng C. 2016;66:156-163.
Aleem AR, Shahzadi L, Tehseen S, et al. Amino acids loaded chitosan/collagen based new membranes stimulate angiogenesis in chorioallantoic membrane assay. Int J Biol Macromol. 2019;140:401-406.
Sahoo S, Chakraborti CK, Mishra SC, Nanda UN, Naik S. FTIR and XRD investigations of some fluoroquinolones. Int J Pharm Pharm Sci. 2011;3:165-170.
Augustine R, Dan P, Schlachet I, Rouxel D, Menu P, Sosnik A. Chitosan ascorbate hydrogel improves water uptake capacity and cell adhesion of electrospun poly (epsilon-caprolactone) membranes. Int J Pharm. 2019;559:420-426.
Nelson J, Silverman V, Lima PH, Beckman G. Corneal epithelial wound healing: a tissue culture assay on the effect of antibiotics. Curr Eye Res. 1990;9(3):277-285.
Akmal JS, Salmi M, Mäkitie A, Björkstrand R, Partanen J. Implementation of industrial additive manufacturing: intelligent implants and drug delivery systems. J Funct Biomater. 2018;9(3):41.
Stewart SA, Domínguez-Robles J, Mcllorum VJ, et al. Development of a biodegradable subcutaneous implant for prolonged drug delivery using 3D printing. Pharmaceutics. 2020;12(2):105.
D'Mello SR, Das SK, Das NG. Polymeric nanoparticles for small-molecule drugs: biodegradation of polymers and fabrication of nanoparticles. Drug Delivery Nanoparticles Formulation and Characterization. CRC Press; 2016:36-54.
Sawada Y, Suzuki T, Hatayama I, Sone K. Silicone gel including antimicrobial agent. Br J Plast Surg. 1990;43(1):78-82.
Sawada Y, Yotsuyanagi T, Sone K. A silicone gel sheet dressing containing an antimicrobial agent for split thickness donor site wounds. Br J Plast Surg. 1990;43(1):88-93.
Sawada Y, Yotsuyanagi T, Ara M, Sone K. Experiences using silicone gel tie-over dressings following skin grafting. Burns. 1990;16(5):353-357.
Hu Y, Xu J, Hu Q. Evaluation of antioxidant potential of Aloe vera (Aloe barbadensis Miller) extracts. J Agric Food Chem. 2003;51(26):7788-7791.
Bora M, Dhar D. Bacteriological profile (aerobic) of burn wound infection with its antibiotic sensitivity testing in Silchar Medical College and Hospital. Int J Curr Microbiol App Sci. 2018;7(7):2130-2139.
Larena A, Caceres D. Variability between chitosan membrane surface characteristics as function of its composition and environmental conditions. Appl Surf Sci. 2004;238(1-4):273-277.
Sanad RA-B, Abdel-Bar HM. Chitosan-hyaluronic acid composite sponge scaffold enriched with Andrographolide-loaded lipid nanoparticles for enhanced wound healing. Carbohydr Polym. 2017;173:441-450.
Scuderi AC, Paladino GM, Marino C, Trombetta F. In vitro toxicity of netilmicin and ofloxacin on corneal epithelial cells. Cornea. 2003;22(5):468-472.
Hincal F, Gürbay A, Favier A. Biphasic response of ciprofloxacin in human fibroblast cell cultures. Nonlinearity Biol Toxicol Med. 2003;1(4):15401420390271083.
Bowler P, Duerden B, Armstrong DG. Wound microbiology and associated approaches to wound management. Clin Microbiol Rev. 2001;14(2):244-269.
Pandey R, Mishra A. Antibacterial activities of crude extract of Aloe barbadensis to clinically isolated bacterial pathogens. Appl Biochem Biotechnol. 2010;160(5):1356-1361.
Ndhlala A, Amoo SO, Stafford GI, Finnie JF, Van Staden J. Antimicrobial, anti-inflammatory and mutagenic investigation of the South African tree aloe (Aloe barberae). J Ethnopharmacol. 2009;124(3):404-408.
Moon E-J, Lee YM, Lee OH, et al. A ncovel angiogenic factor derived from Aloe vera gel: β-sitosterol, a plant sterol. Angiogenesis. 1999;3(2):117-123.
Rahman S, Carter P, Bhattarai N. Aloe vera for tissue engineering applications. J Funct Biomater. 2017;8(1):6.

Auteurs

Ahmad Khan (A)

Interdisciplinary Research Center in Biomedical Materials, COMSATS University Islamabad, Lahore Campus, Lahore, Pakistan.

Anisa Andleeb (A)

Interdisciplinary Research Center in Biomedical Materials, COMSATS University Islamabad, Lahore Campus, Lahore, Pakistan.

Maryam Azam (M)

Interdisciplinary Research Center in Biomedical Materials, COMSATS University Islamabad, Lahore Campus, Lahore, Pakistan.

Saimoon Tehseen (S)

Interdisciplinary Research Center in Biomedical Materials, COMSATS University Islamabad, Lahore Campus, Lahore, Pakistan.

Azra Mehmood (A)

National Center of Excellence in Molecular Biology (CEMB), University of the Punjab, Lahore, Pakistan.

Muhammad Yar (M)

Interdisciplinary Research Center in Biomedical Materials, COMSATS University Islamabad, Lahore Campus, Lahore, Pakistan.

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