DOI QR코드

DOI QR Code

Screening of nanoemulgels for physicochemical stability and antifungal efficacy

  • Andleeb Fatima (Faculty of Pharmaceutical Sciences, Government College University Faisalabad) ;
  • Muhammad Naeem Aamir (Department of Pharmaceutics, Faculty of Pharmacy, The Islamia University of Bahawalpur) ;
  • Shahiq-Uz-Zaman (Riphah Institute of Pharmaceutical Sciences, Riphah International University) ;
  • Masood-Ur-Rehman (Riphah Institute of Pharmaceutical Sciences, Riphah International University) ;
  • Zeeshan Javaid (Department of Pharmacy, Mirpur University of Science and Technology) ;
  • Keng Wooi Ng (School of Pharmacy, Faculty of Medical Sciences, Newcastle University) ;
  • Hina Hussain (Institute of Biopharmacy and Pharmaceutical Technology, Martin-Luther University) ;
  • Muhammad Asif (Department of Pharmacology, Faculty of Pharmacy, The Islamia University of Bahawalpur)
  • 투고 : 2019.10.17
  • 심사 : 2024.04.25
  • 발행 : 2024.06.25

초록

The nanoemulgel was prepared to induce a synergistic effect along with higher efficacy. Nine sets of macroemulsion were made in which liquid paraffin was stabilized by the two non-ionic surfactants, Tween® 80 and Span® 80. Comparative stability analysis of the macroemulsions was used to determine the effective surfactant concentrations that gave the most stable systems (NE 2, NE3, NE4, NE5). High-speed homogenization was then applied. The final formulation was evaluated for globule size and polydispersablity index, physical properties (color, homogeneity, consistency, syneresis), pH, viscosity, spreadability with 200 g and 500 g weight, conductivity, drug content, stability, skin irritation, antifungal efficacy. Zeta size analysis confirmed the nanosize of the droplets in NE2 (284.8 nm), NE3 (79.89 nm), NE4 (194 nm) but not NE5 (632.8 nm), which was outside the nanoemulsion range. The antifungal assay exhibited zone of inhibition for NE3 (43±1.0 mm) and NE4 (42±1.7 mm), a marketed cream (33±1 mm), fluconazole alone (35±1 mm) and terbinafine alone (35.0±1.7 mm). The zone of inhibition of nanoemulgels increased compared with the drugs when used individually and when compared a placebo.

키워드

참고문헌

  1. Chaudhary, J., Akash, J. and Saini, V. (2011), "Simultaneous estimation of multicomponent formulations by UV-Visible spectroscopy: An overview", Int. Res. J. Pharm., 2, 81-83.
  2. Cuenca-Estrella, M. (2004), "Combinations of antifungal agents in therapy - What value are they?" J. Antimicrob. Chemotherapy, 54, 854-869. https://doi.org/10.1093/jac/dkh434
  3. Demartine, M.L. and Cussler, E.L. (1975), "Predicting subjective spreadability, viscosity, and stickiness", J. Pharm. Sci., 64, 976-982. https://doi.org/10.1002/jps.2600640618
  4. Fishman, J.A. (2002), "Summary: future directions in antifungal therapy", Transpl. Infect. Dis., 4, 67-68. https://doi.org/10.1034/j.1399-3062.4.s3.10.x
  5. Gadkari P.N., Patil, P.B., Saudagar, R.B. (2019), "Formulation, development and evaluation of topical nanoemulgel of tolnaftate", J. Drug Deliv. Therap., 9, 2. https://doi.org/10.22270/jddt.v9i2-s.2495
  6. Gupta, A., Eral, H.B., Hatton, T.A. and Doyle, P.S. (2016), "Nanoemulsions: formation, properties and applications", Soft Matter., 12, 2826-2841. https://doi.org/10.1039/C5SM02958A
  7. Helal, D.A., Abd El-Rhman, D., Abdel-Halim, S.A. and El-Nabarawi, M.A. (2012), "Formulation and evaluation of fluconazole topical gel", Int. J. Pharm. Pharm. Sci., 4, 176-183.
  8. Jafari, S.M., He, Y. and Bhandari, B. (2006), "Nano-emulsion production by sonication and microfluidization-A comparison", Int. J. Food Proper., 9, 475-485. https://doi.org/10.1080/10942910600596464
  9. Jasmina, H., Dzana, O., Alisa, E., Edina, V. and Ognjenka, R. (2017), "Preparation of nanoemulsions by high-energy and lowenergy emulsification methods", 317-322. https://doi.org/10.1007/978-981-10-4166-2_48
  10. Karri, V.R., Raman, S.K., Kuppusamy, G., Mulukutla, S., Ramaswamy, S. and Malayandi, R. (2015), "Terbinafine hydrochloride loaded nanoemulsion based gel for topical application", J. Pharm. Invest., 45, 79-89. https://doi.org/10.1007/s40005-014-0149-9R
  11. Kenechukwu, F.C., Attama, A.A., Ibezim, E.C., Nnamani, P.O., Umeyor, C.E., Uronnachi, E.M. Akpa, P.A. (2018), "Surface-modified mucoadhesive microgels as a controlled release system for miconazole nitrate to improve localized treatment of vulvovaginal candidiasis", Eur. J. Pharma. Sci., 111, 358-375. https://doi.org/10.1016/j.ejps.2017.10.002
  12. Kore, K.J., Shete, R.V, Desai, N.V, and Dnyanpeeths, R. (2011), "Formulation and evaluation of gel containing fluconazole antifungal agent", Drug Deliv., 3, 260-266.
  13. Kumar, D.L. (2013), "Formulation and evaluation of bilayer matrix tablets of carbamazepine", Ind. Am. J. Pharm. Res., 3, 1-7.
  14. Kumar, L. and Verma, R. (2010), "In vitro evaluation of topical gel prepared using natural polymer", Int. J. Drug Deliv., 2, 58-63.
  15. Mahreen, S., Somia, S., Uzma, L., Iqra, S., Bilal, A. Talib, H., (2023), "Formulation and evaluation of topical piroxicam microemulgel for arthritis", J. Contemp. Pharm., 7, 16-23. https://doi.org/10.56770/jcp.2023713
  16. Matsaridou, I., Barmpalexis, P., Salis, A. and Nikolakakis, I. (2012), "The influence of surfactant HLB and oil/surfactant ratio on the formation and properties of self-emulsifying pellets and microemulsion reconstitution", AAPS Pharm. Sci. Tech., 13, 1319-1330. https://doi.org/10.1208/s12249-012-9855-7
  17. McClements, D.J. (2012), "Nanoemulsions versus micro-emulsions: Terminology, differences, and similarities", Soft Matter, 8, 1719-1729. https://doi.org/10.1039/C2SM06903B
  18. Nastiti, C.R., Ponto, T., Abd, E., Grice, J.E., Benson, H.A.E. and Roberts, M.S. (2017), "Topical nano and microemulsions for skin delivery", Pharmaceutics, 9, 1-25. https://doi.org/10.3390/pharmaceutics9040037
  19. Sonia P, Gurleen Kaur, Rajeshwar KK Arya, (2018), "Formulation and characterization of topical nano emulgel of terbinafine", Univers. J. Pharm. Res., 3, 28-37. https://doi.org/10.22270/ujpr.v3i6.223
  20. Ubaid, M., Ilyas, S., Mir, S., Khan, A.K., Rashid, R., Khan, M.Z. U., Murtaza, G. (2016), "Formulation and in vitro evaluation of carbopol 934-based modified clotrimazole gel for topical application", Anais Da Academia Brasileira de Ciencias, 88, 2303-2317.
  21. Zheng, H., Deng, L., Que, F., Feng, F. and Zhang, H. (2016), "Physical characterization and antimicrobial evaluation of glycerol monolaurate organogels", Colloid Surface A, 502, 19-25. https://doi.org/10.1016/j.colsurfa.2016.05.00