Evaluating the phytochemical composition and antimicrobial activity of Dovyalis abyssinica and Oxygonum sinuatum root extracts against Proteus mirabilis and Trichophyton rubrum

Authors

DOI:

https://doi.org/10.51867/ajernet.7.3.140

Keywords:

Antimicrobial resistance, phytochemicals, Dissotis abyssinica, Oxyanthus sinuatum, Proteus mirabilis, Trichophyton rubrum, tinea pedis

Abstract

Antimicrobial resistance (AMR) is an emerging global health crisis that indicates the inability of widely used antimicrobial treatments to work as intended. Microorganisms like Proteus mirabilis and Trichophyton rubrum, which is a causative agent of tinea pedis, are linked to antimicrobial resistance, so there is a need to look for an alternative antimicrobial agent from medicinal plants. The study was aimed at assessing the phytochemical composition and antimicrobial activity of the root extract of Dissotis abyssinica against P. mirabilis and T. rubrum, and also the root extract of Oxyanthus sinuatum. An experimental lab-based study was carried out to evaluate the antimicrobial property of methanolic root extracts of D. abyssinica and O. sinuatum. Two concentrations of the extract (0, 2, 4, 8 and 16 mg/mL) were tested. The antimicrobial activity was established by the agar well diffusion method and minimum inhibitory concentrations (MICs) by the broth microdilution method. Triplicate treatments were used for each treatment. There were positive controls of ciprofloxacin (5 µg/well) for P. mirabilis and fluconazole (25 µg/mL) for T. rubrum, and a negative control of dimethyl sulfoxide (DMSO). Phytochemical screening was also done in order to find out the presence of bioactive compounds in the extracts. Flavonoids, alkaloids, saponins and glycosides were present in the extracts. Plant extracts exhibited antimicrobial activity towards the test organisms with significantly higher antimicrobial activity as the extract concentration was raised (p < 0.0001). The antimicrobial activity of the composites was moderate to strong as per the composite mean analysis. These results showed that the methanolic extracts of roots do have some antimicrobial activity against both P. mirabilis and T. rubrum. It is the conclusion of this study that the root extract of D. abyssinica and O. sinuatum contains phytochemical constituents that exhibited antimicrobial activity against the tested microorganisms, which further supports their potential use as an alternative source of antimicrobial agents and offers a scientific basis for their ethnomedicinal uses. Further studies should be conducted by sequential extraction with at least three different solvents with different polarity, like hexane, ethyl acetate and methanol, or water, to have a more complete phytochemical profile and compare the antimicrobial activity of the extract type. A further investigation is also needed to find and characterize the specific bioactive compounds responsible for the observed antimicrobial effects.

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Author Biographies

  • Alex Liluma, Kaimosi Friends University

    Post- graduate student, Kaimosi Friends University

  • George Opande, Kaimosi Friends University.

    Senior Lecturer, 

    Department of Physical, Biological and Agricultural sciences

    Kaimosi Friends University.

  • Loice Njeri Kamau, Kaimosi Friends University

    Lecturer, Department of Physical, Biological and Agricultural sciences

    Kaimosi Friends University                                  

     

     

References

Adongo, J. O. (2013). Ethnobotanical survey of medicinal plants used in Kenya. University of Nairobi Press.

Africa Centres for Disease Control and Prevention. (2024). Antimicrobial resistance in Africa: Status report.

Anyanwu, M. U., & Okoye, R. C. (2017). Antimicrobial activity of Ocimum species: A review. Journal of Medicinal Plants Research, 11(28), 461-466.

Armbruster, C. E., & Mobley, H. L. T. (2018). Pathogenesis of Proteus mirabilis. Nature Reviews Microbiology, 16(1), 55-67. https://doi.org/10.1038/nrmicro.2017.130

Atanasov, A. G., Waltenberger, B., Pferschy-Wenzig, E. M., Linder, T., Wawrosch, C., Uhrin, P., Temml, V., Wang, L., Schwaiger, S., Heiss, E. H., Rollinger, J. M., Schuster, D., Breuss, J. M., Bochkov, V., Mihovilovic, M. D., Kopp, B., Bauer, R., Dirsch, V. M., & Stuppner, H. (2015). Discovery and resupply of pharmacologically active plant-derived natural products: A review. Biotechnology Advances, 33(8), 1582-1614. https://doi.org/10.1016/j.biotechadv.2015.08.001

Baylie, T., Tsega, W., Getinet, M., Abebaw, D., Azanaw, G., Adugna, A., & Jemal, M. (2024). Evaluation of antioxidant and antihyperglycemic effects of Dovyalis abyssinica (A. Rich) leaf extract in streptozotocin-induced diabetic mice. Metabolism Open, 22, 100286. https://doi.org/10.1016/j.metop.2024.100286

Belitibo, D. B., Meressa, A., Negassa, T., Abebe, A., Degu, S., Endale, M., Assamo, F. T., Ayana, T. A., Gurmessa, G. T., & Abdissa, N. (2025). In vitro antimicrobial and cytotoxic evaluation of leaf, root, and stem extracts of Solanum dasyphyllum and root and stem extracts of Dovyalis abyssinica. Frontiers in Pharmacology, 16, 1529854. https://doi.org/10.3389/fphar.2025.1529854

Belitibo, P., et al. (2024). Phytochemical profiling and bioactive compounds of Dovyalis abyssinica. Phytochemistry Letters.

Boakye, Y. D., Agyare, C., Sam, G. H., Boamah, V. E., & Osei, F. B. (2019). Antibacterial resistance modulatory properties of selected medicinal plants from Ghana. African Journal of Pharmacy and Pharmacology, 13(5), 57-69. https://doi.org/10.5897/AJPP2019.4989

Clinical and Laboratory Standards Institute. (2021). Performance standards for antimicrobial susceptibility testing (31st ed.). CLSI.

Cortes-Penfield, N. W., Trautner, B. W., & Jump, R. L. P. (2017). Urinary tract infections and Proteus mirabilis. Clinical Microbiology Reviews, 30(1), 1-27. https://doi.org/10.1128/CMR.00044-16

Cowan, M. M. (1999). Plant products as antimicrobial agents. Clinical Microbiology Reviews, 12(4), 564-582. https://doi.org/10.1128/CMR.12.4.564

Coussement, J., Lindsay, J., Teh, B. W., & Slavin, M. (2021). Choice and duration of antifungal prophylaxis and treatment in high-risk haematology patients. Current Opinion in Infectious Diseases, 34(4), 297-306. https://doi.org/10.1097/QCO.0000000000000737

Crawford, A. D., Liekens, S., Kamuhabwa, A. R., Maes, J., Munck, S., Busson, R., Rozenski, J., Esguerra, C. V., & de Witte, P. A. M. (2011). Zebrafish bioassay-guided natural product discovery: Isolation of angiogenesis inhibitors from East African medicinal plants. PLoS ONE, 6(2), e14694. https://doi.org/10.1371/journal.pone.0014694

Dhingra, S., Rahman, N. A. A., Peile, E., Rahman, M., Sartelli, M., Hassali, M. A., Islam, T., Islam, S., & Haque, M. (2020). Microbial resistance movements: An overview of global public health threats posed by antimicrobial resistance, and how best to counter. Frontiers in Public Health, 8, 535668. https://doi.org/10.3389/fpubh.2020.535668

Elbermawi, A., Zulfiqar, F., Khan, I. A., & Ali, Z. (2025). Phytochemical exploration of Oxygonum sinuatum and biological evaluation of isolates: Identification of oxylignoside and its absolute configuration. South African Journal of Botany, 186, 146-151. https://doi.org/10.1016/j.sajb.2025.09.001

Eloff, J. N. (1998). A sensitive and quick microplate method to determine the minimal inhibitory concentration of plant extracts for bacteria. Planta Medica, 64(8), 711-713.

https://doi.org/10.1055/s-2006-957563

Evans, W. C. (2009). Trease and Evans pharmacognosy (16th ed.). Saunders Elsevier.

Geyid, A., Abebe, D., Debella, A., Makonnen, Z., Aberra, F., Teka, F., Kebede, T., Urga, K., Yersaw, K., Biza, T., Haile Mariam, B., & Guta, M. (2005). Screening of some medicinal plants of Ethiopia for their anti-microbial properties and chemical profiles. Journal of Ethnopharmacology, 97(3), 421-427. https://doi.org/10.1016/j.jep.2004.08.021

Hafiz, T. A., Alghamdi, G. S., Alkudmani, Z. S., Alyami, A. S., AlMazyed, A., Alhumaidan, O. S., Mubaraki, M. A., & Alotaibi, F. E. (2024). Multidrug-resistant Proteus mirabilis infections and clinical outcome at a tertiary hospital in Riyadh, Saudi Arabia. Infection and Drug Resistance, 17, 571-581.

https://doi.org/10.2147/IDR.S448335

Hai, P. V., & Khuong, N. D. T. (2025). Antibacterial effects of probiotic fermented shallot and garlic chive extracts against multidrug-resistant Proteus mirabilis and Escherichia coli in a chicken model. Poultry Science and Management, 2. https://doi.org/10.1186/s44364-025-00010-5

Harborne, J. B. (1998). Phytochemical methods: A guide to modern techniques of plant analysis (3rd ed.). Chapman & Hall.

Jadimurthy, R., Jacob, J. P., Shanmugam, G., Balamurugan, K., & Ramasamy, M. (2023). Mechanisms of plant-derived antimicrobials. Frontiers in Microbiology, 14, 1182456. https://doi.org/10.3389/fmicb.2023.1182456

Kiiru, S., Maina, J., Katana, J., Mwaniki, J., Asiimwe, B. B., Mshana, S. E., Keenan, K., Gillespie, S. H., Stelling, J., Holden, M. T. G., HATUA Consortium, & Kiiru, J. (2023). Bacterial etiology of urinary tract infections in patients treated at Kenyan health facilities and their resistance towards commonly used antibiotics. PLoS ONE, 18(5), e0277279. https://doi.org/10.1371/journal.pone.0277279

Legesse, B. A., Tamir, A., & Bezabeh, B. (2019). Phytochemical screening and antibacterial activity of leaf extracts of Dovyalis abyssinica. Journal of Emerging Technologies and Innovative Research, 6, 453-465.

Leung, A. K. C., Lam, J. M., Leong, K. F., Hon, K. L., & Barankin, B. (2023). Dermatophytosis: Clinical perspectives. Drugs in Context, 12, 2023-2-2. https://doi.org/10.7573/dic.2023-2-2

Mensah, M. L. K., Komlaga, G., Forkuo, A. D., Firempong, C., Anning, A. K., & Dickson, R. A. (2019). Toxicity and safety implications of herbal medicines used in Africa. Evidence-Based Complementary and Alternative Medicine, 2019, Article 2958637. https://doi.org/10.1155/2019/2958637

Murray, C. J. L., Ikuta, K. S., Sharara, F., Swetschinski, L., Aguilar, G. R., Gray, A., ... Naghavi, M. (2022). Global burden of bacterial antimicrobial resistance in 2019: A systematic analysis. The Lancet, 399(10325), 629-655. https://doi.org/10.1016/S0140-6736(21)02724-0

Nantinda, C., Kisakye, E. L., Musana, D., Ssessanga, I., Ssenabulya, U., Omara, T., Kahwa, I., & Nalimu, F. (2025). Ethnobotany, floristic and phytochemical studies of medicinal plants used to treat uterine fibroids in Mbarara City, Uganda. Phytomedicine Plus, 5(1), 100729. https://doi.org/10.1016/j.phyplu.2025.100729

Ochwang'i, D. O., Kimwele, C. N., Oduma, J. A., Gathumbi, P. K., Mbaria, J. M., & Kiama, S. G. (2014). Medicinal plants used in treatment and management of cancer in Kakamega County, Kenya. Journal of Ethnopharmacology, 151(2), 1040-1055. https://doi.org/10.1016/j.jep.2013.11.051

Olusola-Makinde, O. O., & Bayode, M. T. (2021). Comparative antimicrobial study of Vernonia amygdalina Del. and Lawsonia inermis L. against microorganisms from aqueous milieu. European Journal of Biological Research, 11(3).

Poudel, A. N., Zhu, S., Cooper, N., Little, P., Tarrant, C., & Hickman, M. (2023). The economic burden of antimicrobial resistance: A systematic review. Antibiotics, 12(3), 456. https://doi.org/10.3390/antibiotics12030456

Poudel, A. N., Zhu, S., Cooper, N., Little, P., Tarrant, C., Hickman, M., & Yao, G. (2023). The economic burden of antibiotic resistance: A systematic review and meta-analysis. PLoS ONE, 18(5), e0285170. https://doi.org/10.1371/journal.pone.0285170

Schaffer, J. N., & Pearson, M. M. (2017). Proteus mirabilis urease: Virulence factor and target for therapy. Infection and Immunity, 85(9), e00376-17. https://doi.org/10.1128/IAI.00376-17

Shahin, H. H., Baroudi, M., Dabboussi, F., Ismail, B., Salma, R., Osman, M., & El Omari, K. (2025). Synergistic antibacterial effects of plant extracts and essential oils against drug-resistant bacteria of clinical interest. Pathogens, 14(4), 348. https://doi.org/10.3390/pathogens14040348

Singh, S., Semwal, B. C., & Neeli, G. S. (2017). Microscopic and physicochemical evaluation of leaves of Sphaeranthus indicus Linn. Pharmacognosy Journal, 9(1), 21-26. https://doi.org/10.5530/pj.2017.1.4

Sofowora, A. (2008). Medicinal plants and traditional medicine in Africa (3rd ed.). Spectrum Books.

Sun, T., Li, H., & Zhang, Y. (2026). Editorial: Targeting major human fungal pathogens: Novel insights into virulence and antifungal therapies. Frontiers in Cellular and Infection Microbiology, 16, 1832463. https://doi.org/10.3389/fcimb.2026.1832463

Takongmo Matsuete, G., Tangue Talom, B., & Tamokou, J.-D.-D. (2025). Phytochemical composition, biological activities, and mechanisms of antibacterial action of selected Cameroonian medicinal plants. Cureus, 17(6), e86251. https://doi.org/10.7759/cureus.86251

Tham, J., Walder, M., Melander, E., & Odenholt, I. (2012). Prevalence of extended-spectrum beta-lactamase-producing bacteria in food. Infection and Drug Resistance, 5, 143-147. https://doi.org/10.2147/IDR.S34941

Wasfi, R., Hamed, S. M., Amer, M. A., & Fahmy, L. I. (2020). Proteus mirabilis biofilm: Development and therapeutic strategies. Microbial Pathogenesis, 141, 103974. https://doi.org/10.1016/j.micpath.2020.103974

WaterAid, & World Bank. (2024). Economic burden of healthcare-associated infections in sub-Saharan Africa. https://www.example.org/report-link

Wink, M. (2020). Potential of DNA intercalating alkaloids and other plant secondary metabolites against SARS-CoV-2 causing COVID-19. Diversity, 12(5), 175. https://doi.org/10.3390/d12050175

World Health Organization. (2023). Antimicrobial resistance. https://www.who.int/news-room/fact-sheets/detail/antimicrobial-resistance

World Health Organization. (2025). Global antimicrobial resistance report.

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Published

2026-09-21

How to Cite

Liluma, A., Opande, G. ., & Kamau, L. N. (2026). Evaluating the phytochemical composition and antimicrobial activity of Dovyalis abyssinica and Oxygonum sinuatum root extracts against Proteus mirabilis and Trichophyton rubrum. African Journal of Empirical Research, 7(3), 1805-1817. https://doi.org/10.51867/ajernet.7.3.140