Identification and isolation of flavonoids from Iraqi Silybum marianum L.flowers by HPLC

https://doi.org/10.53730/ijhs.v6nS1.7542

Authors

  • Rafah Razooq Hameed Al-Samarrai Department of Applied Chemistry, College of Applied Science, University of Samarra, Iraq
  • Muntadher Mustafa Abdulsahib Department of Applied Chemistry, College of Applied Science, University of Samarra, Iraq
  • Noor Alhuda Mustafa Abdulsahib Department of Applied Chemistry, College of Applied Science, University of Samarra, Iraq

Keywords:

Flavonoids, Silybum marianum, Taxifolin, Siliybin A and B

Abstract

One of the most important phytochemical compounds with potential applications in medicinal chemistry is the flavonoids which exist in many different parts of plants(fruits, herbs, vegetables). Flavonoids possess many medicinal benefits, including antioxidant, antiviral, anticancer, and anti-inflammatory properties. In addition to the cardio and neuro-protective effects. So the present study aimed to identify and isolate flavonoids from the flowers of Iraqi Silybum marianum L. by High-Performance Liquid Chromatography-HPLC. The results indicate that the HPLC analysis of plant flavonoids indicate that the flowers contain different concentration of flavonoids which include 119.7143 µg/g of Taxifolin,  307.4991 µg/g of Silychristin A, 137.6423 µg/g of Silidianin,  252.938 µg/g of  Silychristin B, 339.9172 µg/g of Siliybin A, 378.3294 µg/g of Silybin B, 234.6421 µg/g of Isosilybin  A and 127.2572 µg/g  of Isosilybin  B. 

Downloads

Download data is not yet available.

References

Bora, K. S., & Sharma, A. (2011). Phytochemical and pharmacological potential of Medicago sativa: A review. Pharmaceutical biology, 49(2), 211-220.‏

Chiocchio, I., Mandrone, M., Tomasi, P., Marincich, L., & Poli, F. (2021). Plant secondary metabolites: An opportunity for circular economy. Molecules, 26(2), 495.‏

Zhang, S., Zhang, L., Zou, H., Qiu, L., Zheng, Y., Yang, D., & Wang, Y. (2021). Effects of Light on Secondary Metabolite Biosynthesis in Medicinal Plants. Frontiers in plant science, 12, 781236-781236.‏

4- Tungmunnithum, D., Thongboonyou, A., Pholboon, A., & Yangsabai, A. (2018). Flavonoids and other phenolic compounds from medicinal plants for pharmaceutical and medical aspects: An overview. Medicines, 5(3), 93.‏

Fernández, S. P., Wasowski, C., Loscalzo, L. M., Granger, R. E., Johnston, G. A., Paladini, A. C., & Marder, M. (2006). Central nervous system depressant action of flavonoid glycosides. European journal of pharmacology, 539(3), 168-176.‏

Karak, P. (2019). Biological activities of flavonoids: an overview. Int. J. Pharm. Sci. Res, 10(4), 1567-1574.‏

Panche, A. N., Diwan, A. D., & Chandra, S. R. (2016). Flavonoids: an overview. Journal of nutritional science, 5.‏

Koolaji, N., Shammugasamy, B., Schindeler, A., Dong, Q., Dehghani, F., & Valtchev, P. (2020). Citrus peel flavonoids as potential cancer prevention agents. Current developments in nutrition, 4(5), nzaa025.‏

Bakhtiari, M., Panahi, Y., Ameli, J., & Darvishi, B. (2017). Protective effects of flavonoids against Alzheimer’s disease-related neural dysfunctions. Biomedicine & Pharmacotherapy, 93, 218-229.‏

Grassi, D., Desideri, G., & Ferri, C. (2010). Flavonoids: antioxidants against atherosclerosis. Nutrients, 2(8), 889-902.‏

Ngwa, W., Kumar, R., Thompson, D., Lyerly, W., Moore, R., Reid, T. E., ... & Toyang, N. (2020). Potential of flavonoid-inspired phytomedicines against COVID-19. Molecules, 25(11), 2707.‏

Tungmunnithum, D., Thongboonyou, A., Pholboon, A., & Yangsabai, A. (2018). Flavonoids and other phenolic compounds from medicinal plants for pharmaceutical and medical aspects: An overview. Medicines, 5(3), 93.‏

Bijak, M. (2017). Silybin, a major bioactive component of milk thistle (Silybum marianum L. Gaernt.)—Chemistry, bioavailability, and metabolism. Molecules, 22(11), 1942.‏

Abenavoli, L., Izzo, A. A., Milić, N., Cicala, C., Santini, A., & Capasso, R. (2018). Milk thistle (Silybum marianum): A concise overview on its chemistry, pharmacological, and nutraceutical uses in liver diseases. Phytotherapy Research, 32(11), 2202-2213.‏

Saeed, F., Younas, M., Fazal, H., Mushtaq, S., Rahman, F. U., Shah, M., ... & Abbasi, B. H. (2021). Green and chemically synthesized zinc oxide nanoparticles: Effects on in-vitro seedlings and callus cultures of Silybum marianum and evaluation of their antimicrobial and anticancer potential. Artificial Cells, Nanomedicine, and Biotechnology, 49(1), 450-460.‏

Mohammed, F. S., Pehlivan, M., & Sevindik, M. (2019). Antioxidant, antibacterial and antifungal activities of different extracts of Silybum marianum collected from Duhok (Iraq). International Journal of Secondary Metabolite, 6(4), 317-322.‏

Xu, F., Han, C., Li, Y., Zheng, M., Xi, X., Hu, C., ... & Cao, H. (2019). the chemical constituents and pharmacological actions of Silybum marianum. Current Nutrition & Food Science, 15(5), 430-440.‏

Abenavoli, L., Capasso, R., Milic, N., & Capasso, F. (2010). Milk thistle in liver diseases: past, present, future. Phytotherapy Research, 24(10), 1423-1432.‏

Chen, J. J., Li, X. R., & Fang, X. (2006). Purification of total flavones from Morus alba L. by macroporous adsorbents and kinetic model for the process. Zhejiang da xue xue bao. Yi xue ban= Journal of Zhejiang University. Medical Sciences, 35(2), 219-223.‏

Rodrıguez-Delgado, M. A., Malovana, S., Perez, J. P., Borges, T., & Montelongo, F. G. (2001). Separation of phenolic compounds by high-performance liquid chromatography with absorbance and fluorimetric detection. Journal of Chromatography A, 912(2), 249-257.‏

Chaira, N., Smaali, M. I., Martinez-Tomé, M., Mrabet, A., Murcia, M. A., & Ferchichi, A. (2009). Simple phenolic composition, flavonoid contents and antioxidant capacities in water-methanol extracts of Tunisian common date cultivars (Phoenix dactylifera L.). International journal of food sciences and nutrition, 60(sup7), 316-329.‏

Ahmed, A. A., Mabry, T. J., & Matlin, S. A. (1989). Flavonoids of the flowers of Silybum marianum. Phytochemistry, 28(6), 1751-1753.‏

Lv, Y., Gao, S., Xu, S., Du, G., Zhou, J., & Chen, J. (2017). Spatial organization of silybin biosynthesis in milk thistle [Silybum marianum (L.) Gaertn]. The Plant Journal, 92(6), 995-1004.‏

Martin, R. J., Lauren, D. R., Smith, W. A., Jensen, D. J., Deo, B., & Douglas, J. A. (2006). Factors influencing silymarin content and composition in variegated thistle (Silybum marianum). New Zealand Journal of Crop and Horticultural Science, 34(3), 239-245.‏

Ekalu, A., & Habila, J. D. (2020). Flavonoids: isolation, characterization, and health benefits. Beni-Suef University Journal of Basic and Applied Sciences, 9(1), 1-14.‏

Egert, S., & Rimbach, G. (2011). Which sources of flavonoids: complex diets or dietary supplements?. Advances in Nutrition, 2(1), 8-14.‏

Tiwari, S. C., & Husain, N. I. S. R. E. E. N. (2017). Biological activities and role of flavonoids in human health–A. Indian J Sci Res, 12(2), 193-6.‏

Alsamarrai, Z. A. A. S., Al-Samarrai, R. R., & Alsamarrai, A. (2020). Isolation and Identification of Flavonoids from Arctium Lappa Stem and Study the Hepato Protective Effect on Acetaminophen Induced Liver Damage. International Journal of Psychosocial Rehabilitation, 24(05).‏

Al-Salihi, F. G., Majeed, A. H., & Hameed, R. R. (2013). Hypolipidemic effect of date palm pollen and isolated flavonoids in sera of adult male rabbits. Kerbala Journal of Pharmaceutical Sciences, 5, 34-45.‏

Ullah, A., Munir, S., Badshah, S. L., Khan, N., Ghani, L., Poulson, B. G., Emwas, A. H., & Jaremko, M. (2020). Important Flavonoids and Their Role as a Therapeutic Agent. Molecules (Basel, Switzerland), 25(22), 5243. https://doi.org/10.3390/molecules25225243

Wang, Y. J., Zhang, H. Q., Han, H. L., Zou, Y. Y., Gao, Q. L., and Yang, G. T. (2017). Taxifolin enhances osteogenic differentiation of human bone marrow mesenchymal stem cells partially via NF-kappaB pathway. Biochem. Biophys. Res. Commun. 490, 36–43.

Muramatsu, D., Uchiyama, H., Kida, H., & Iwai, A. (2020). In vitro anti-inflammatory and anti-lipid accumulation properties of taxifolin-rich extract from the Japanese larch, Larix kaempferi. Heliyon, 6(12), e05505.‏

Haque, M. W., Siddique, M. U. M., Bose, P., & Pattanayak, S. P. (2018). Taxifolin possesses anti-cancer activity on the 7, 12-Dimethylbenz (a) anthracene-Induced breast cancer in the sprague dawley rats by remodeling nuclear factor Erythroid 2-Kelch-Like ECH-Associated Protein 1-Heme Oxygenase 1 and anti-oxidant pathways. Pharmacognosy Magazine, 14(55), 110.‏

Shubina, V. S., Kozina, V. I., & Shatalin, Y. V. (2021). Comparison of antioxidant properties of a conjugate of taxifolin with glyoxylic acid and selected flavonoids. Antioxidants, 10(8), 1262.‏

Okkay, U., Ferah Okkay, I., Cicek, B., Aydin, I. C., & Ozkaraca, M. (2022). Hepatoprotective and neuroprotective effect of taxifolin on hepatic encephalopathy in rats. Metabolic Brain Disease, 1-16.‏

Muramatsu, D., Uchiyama, H., Kida, H., & Iwai, A. (2020). In vitro anti-inflammatory and anti-lipid accumulation properties of taxifolin-rich extract from the Japanese larch, Larix kaempferi. Heliyon, 6(12), e05505.‏

Viktorová, J., Dobiasová, S., Řehořová, K., Biedermann, D., Káňová, K., Šeborová, K., ... & Macek, T. (2019). Antioxidant, anti-inflammatory, and multidrug resistance modulation activity of silychristin derivatives. Antioxidants, 8(8), 303.‏

Maiti, T. K., Ghosh, K. S., Samanta, A., & Dasgupta, S. (2008). The interaction of silibinin with human serum albumin: A spectroscopic investigation. Journal of Photochemistry and Photobiology A: Chemistry, 194(2-3), 297-307.‏

Published

18-05-2022

How to Cite

Al-Samarrai, R. R. H. ., Abdulsahib, M. M., & Abdulsahib, N. A. M. (2022). Identification and isolation of flavonoids from Iraqi Silybum marianum L.flowers by HPLC. International Journal of Health Sciences, 6(S1), 10561–10570. https://doi.org/10.53730/ijhs.v6nS1.7542

Issue

Section

Peer Review Articles