UPSI Digital Repository (UDRep)
|
![]() |
|
|
Abstract : Universiti Pendidikan Sultan Idris |
The present study aims to examine the chemical composition of the essential oils of the leaves of Garcinia nigrolineata. The essential oil was extracted by hydrodistillation and characterized by gas chromatography (GC-FID) and gas chromatography-mass spectrometry (GC-MS). In total, 37 chemical components were identified in the essential oil which made up 98.3 % of the total oil composition. The essential oil is composed mainly of ?-caryophyllene (25.2 %), ?-humulene (12.8 %), valencene (6.2 %), ?-cadinol (5.8 %), and germacrene D (5.5 %). To the best of the authors? knowledge, this is the initial study that has looked into the essential oil composition of Garcinia nigrolineata collected from Malaysia. ? 2021, University of Zagreb, Faculty of Mining, Geology and Petroleum Engineering. All rights reserved. |
References |
Adams, R. P. (1995). Identification of Essential Oil Components by Gas Chromatography/Mass Spectroscopy, Retrieved from www.scopus.com Corner, E. J. H. (1952). Wayside Trees of Malaya, 1 Retrieved from www.scopus.com Dahham, S. S., Tabana, Y. M., Iqbal, M. A., Ahamed, M. B. K., Ezzat, M. O., Majid, A. S. A., & Majid, A. M. S. A. (2015). The anticancer, antioxidant and antimicrobial properties of the sesquiterpene β-caryophyllene from the essential oil of aquilaria crassna. Molecules, 20(7), 11808-11829. doi:10.3390/molecules200711808 Jamila, N., Khan, N., Khan, I., Khan, A. A., & Khan, S. N. (2016). A bioactive cycloartane triterpene from garcinia hombroniana. Natural Product Research, 30(12), 1388-1397. doi:10.1080/14786419.2015.1060594 Klauke, A. -., Racz, I., Pradier, B., Markert, A., Zimmer, A. M., Gertsch, J., & Zimmer, A. (2014). The cannabinoid CB2 receptor-selective phytocannabinoid beta-caryophyllene exerts analgesic effects in mouse models of inflammatory and neuropathic pain. European Neuropsychopharmacology, 24(4), 608-620. doi:10.1016/j.euroneuro.2013.10.008 Liu, B., Zhang, X., Bussmann, R. W., Hart, R. H., Li, P., Bai, Y., & Long, C. (2016). Garcinia in southern china: Ethnobotany, management, and niche modeling. Economic Botany, 70(4), 416-430. doi:10.1007/s12231-016-9360-0 Menon, L. N., Shameer, P. S., Sarma, J., & Rameshkumar, K. B. (2021). Profiles of volatile chemicals from the leaves of six garcinia species from north east india. Natural Product Research, 35(13), 2269-2273. doi:10.1080/14786419.2019.1667349 Pangsuban, S., Bamroongrugsa, N., Kanchanapoom, K., & Nualsri, C. (2009). Facultative apomixis in garcinia atroviridis (clusiaceae) and effects of different pollination regimes on reproductive success. Tropical Life Sciences Research, 20(2), 89-108. Retrieved from www.scopus.com Raksat, A., Maneerat, W., Andersen, R. J., Pyne, S. G., & Laphookhieo, S. (2019). A tocotrienol quinone dimer and xanthones from the leaf extract of garcinia nigrolineata. Fitoterapia, 136 doi:10.1016/j.fitote.2019.104175 Ruilong, W., Shaolin, P., Rensen, Z., Ling, W. D., & Zengfu, X. U. (2009). Cloning, expression and wounding induction of β-caryophyllene synthase gene from mikania micrantha H.B.K. and allelopathic potential of β-caryophyllene. Allelopathy Journal, 24(1), 35-44. Retrieved from www.scopus.com Rukachaisirikul, V., Kamkaew, M., Sukavisit, D., Phongpaichit, S., Sawangchote, P., & Taylor, W. C. (2003). Antibacterial xanthones from the leaves of garcinia nigrolineata. Journal of Natural Products, 66(12), 1531-1535. doi:10.1021/np0303254 Rukachaisirikul, V., Ritthiwigrom, T., Pinsa, A., Sawangchote, P., & Taylor, W. C. (2003). Xanthones from the stem bark of garcinia nigrolineata. Phytochemistry, 64(6), 1149-1156. doi:10.1016/S0031-9422(03)00502-8 Rukachaisirikul, V., Tadpetch, K., Watthanaphanit, A., Saengsanae, N., & Phongpaichit, S. (2005). Benzopyran, biphenyl, and tetraoxygenated xanthone derivatives from the twigs of garcinia nigrolineata. Journal of Natural Products, 68(8), 1218-1221. doi:10.1021/np058050a Salleh, W. M. N. H. W., Ahmad, F., & Khong, H. Y. (2014). Chemical composition of piper stylosum miq. and piper ribesioides wall. essential oils, and their antioxidant, antimicrobial and tyrosinase inhibition activities. [Composición química de los aceites esenciales de Piper stylosum Miq. y Piper ribosoides Wall. y sus actividades antioxidantes, antimicrobiana y de inhibición de la tirosinasa] Boletin Latinoamericano y Del Caribe De Plantas Medicinales y Aromaticas, 13(5), 488-497. Retrieved from www.scopus.com Salleh, W. M. N. H. W., Ahmad, F., Sirat, H. M., & Yen, K. H. (2012). Chemical compositions and antibacterial activity of the leaf and stem oils of piper porphyrophyllum (LINDL.) N.E. br. EXCLI Journal, 11, 399-406. Retrieved from www.scopus.com Salleh, W. M. N. H. W., Ahmad, F., Yen, K. H., & Zulkifli, R. M. (2016). Chemical composition and biological activities of essential oil of beilschmiedia pulverulenta. Pharmaceutical Biology, 54(2), 322-330. doi:10.3109/13880209.2015.1037003 Salleh, W. M. N. H. W., Ahmad, F., Yen, K. H., & Zulkifli, R. M. (2015). Chemical compositions and biological activities of essential oils of beilschmiedia glabra. Natural Product Communications, 10(7), 1297-1300. doi:10.1177/1934578x1501000740 Salleha, W. M. N. H. W., Ahmada, F., & Yenb, K. H. (2014). Chemical compositions and antimicrobial activity of the essential oils of piper abbreviatum, P. erecticaule and P. lanatum (piperaceae). Natural Product Communications, 9(12), 1795-1798. Retrieved from www.scopus.com Shameer, P. S., Rameshkumar, K. B., & Mohanan, N. (2016). Diversity of garcinia in the western ghats. Phytochemical Perspective, , 1-18. Retrieved from www.scopus.com |
This material may be protected under Copyright Act which governs the making of photocopies or reproductions of copyrighted materials. You may use the digitized material for private study, scholarship, or research. |