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Antitubercular activities, antioxidant properties and GCMS fingerprinting of Acacia hebecladoides, Acacia albida and Gmelina arborea. Cover

Antitubercular activities, antioxidant properties and GCMS fingerprinting of Acacia hebecladoides, Acacia albida and Gmelina arborea.

Open Access
|Dec 2022

References

  1. Abeer, M.I., Magdi, A.E. (2016). Preliminary phytochemical screening, plant growth inhibition and antimicrobial activity studies of Faidherbia albida legume extracts. J. Saudi Soc. Agri. Sci. 112-117.10.1016/j.jssas.2014.06.002
  2. Canetti, G., Wallace, F., Khomenko, A., Mahler, H.T., Menon, N.K., Mitchison, D.A., Rist, N., Smelev, A.N. (1969). Advances in techniques of testing mycobacterial drug sensitivity and the use of sensitivity tests in tuberculosis control programmes. Bull. W.H.O., 41:21-43.
  3. Cechovska, L., Cejpek, K., Konecny, M., Velisek, J. (2011). On the role of 2,3-dihydro 3,5-dihydroxy-6-methyl-(4H)-pyran-4-one in antioxidant capacity of prunes. European Food Resea. Tech. 233(3): 367-376.10.1007/s00217-011-1527-4
  4. Chothani, D.L., Patel, N.M. (2014). Pharmacognostic and Physicochemical Evaluation on Fruits of Gmelina arborea. Pharmaco. Tut., 2, 162-166.
  5. Dalziel, J.M. (1937). The useful Plants of West Tropical Africa, 1st ed. Crown Agents for the Colonies, London.
  6. Eggeling, W.J., Dale, I.R. (1952). The indigenous trees of the Uganda Protectorate. 2nd ed. University Press, Glasgow. pp 491.
  7. Egharevba, H.O., Oladosu, P., Izebe, K.S., Kunle O.F. (2015). Chemical composition and antitubercular activity of the fixed oil of Moringa oleifera seed. J. Chem. Pharmaceut. Res. 7, 412-418.
  8. Faleyimu, O.I., Akinyemi, O., Adejoba, O.R. (2009). Herbal solution to the treatment of tuberculosis infection in Kaduna south local government, Kaduna, Nigeria. J. Environ. Exten., 8, 40-43.10.4314/jext.v8i1.52415
  9. Ferreira, I.C.F.R., Baptista, P., Vilas-Boas, M., Barros, L. (2007). Free-radical scavenging capacity and reducing power of wild edible mushrooms from northeast Portugal: Individual cap and stipe activity. Food Chem., 100, 1511-1516.10.1016/j.foodchem.2005.11.043
  10. Garrat, D.C. (1964). The Quantitative Analysis of Drugs Japan. 3rd Edn., Chapman and Hall, Japan, pp, 456-458.
  11. Gowrish, A., Vagdevi, H.M., Rajashekar, H. (2016). Phytochemical screening and antimicrobial activity of Leucas marrubioides Desf. root extracts. Int J Pharm Pharm Sci. 8(12):209-212.
  12. Hans, L.R., Martin, T.C., Helge, M., Richard, U., Adalbert, L., Sang, J.K., Armand, V.D., Arnauld, T. (1998). The Public Health Service, National Tuberculosis Reference Laboratory and the National Laboratory Network. Int. Union against Tuberculosis and Lung Disease, 4, 56-80.
  13. Hostettmann, K., Hostettmann, M., Marston, A. (1991). Saponins, in terpenoids (Charlwood BV and DV Banthorpe (eds)). Methods in Plant Biochemistry vol. 7. San Diego, CA: Academic Press. pp 435–471.
  14. Hussain, A., Mirza, S. N., Khan, I. A., Naeem, M. A. (2009). Determination of relative species composition and seasonal plant communities of Nurpur reserved forest in scrub rangelands of District Chakwal. – Pak. J. Agri. Sci. 46(1): 55-59.
  15. Idh J., Andersson B., Lerm M., Raffetseder J., Eklund D., Woksepp H. (2017). Reduced susceptibility of clinical strains of Mycobacterium tuberculosis to reactive nitrogen species promotes survival in activated macrophages. PLoS ONE 12(7).10.1371/journal.pone.0181221550932828704501
  16. Idu, M., Ovuakporie-Uvo, P.O., Ndana, R.W. (2015). Preliminary Phytochemistry and In Vitro Antimicrobial Properties of the Chloroform and Ethanol Extracts of the Roots of Cedrela Odorata, Chlorophora Excelsa and Gmelina Arborea. Int. J. Analyt. Pharm. Biomed. Sci., 4, 117.
  17. Jackson, G. (1973). Re-Fulani in Northern Nigeria: Herb. UCI (uned).
  18. Kanetsuna, F. (1985). Bactericidal effect of fatty acids on Mycobacteria, with particular reference to suggested mechanism of intracellular killing. Microbiol. Immunol., 2, 127-141.10.1111/j.1348-0421.1985.tb00811.x4010540
  19. Kulkarni, Y.A., Panjabi, R., Patel, V., Tawade, A., Gokhale, A. (2013). Effect of Gmelina arborea Roxb in experimentally induced inflammation and nociception. J. Ayur. Integra. Med., 4(3), 152–157.10.4103/0975-9476.118697382118924250144
  20. Mohamad, O.A.A., Li L, M.J.B., Hatab, S., Xu, L., Guo J.W., Rasulov, B.A., Liu Y. H., Hedlund, B.P., Li W.J. (2018). Evaluation of the antimicrobial activity of endophytic bacterial populations from chinese traditional medicinal plant licorice and characterization of the bioactive secondary metabolites produced by Bacillus atrophaeus against verticillium dahliae. Front. Microbiol. 9: 924.10.3389/fmicb.2018.00924
  21. Muñoz-Díaz, J. I., Fuente-Martínez, B., Hernández-Velasco, X., Ávila-González, E. (2012). Skin pigmentation in broiler chickens fed various levels of metabolizable energy and xanthophylls from Tagetes erecta. J. Appl. Poult. Res., 21 (4): 788-79610.3382/japr.2011-00507
  22. Naik, G.H., Priyadarsini, K.I., Satav, J.G., Banavalikar, M.M., Sohoni, D.P., Biyani, M.K., Mohan, H. (2003). Comparative antioxidant activity of individual herbal components used in ayurvedic medicine. Phytochem. 63, 97–104.10.1016/S0031-9422(02)00754-9
  23. Nithiyananthama, S., Siddhurajua, P., Franc, G. (2013). A promising approach to enhance the total phenolic content and antioxidant activity of raw and processed Jatropha curcas L. kernel meal extracts. Indust. Crops Prod., 43: 261–269.10.1016/j.indcrop.2012.07.040
  24. Nsimba, R.W., Kikuzaki, H., Konishi, Y. (2008). Antioxidant activity of various extracts and mycobacterial drug sensitivity and the use of sensitivity tests in tuberculosis control programs. Bull. W.H.O. 41, 21-43.
  25. Ohta, S., Shiomi, Y., Kawashima, A., Aozasa, O., Nakao, T., Nagate, T., Kitamura, K., Miyata, H. (1995). Antibiotic effect of linolenic acid from Chlorococcum strain HS-101 and Dunaliella primolecta on methicillin-resistant Staphylococcus aureus. J. Appl. Physio., 121-127.10.1007/BF00693057
  26. Oladosu, P.O., Isu, N.R., Ibrahim, K., Orishadipe, A.T., Lawson, L. (2013). Antituberculosis activity of bioactive compounds from fruit extract of Acacia nilotica. J. Microbiol. Res. 3 (6), 247-254.
  27. Patel, K., Sarma, V., Vavia, P. (2013). Design and evaluation of Lumefantrine – Oleic acid self nanoemulsifying ionic complex for enhanced dissolution. DARU J. Pharm. Sci., 21, 27.10.1186/2008-2231-21-27363593023531442
  28. Pereira, M., Tripathy, S., Indamdar, V., Ramesh, K., Bhavsar, M., Date, A., Iyyer, R., Acchammachary, A., Mehendale, S., Risbud, A. (2005). Drug resistance pattern of Mycobacterium tuberculosis in seropositive and seronegative HIV-TB patients in Pune, India. India J. Med. Res. 121, 235–239.
  29. Pinto, M.E.A., Sthéfane G. A., Marcela I. M., Sá N.P., Lima, C.M., Carlos A. Rosa., Ezequias P. S., Johann S., Lima, L. A. (2017). Antifungal and antioxidant activity of fatty acid methyl esters from vegetable oils. An. Acad. Bras. Ciênc, 89: 1671-1681.10.1590/0001-3765201720160908
  30. Ravichandiran, M., Thiripurasalmi, S., Ravitchandirane, V., Goplane, S., Stella, C. (2013). Chemical constituents and anti-tuberculosis activity of ink extracts of cuttle fish, Sepiella inermis, J. Coast. Life Med. 273-277.
  31. Reid, M.J.A., Arinaminpathy, N., Bloom, A., Bloom, B.R., Boehme, C., Chaisson, R., Chin, D.P., Churchyard, G., Cox, H., Ditiu, L. (2019). Building a tuberculosis-free world: The Lancet Commission on tuberculosis. Lancet. 393, 1331–1384.10.1016/S0140-6736(19)30024-830904263
  32. Riccardo, M., Menico, R., Davide, M.F. (2020). Mycobacterium tuberculosis Pathogenesis, Infection Prevention and Treatment. Pathogens. 9, 385.10.3390/pathogens9050385728111632443469
  33. Takara, K., Otsuka, K., Wada, K., Iwasaki, H., Yamashita, M. (2007). 1, 1-Diphenyl-2-picrylhydrazyl radical scavenging activity and tyrosinase inhibitory effects of constituents of sugarcane molasses. Biosci, Biotech and Biochem, 71, 183-191.10.1271/bbb.6043217213673
  34. Wei, L.S., Wee, W., Siong, J.Y.F., Syamsumir, D.F. (2011). Characterization of anticancer, antimicrobial, antioxidant properties and chemical compositions of Peperomia pellucida leaf extract. Acta Medica Iranica, 49, 670–674.
  35. World Health Organisation W.H.O. (2020). Global tuberculosis Report; World Health Organisation, Geneva, Switzerland, Volume 69.
  36. Xu, B.J., Chang, S.K.C. (2007). A comparative study on phenolic profiles and antioxidant activities of legumes as affected by extraction solvents. J. Food Sci. 72, S159-S166.10.1111/j.1750-3841.2006.00260.x17995858
Language: English
Page range: 51 - 61
Submitted on: Apr 24, 2022
Accepted on: Sep 3, 2022
Published on: Dec 23, 2022
Published by: Sciendo
In partnership with: Paradigm Publishing Services
Publication frequency: 2 issues per year

© 2022 Paul T. Olonishuwa, Gabriel O. Anyanwu, Uju D. I. Ejike, published by Sciendo
This work is licensed under the Creative Commons Attribution 4.0 License.