Research Article
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Year 2024, Volume: 14 Issue: 4, 1655 - 1671, 01.12.2024
https://doi.org/10.21597/jist.1512940

Abstract

References

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Green Synthesis of Smart Hydrogels via Radiation Crosslinking of Sodium Alginate and Citric Acid for pH-Sensitive Doxycycline Hyclate Release

Year 2024, Volume: 14 Issue: 4, 1655 - 1671, 01.12.2024
https://doi.org/10.21597/jist.1512940

Abstract

Doxycycline hyclate (DH) is a second-generation tetracycline antibiotic with lower toxicity than its predecessors, used for bacterial infections and topically for mucosal and diabetic ulcers. Healthy skin's pH is mildly acidic (4.0-6.0), regulating bacterial flora and preventing infections. Wounds disrupt this pH, revealing the tissue's neutral pH of 7.4, necessitating pH-sensitive controlled drug release for effective chronic wound treatment. This study explores polysaccharide-based hydrogels synthesized by crosslinking sodium alginate/citric acid (NaAlg/CA) solutions using gamma radiation with varying citric acid concentrations for pH-sensitive DH release. The citric acid-modified polysaccharide hydrogels were created using a green method, free of additional chemicals. Citric acid significantly influenced swelling, critical for drug loading and release, with the highest swelling capacity (3500% mass) observed at a 5:1 NaAlg/CA ratio. Hydrogels were tested for pH-dependent swelling and DH drug release profiles at pH 5.5, 7.4, and 9.0. The results indicate that at pH 7.4, which replicates the pH of chronic wounds, the release of DH showed a prolonged profile up to 40 hours, distinct from the results at pH 5.5 and 9.0. These results highlight the capabilities of NaAlg/CA hydrogels created through gamma radiation, combining the biocompatibility and low toxicity of sodium alginate/citric acid, for efficient and sustainable drug delivery, especially valuable in acute wound care where pH-specific therapeutic effectiveness is essential.

Thanks

The author acknowledges Vilsan Veterinary Pharmaceuticals Industry and Trade Inc. for kindly providing the doxycycline hyclate drug.

References

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  • Chen, X., Li, P., Kang, Y., Zeng, X., Xie, Y., Zhang, Y., Wang, Y., & Xie, T. (2019). Preparation of temperature-sensitive Xanthan/NIPA hydrogel using citric acid as crosslinking agent for bisphenol A adsorption. Carbohydrate Polymers, 206, 94–101.
  • Craciun, G., Calina, I. C., Demeter, M., Scarisoreanu, A., Dumitru, M., & Manaila, E. (2023). Poly(Acrylic Acid)-Sodium Alginate Superabsorbent Hydrogels Synthesized by Electron Beam Irradiation Part I: Impact of Initiator Concentration and Irradiation Dose on Structure, Network Parameters and Swelling Properties. Materials, 16(13), 4552.
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  • Demeter, M., Scărișoreanu, A., & Călina, I. (2023). State of the Art of Hydrogel Wound Dressings Developed by Ionizing Radiation. Gels, 9(1), 55.
  • Drury, J. L., & Mooney, D. J. (2003). Hydrogels for tissue engineering: scaffold design variables and applications. Biomaterials, 24(24), 4337–4351.
  • El-Arnaouty, M. B., Eid, M., & Ghaffar, A. M. A. (2015). Radiation Synthesis of Stimuli Responsive Micro-porous Hydrogels for Controlled Drug Release of Aspirin. Polymer-plastics Technology and Engineering, 54(12), 1215–1222.
  • El-Naggar, A. W., Senna, M., Mostafa, T., & Helal, R. (2016). Characterization and drug delivery properties of gamma irradiated poly (vinyl alcohol)/methylcellulose (PVA/MC) blends. The International Conference on Chemical and Environmental Engineering, 8(13), 2–22.
  • Farkas, N. I., Marincaș, L., Barabás, R., Bizo, L., Ilea, A., Turdean, G. L., Toșa, M., Cadar, O., & Barbu-Tudoran, L. (2022). Preparation and Characterization of Doxycycline-Loaded Electrospun PLA/HAP Nanofibers as a Drug Delivery System. Materials, 15(6), 2105.
  • Franklin, D., & Guhanathan, S. (2015). Investigation of citric acid–glycerol based pH-sensitive biopolymeric hydrogels for dye removal applications: A green approach. Ecotoxicology and Environmental Safety, 121, 80–86.
  • Gabriele, S., Buchanan, B., Kundu, A., Dwyer, H. C., Gabriele, J. P., Mayer, P., & Baranowski, D. C. (2019). Stability, Activity, and Application of Topical Doxycycline Formulations in a Diabetic Wound Case Study. PubMed, 31(2), 49–54.
  • Ghobashy, M. M., Elbarbary, A. M., & Hegazy, D. E. (2021). Gamma radiation synthesis of a novel amphiphilic terpolymer hydrogel pH-responsive based chitosan for colon cancer drug delivery. Carbohydrate Polymers, 263, 117975.
  • Giovagnoli, S., Tsai, T., & DeLuca, P. P. (2010). Formulation and Release Behavior of Doxycycline–Alginate Hydrogel Microparticles Embedded into Pluronic F127 Thermogels as a Potential New Vehicle for Doxycycline Intradermal Sustained Delivery. AAPS PharmSciTech, 11(1), 212–220.
  • Gugleva, V., Titeva, S., Rangelov, S., & Momekova, D. (2019). Design and in vitro evaluation of doxycycline hyclate niosomes as a potential ocular delivery system. International journal of pharmaceutics, 567, 118431.
  • Haque, S. N., Bhuyan, M. M., & Jeong, J. H. (2024). Radiation-Induced Hydrogel for Water Treatment. Gels, 10(6), 375.
  • Hedayatyanfard, K., Khoulenjani, S. B., Abdollahifar, M. A., Amani, D., Habibi, B., Zare, F., Asadirad, A., Pouriran, R., & Ziai, S. A. (2020). Chitosan/PVA/Doxycycline Film and Nanofiber Accelerate Diabetic Wound Healing in a Rat Model. Iran. J. Pharmaceut. Res., 19(4), 225–239.
  • Hennink, W., & Van Nostrum, C. (2002). Novel crosslinking methods to design hydrogels. Advanced Drug Delivery Reviews, 54(1), 13–36.
  • Hoffman, A. S. (2002). Hydrogels for biomedical applications. Advanced Drug Delivery Reviews, 54(1), 3–12.
  • Huq, T., Khan, A., Dussault, D., Salmieri, S., Khan, R. A., & Lacroix, M. (2012). Effect of gamma radiation on the physico-chemical properties of alginate-based films and beads. Radiation Physics and Chemistry, 81(8), 945–948.
  • Javali, M. A., & Vandana, K. (2012). A comparative evaluation of atrigel delivery system (10% doxycycline hyclate) Atridox with scaling and root planing and combination therapy in treatment of periodontitis: A clinical study. Journal of Indian Society of Periodontology, 16(1), 43.
  • Karadag, E., Saraydin, D., Sahiner, N., & Güven, O. (2001). Radiation induced acrylamide/citric acid hydrogels and their swelling behaviors. Journal of Macromolecular Science. Pure and Applied Chemistry/Journal of Macromolecular Science. Part a. Pure & Applied Chemistry, 38(11), 1105–1121.
  • Kazmi, S. A. R., Qureshi, M. Z., Ali, S., & Masson, J. F. (2019). In vitro drug release and biocatalysis from pH-responsive gold nanoparticles synthesized using doxycycline. Langmuir, 35(49), 16266-16274.
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There are 68 citations in total.

Details

Primary Language English
Subjects Natural Products and Bioactive Compounds, Organic Green Chemistry, Polymer Science and Technologies
Journal Section Kimya / Chemistry
Authors

Semiha Duygu Sütekin 0000-0002-4605-1116

Publication Date December 1, 2024
Submission Date July 9, 2024
Acceptance Date August 3, 2024
Published in Issue Year 2024 Volume: 14 Issue: 4

Cite

APA Sütekin, S. D. (2024). Green Synthesis of Smart Hydrogels via Radiation Crosslinking of Sodium Alginate and Citric Acid for pH-Sensitive Doxycycline Hyclate Release. Journal of the Institute of Science and Technology, 14(4), 1655-1671. https://doi.org/10.21597/jist.1512940
AMA Sütekin SD. Green Synthesis of Smart Hydrogels via Radiation Crosslinking of Sodium Alginate and Citric Acid for pH-Sensitive Doxycycline Hyclate Release. J. Inst. Sci. and Tech. December 2024;14(4):1655-1671. doi:10.21597/jist.1512940
Chicago Sütekin, Semiha Duygu. “Green Synthesis of Smart Hydrogels via Radiation Crosslinking of Sodium Alginate and Citric Acid for PH-Sensitive Doxycycline Hyclate Release”. Journal of the Institute of Science and Technology 14, no. 4 (December 2024): 1655-71. https://doi.org/10.21597/jist.1512940.
EndNote Sütekin SD (December 1, 2024) Green Synthesis of Smart Hydrogels via Radiation Crosslinking of Sodium Alginate and Citric Acid for pH-Sensitive Doxycycline Hyclate Release. Journal of the Institute of Science and Technology 14 4 1655–1671.
IEEE S. D. Sütekin, “Green Synthesis of Smart Hydrogels via Radiation Crosslinking of Sodium Alginate and Citric Acid for pH-Sensitive Doxycycline Hyclate Release”, J. Inst. Sci. and Tech., vol. 14, no. 4, pp. 1655–1671, 2024, doi: 10.21597/jist.1512940.
ISNAD Sütekin, Semiha Duygu. “Green Synthesis of Smart Hydrogels via Radiation Crosslinking of Sodium Alginate and Citric Acid for PH-Sensitive Doxycycline Hyclate Release”. Journal of the Institute of Science and Technology 14/4 (December 2024), 1655-1671. https://doi.org/10.21597/jist.1512940.
JAMA Sütekin SD. Green Synthesis of Smart Hydrogels via Radiation Crosslinking of Sodium Alginate and Citric Acid for pH-Sensitive Doxycycline Hyclate Release. J. Inst. Sci. and Tech. 2024;14:1655–1671.
MLA Sütekin, Semiha Duygu. “Green Synthesis of Smart Hydrogels via Radiation Crosslinking of Sodium Alginate and Citric Acid for PH-Sensitive Doxycycline Hyclate Release”. Journal of the Institute of Science and Technology, vol. 14, no. 4, 2024, pp. 1655-71, doi:10.21597/jist.1512940.
Vancouver Sütekin SD. Green Synthesis of Smart Hydrogels via Radiation Crosslinking of Sodium Alginate and Citric Acid for pH-Sensitive Doxycycline Hyclate Release. J. Inst. Sci. and Tech. 2024;14(4):1655-71.