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2000
Volume 3, Issue 1
  • ISSN: 2666-7797
  • E-ISSN: 2666-7800

Abstract

Background

Neem () can be considered as a boon to mankind as it possesses innumerable medicinal benefits despite being cost effective. Its use as an anti-acne agent is widely anticipated. A topical formulation of neem leaf powder as hydrogel was prepared recognizing the use of its phytoconstituents in many skin therapies. The primary goal of topical formulations is to provide drug contact with the skin while reducing overall absorption.

Aim

The aim of this study was to evaluate the anti-acne potential of Neem leaves powder hydrogel.

Methods

Neem leaf powder was tested for its organoleptic and physical characteristics. Neem leaf hydrogel was prepared in a 1% carbopol gel and evaluated by agar disk diffusion. A 3% (F1) and 2% (F2) hydrogel was prepared by adding 3 g and 2 g of Neem leaf powder respectively, making a volume of 100 ml, and was evaluated for various parameters. A comparative evaluation tests were conducted for F1, F2 and 1% carbopol gel (blank). After the test results, F1 was optimized for pH and viscosity by adding triethanolamine. Optimized F1 was tested against 1% salicylic acid gel, and Zitcare-S (Standard) for anti-acne activity. Agar plates were prepared and a well was dug using a borer. The wells were filled with the F1, standard and blank, inoculated by the Staphylococcus aureus using the spread culture technique. The plates were incubated for 24 hours at standard conditions.

Results

F1, F2, blank and standard were tested for their viscosity, spreadability, pH and some organoleptic parameters. The test results from F1 and F2 suggested F1 to be a more efficient hydrogel. Standard, blank and F1 were tested using agar well diffusion technique. After the incubation period, the plates were taken out and kept on a white sheet. Using a meter scale, the radius of the zone of inhibition was determined. It was found that F1 gave 1.7 cm, standard gave 1.3 cm and blank gave 0 cm radius size zone of inhibition.

Conclusion

Test results suggest that F1 has better spreadability and viscosity in comparison to F2. This study concludes that F1 is a more stable and efficient formulation as a hydrogel with efficient spreadability and optimum viscosity. F1 has better anti-bacterial activity than the standard and has better anti-acne potential.

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2023-12-20
2025-01-29
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References

  1. DasB.K. MukherjeeS.C. SahuB.B. MurjaniG. Neem (Azadirachta indica) extract as an antibacterial agent against fish pathogenic bacteria.Indian J. Exp. Biol.199937111097110010783742
    [Google Scholar]
  2. MosaddekA.S.M. RashidM.M.U. A comparative study of the anti-inflammatory effect of aqueous extract of neem leaf and dexame-thasone.Bangladesh J. Pharmacol.200831444710.3329/bjp.v3i1.836
    [Google Scholar]
  3. BiswasK. ChattopadhyayI. BanerjeeR.K. BandyopadhyayU. Biological activities and medicinal properties of Neem (Azadirachta indica).Curr. Sci.2002821113361345
    [Google Scholar]
  4. Harish KumarG. Vidya PriyadarsiniR. VinothiniG. Vidjaya LetchoumyP. NaginiS. The neem limonoids azadirachtin and nimbolide inhibit cell proliferation and induce apoptosis in an animal model of oral oncogenesis.Invest. New Drugs201028439240110.1007/s10637‑009‑9263‑319458912
    [Google Scholar]
  5. RahmaniA.H. AlyS.M. Nigella sativa and its active constituents thymoquinone shows pivotal role in the diseases prevention and treatment.Asian J. Pharm. Clin. Res.2015814853
    [Google Scholar]
  6. ChattopadhyayR.R. Possible biochemical mode of anti-inflammatory action of Azadirachta indica A. Juss. In rats.Indian J. Exp. Biol.19983644184209717455
    [Google Scholar]
  7. KaurG. Sarwar AlamM. AtharM. Nimbidin suppresses functions of macrophages and neutrophils: Relevance to its antiinflammatory mechanisms.Phytother. Res.200418541942410.1002/ptr.147415174005
    [Google Scholar]
  8. BaligarN.S. AladakattiR.H. AhmedM. HiremathM.B. Hepatoprotective activity of the neem-based constituent azadirachtin-A in carbon tetrachloride intoxicated Wistar rats.Can. J. Physiol. Pharmacol.201492426727710.1139/cjpp‑2013‑044924708208
    [Google Scholar]
  9. BaruaC.C. TalukdarA. BaruaA.G. ChakrabortyA. SarmaR.K. BoraR.S. Evaluation of the wound healing activity of methanolic extract of Azadirachta Indica (Neem) and Tinospora cordifolia (Guduchi) in rats.Pharmacologyonline201017077
    [Google Scholar]
  10. GhonmodeW.N. BalsarafO.D. TambeV.H. SaujanyaK.P. PatilA.K. KakdeD.D. Comparison of the antibacterial efficiency of neem leaf extracts, grape seed extracts and 3% sodium hypochlorite against E. feacalis - An in vitro study.J. Int. Oral Health201356616624453446
    [Google Scholar]
  11. Mahfuzul HoqueM.D. BariY. InatsuM.L. V. K., J S.uneja; Kawamoto, S.; Inatsu, M.L. Antibacterial activity of guava (Psidium guajava L.) and neem (Azadirachta indica A. Juss.) extracts against food borne pathogens and spoilage bacteria.Foodborne Pathog. Dis.20074448148810.1089/fpd.2007.004018041957
    [Google Scholar]
  12. BhargavaK.P. GuptaM.B. GuptaG.P. MitraC.R. Anti-inflammatory activity of saponins and ot-her natural products.Indian J. Med. Res.19705867247305485844
    [Google Scholar]
  13. PillaiN. SanthakumariG. Anti-arthritic and anti-inflammatory actions of nimbidin.Planta Med.1981439596310.1055/s‑2007‑9714747345443
    [Google Scholar]
  14. ParveenM. The bioactivity of neem (Azadirachta indica A. Juss.) based products against various animal systems.Indian J Appl Pure Biol2013282287289
    [Google Scholar]
  15. SharmaV.N. SaksenaK.P. Spermicidal action of sodium nimbinate.Indian J. Med. Res.195947332232410.4103/ijmr.IJMR_1899_1913664335
    [Google Scholar]
  16. RaoB.S. Nazma and Rao, MJ, Antifungal activity of gedunin.Curr. Sci.197746714716
    [Google Scholar]
  17. BhideN.K. MehtaD.J. LewisR.A. Diuretic action of sodium nimbidinate.Indian J. Med. Sci.195812314114513538534
    [Google Scholar]
  18. ThappaD.M. AdityanB. KumariR. Scoring systems in acne vulgaris.Indian J. Dermatol. Venereol. Leprol.200975332332610.4103/0378‑6323.5125819439902
    [Google Scholar]
  19. DavisE.C. CallenderV.D. A review of acne in ethnic skin: Pathogenesis, clinical manifestations, and management strategies.J. Clin. Aesthet. Dermatol.201034243820725545
    [Google Scholar]
  20. HassanzadehP. BahmaniM. MehrabaniD. Bacterial resistance to antibiotics in acne vulgaris: An in vitro study.Indian J. Dermatol.200853312212410.4103/0019‑5154.4321319882009
    [Google Scholar]
  21. AdetutuA.A. OritsewehiB. IkhiwiliO.M. MoradekeA.O. OdochiA.S. AdeolaO.E. Studies on staphylococcus aureus isolated from pimples.Pak. J. Biol. Sci.201720735035410.3923/pjbs.2017.350.35429023067
    [Google Scholar]
  22. DrenoB. MartinR. MoyalD. HenleyJ.B. KhammariA. SeitéS. Skin microbiome and acne vulgaris: Staphylococcus, a new actor in acne.Exp. Dermatol.201726979880310.1111/exd.1329628094874
    [Google Scholar]
  23. 2023. Accessed from: https://www.amazon.in/anti-acne-skin-care-solutions/b?ie=UTF8&node=4895369031 (March 11, 2023).
  24. ArifT. Salicylic acid as a peeling agent: A comprehensive review.Clin. Cosmet. Investig. Dermatol.2015845546110.2147/CCID.S8476526347269
    [Google Scholar]
  25. BankerG.S. RhodesC.T. Modern Pharmaceutics.4th edMarcel Deckker Inc.1979272276
    [Google Scholar]
  26. PandoD. CaddeoC. ManconiM. FaddaA.M. PazosC. Nanodesign of olein vesicles for the topical delivery of the antioxidant resveratrol.J. Pharm. Pharmacol.20136581158116710.1111/jphp.1209323837583
    [Google Scholar]
  27. LachmanL. LiebermanH.A. KanigJ.L. Theory and Practice of Industrial Pharmacy.4th Indian EditionVerghese Publishing House1991534563
    [Google Scholar]
  28. 2023. Accessed from: https://www.imdip.com/2020/04/semi-solid-dosage-form-definition-advantages.html (July 31, 2023).
  29. 2023. Accessed from: http://www.fda.gov/ohrms/dockets/ac/03/transcripts/3926T1.htm (March 11, 2023).
  30. MurdanS. Organogels in drug delivery.Expert Opin. Drug Deliv.20052348950510.1517/17425247.2.3.48916296770
    [Google Scholar]
  31. ChaterS.J. Cooper and Gunn, Dispensing Pharmacy for Pharmaceutical Students.12th edCBS Publication2001192231
    [Google Scholar]
  32. SuchithraA.B. JeganathS. JeevithaE. Pharmaceutical gels and recent trends- A review.Res J Pharm Technol2019121261816186
    [Google Scholar]
  33. Syeda AyeshaAhmed un Nabi Muhammad AliSheraz SofiaAhmed NafeesaMustaan IqbalAhmad Pharmaceutical gels- A review, RADS-.J. Pharm. Pharm. Sci.2016414044
    [Google Scholar]
  34. KarandeP. MitragotriS. Enhancement of transdermal drug delivery via synergistic action of chemicals.Biochim. Biophys. Acta Biomembr.20091788112362237310.1016/j.bbamem.2009.08.01519733150
    [Google Scholar]
  35. PremS. SurendraD. TeenaP. MarotiS.S. A review on topical gel.Int. j. creat. res. thoughts20208439513954
    [Google Scholar]
  36. Kulkarni VishakhaS. Butte KishorD. RathodS.S. Natural polymers–A comprehensive review. Int. j. pharm. biomed.Sci.2012315971613
    [Google Scholar]
  37. van Dijk-WolthuisW.N.E. HoogeboomJ.A.M. van SteenbergenM.J. TsangS.K.Y. HenninkW.E. Degradation and release behavior of dextran-based hydrogels.Macromolecules199730164639464510.1021/ma9704018
    [Google Scholar]
  38. KovalenkoS.M. Prospects of using synthetic and semi-synthetic gelling substances in development of medicinal and cosmetic gels.Asian J. Pharm.20171102
    [Google Scholar]
  39. GermershausO. LühmannT. RybakJ.C. RitzerJ. MeinelL. Application of natural and semi-synthetic polymers for the delivery of sensitive drugs.Int. Mater. Rev.201560210113110.1179/1743280414Y.0000000045
    [Google Scholar]
  40. UbaidM. IlyasS. MirS. KhanA.K. RashidR. KhanM.Z.U. KanwalZ.G. NawazA. ShahA. MurtazaG. Formulation and in vitro evaluation of carbopol 934-based modified clotrimazole gel for topical application.An. Acad. Bras. Cienc.20168842303231710.1590/0001‑376520162016016227925034
    [Google Scholar]
  41. UmakantaSharma SaurabhArjariya RajendraChouksey NeerajSharma A review: Formulation and evaluation of pharmaceutical gel.J. Pharm. Negat. Results.202213special issue 113461350
    [Google Scholar]
  42. KumarA. SrivastavaA. GalaevI.Y. MattiassonB. Smart polymers: Physical forms and bioengineering applications.Prog. Polym. Sci.200732101205123710.1016/j.progpolymsci.2007.05.003
    [Google Scholar]
  43. Rathod HemendrasinhJ. Mehta DhrutiP. A review on pharmaceutical gel.Int. J. Pharma Sci.201511114
    [Google Scholar]
  44. Basha, Shaik Arif Recent trends in usage of polymers in the formulation of dermatological gels.Indian j. biotechnol. pharm. res.201312161168
    [Google Scholar]
  45. 2023. Accessed from: https://pharmacyinfoline.com/carbopol-gel/ (March 25, 2023).
  46. Fatima, Grace Formulation and evaluation of polyherbal anti-acne gel.Adv J Pharm Life sci Res20153158
    [Google Scholar]
  47. Quality control methods for medicinal plant materialsWorld health OrganizationGeneve, A. I. T. B. S. Publishers and DistributorsNew Delhi2002
    [Google Scholar]
  48. Final text for revision of the international pharmacopoeia201212
    [Google Scholar]
  49. MukherjeePK Quality control of herbal drugsHorizons pharmaceutical publishers2012186193
    [Google Scholar]
  50. KaurL.P. GargR. GuptaG.D. Development and evaluation of topical gel of minoxidil from different polymer bases in application of alopecia.Int. J. Pharm. Pharm. Sci.201024347
    [Google Scholar]
  51. ShivhareU.D. JainK.B. MathurV.B. Formulation development and evaluation of diclofenac sodium gel using water soluble poly-acrylamide polymer.Dig. J. Nanomater. Biostruct.20094285290
    [Google Scholar]
  52. ShahK. DesaiT. Formulation and evaluation of wheatgrass topical gel.Indian J. Pharm. Sci.2012330103017
    [Google Scholar]
  53. RamchandaniU. SangameswaranB. Formulation and evaluation of topical gel of ketoprofen using different polymers.Int. J. Pharm. Biol. Arch.201342323326
    [Google Scholar]
  54. 2023. Accessed from: https://www.element.com/nucleus/2022/topical-drug-delivery-systems-overview (March 25, 2023).
  55. Shelke UshaY. Mahajan AshishA. Review on: An ointment.Int. J. Pharm. Pharm. Res.20154170192
    [Google Scholar]
  56. BalouiriM. SadikiM. IbnsoudaS.K. Methods for in vitro evaluating antimicrobial activity: A review.J. Pharm. Anal.201662717910.1016/j.jpha.2015.11.00529403965
    [Google Scholar]
  57. OladimejiF.A. AkinkunmiE.O. RaheemA.I. AbiodunG.O. BankoleV.O. Evaluation of topical antimicrobial ointment formulations of essential oil of lippia multiflora moldenke.Afr. J. Tradit. Complement. Altern. Med.201512513514410.21010/ajtcam.v12i5.18
    [Google Scholar]
  58. MagaldiS. Mata-EssayagS. Hartung de CaprilesC. PerezC. ColellaM.T. OlaizolaC. OntiverosY. Well diffusion for antifungal susceptibility testing.Int. J. Infect. Dis.200481394510.1016/j.ijid.2003.03.00214690779
    [Google Scholar]
  59. RajveerB. MonicaO. PatilP.H. NawandarK.S. A review on: Ointment and ointment bases.World J. Pharm. Res.201659335345
    [Google Scholar]
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  • Article Type:
    Research Article
Keyword(s): agar disk diffusion; Anti-acne; Azadirachta indica; Hydrogel; Neem; Staphylococcus aureus
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