Characterization of the Ethanolic Extract of Tridax Procumbens Leaf Powder, and Evaluation of the Antimicrobial Properties of the Topical Ethanolic Extract Formulation
Abstract:
The ethanolic extract of Tridax procumbens leaves, known traditionally for wound healing, was characterized through photomicrography, FTIR, pH measurement, phytochemical screening, and antimicrobial susceptibility testing. This extract was formulated into a topical ointment and evaluated for its antimicrobial activity in comparison to gentamicin. The results were analyzed using mean and standard deviation. Tridax procumbens leaves were washed, shade-dried and ground into powder, which was then extracted using 99.9% ethanol (TPEt). TPEt was characterized using photomicrography, FTIR, pH, phytochemical screening and antimicrobial susceptibility tests. Ointment containing 11.8%w/w TPEt was prepared using the fusion method (TrOt) and evaluated for homogeneity, colour, pH, spreadability, viscosity, antimicrobial susceptibility, minimum inhibitory and bactericidal concentrations. TPEt, exhibited dark patches composed of round (90.12±0.17µm) and irregular (180.12±1.06µm) particles. FTIR analysis revealed O-H stretching peaks around 3300-3500cm⁻¹, with aliphatic alkanes and methylene groups at 2850 cm⁻¹ and 1456 cm⁻¹. TPEt had a pH of 5.87, contained alkaloids, cardenolides and flavonoids, but lacked anthraquinones, saponins and tannins. It inhibited Staphylococcus epidermidis, Staphylococcus aureus, Escherichia coli and Pseudomonas aeruginosa, with inhibition zones ranging from 12.5 to 50.0 mg/mL. TrOt appeared as a smooth dark brown substance with a spreadability of 2.5cm in 10 seconds under 200g load, pH of 5.7, pseudoplastic flow behavior, and exhibited bacteriostatic and bactericidal effects against Staphylococcus species at 6.25 mg/mL and 6.72 mg/mL, respectively, comparable to gentamycin ointment. The ethanolic extract of Tridax procumbens leaves and its ointment demonstrated comparable antimicrobial activity. The ointment displayed favorable physicochemical properties, including good flow and compatibility with skin.
KeyWords:
Antimicrobial resistance, Tridax procumbens, Ethanolic leaf extract, Topical antimicrobial formulation, Herbal ointment.
References:
- Adriana IS. Preformulation: The use of FTIR in compatibility studies. Journal of Innovations in Applied Pharmaceutical Science. 2019, 4(3): 01-06. Retrieved from https://saapjournals.org/index.php/jiaps/article/view/198
- Al-Barghouthy E, Hamed S, Mehyar G and AlKhatib H. Comparative evaluation of spreadability measurement methods for topical semisolid formulations: a scoping review. Gels. 2025, 11(12):10061016.
- Ambulkar S, Pranit A, Manish P, Deshmukh A, Ashish B, and Budhrani B. Various dosage forms of Tridax procumbens and their antimicrobial activity against specific pathogens. Indian Journal of Forensic Medicine and Toxicology. 2020, 14(4): 6585-6588.
- Andriana Y, Xuan TD, Quy TN, Minh TN, Van TM, Viet TD. Antihyperuricemia, Antioxidant, and Antibacterial Activities of Tridax procumbens L Foods 2019 Jan 10;8(1):21 doi: 10 3390/foods8010021 PMID: 30634624; PMCID: PMC6352254
- Arpita R, Ariba K, Irfan A, Saad A, Rajab BS, Babalghith AO et al. Flavonoids: a bioactive compound from medicinal plants and its therapeutic applications. BioMed Research International,2022, 15:101117.
- Avinash BT, Pallavi SS, Priyanka SC, Pawan NK and Chandrakant G. Pharmacological actions of Tridax procumbens L: a scientific review. Journal of Pharmacognosy and Phytochemistry, 2020,12(1):27-37.
- Chakole CM, Shende MA, Khadatkar SN. Formulation and evaluation of novel combined halobestasol propionate and Fusidic acid ointment. International Journal of Chem-Tec Research. 2009, 1(1): 103106.
- Debalke D, Birhan M, Kinubeh A and Yayeh M. Assessments of antibacterial effects of aqueousethanolic extracts of Sida rhombifolia’s aerial part. The Scientific World Journal, 2018, 20(1): 842-859
- Desmedt B, Courselle P, Beer O, Rogiers V, Grosber M, Deconinck E and Paepe K. Overview of skin whitening agents with an insight into the illegal cosmetic market. Europe Journal of the European Academy of Dermatology and Venereology. 2016, 30.
- Egamberdieva D, Jabborova D and Babich S. Antimicrobial activities of herbal plants from Uzbekistan against human pathogenic microbes. Environmental Sustainability, 2021, 4, 87–94.
- Eloff JN. Avoiding pitfalls in determining antimicrobial activity of plant extracts and publishing the results. BMC Complementary and Alternative Medicine. 2019, 19(1): 106–114.
- Emmanuel OP, Uraku AJ and Otitoju O. Evaluating consumption risk and toxicity index: a case study of Tridax procumbens. Environmental Science, Pollution Research and Management. 2021,1: 1-4.
- Gallego-Jara J, Lozano-Terol G, Sola-Martínez RA, Cánovas-Díaz, M and de-DiegoPuente T. A comprehensive review about Taxol®: history and future challenges. Molecules, 2020, 25: 79-86.
- Gillessen A and Schmidt HH. Silymarin as supportive treatment in liver diseases: a narrative review. Advances in Therapy, 2020, 37(1):1279–1301
- Gonelimali FD, Lin J, Miao W, Xuan J, Charles F, Chen M and Hatab SR. Antimicrobial properties and mechanism of action of some plant extracts against food pathogens and spoilage microorganisms. Frontiers in Microbiology. 2018. 9:16-39.
- Gupta V, Nirmala A, Dubey B and Amit A. Formulation and evaluation of herbal fairness cream comprising hydroalcoholic extracts of Pleurotus ostreatus, Glycyrrhiza glabra and Camellia sinensis. UK Journal of Pharmaceutical Biosciences. 2015, 3, 40-50.
- Ivko T, Hrytsenko V, Kienko L, Bobrytska L, Kukhtenko H and Germanyuk T. Investigation of the rheological properties of ointment bases as a justification of the ointment composition for herpes treatment. Turkish Journal of Pharmaceutical Sciences. 2021, 18(5): 628–636
- Khandelwal R, Vagha JD, Meshram RJ, Patel AA. Comprehensive review on unveiling the journey of Emmanueldigoxin: past, present, and future perspectives. Cureus, 2024,16(3): 01-07.
- Lukić M, Pantelić I and Savić S. Towards optimal ph of the skin and topical formulations: from the current state of the art to tailored products. Cosmetics. 2021, 8(3): 69–76.
- Magréault S, Jauréguy F, Carbonnelle E and Zahar J. When and how to use MIC in clinical practice? Antibiotics. 2022,11,12:17-48
- Nagalakshmi S, Saranraj P, Sivasakthivelan P. Determination of Minimum Inhibitory Concentration (MIC) and percentage bacterial growth inhibition of essential oils against gram positive bacterial pathogens. Journal of Drug Delivery. 2019, 9(3):33-38.
- Najmi A, Javed S, Bratty M and Alhazmi H. Modern approaches in the discovery and development of plant-based natural products and their analogues as potential therapeutic agents. Molecules, 2022, 22: 28-41.
- Parvekar P, Palaskar J, Metgud S, Maria R, and Dutta S. The minimum inhibitory concentration (MIC) and minimum bactericidal concentration (MBC) of silver nanoparticles against Staphylococcus aureus. Biomaterial Investigations in Dentistry. 2020,7(1):105-109
- Qian X, Wang K, Ma Y, Fang F, Meng X, Zhou L et al. Refining the rheological characteristics of high drug loading ointment via SDS and machine learning. Scientific Reports. 2024,19(5): 1-26
- Seyed-Alinaghi S, Mehraeen E, Mirzapour P, Yarmohammadi S, Dehghani S, Zare S, et al. A systematic review on natural products with antimicrobial potential against WHO's priority pathogens. European Journal of Medical Research. 2025, 30(1): 525-533. https://doi.org/10.1186/s40001-02502717-x
- Sofowora A. Medicinal plants and traditional medicine in Africa 1st ed, Nigeria; Spectrum Books: 1993.
- Wen-Kai H, Michael EH, John MN, Ulrich G, Ekkehard M, Gareth W and Thomas B. Opportunities of topical drug products in a changing dermatological landscape. European Journal of Pharmaceutical Sciences. 2024, 203, 0928-0987, https://doi.org/10.1016/j.ejps.2024.106913
- Zvidzayi M, Rath S, Bon C, Abboo S, Kanfer I. A novel approach to assess the potency of topical corticosteroids. Pharmaceutics, 2021,13(9):1456-1469.