DOI QR코드

DOI QR Code

황기의 연근 별 성분과 생리 활성에 미치는 영향

Components of Astragali Radix at Various Ages and Their Effects of Physiological Activity

  • 이장천 (부산대학교 한의학전문대학원) ;
  • 성대동 (고려대학교 세종캠퍼스 신소재화학과) ;
  • 하우람 (부산대학교 한의학전문대학원) ;
  • 이부균 (부산대학교 한의학전문대학원)
  • Lee, Jang-Cheon (School of Korean Medicine, Pusan National University) ;
  • Sung, Dae Dong (Department of Advanced Materials Chemistry, Sejong Campus, Korea University) ;
  • Ha, Uram (School of Korean Medicine, Pusan National University) ;
  • Lee, Boo-Kyun (School of Korean Medicine, Pusan National University)
  • 투고 : 2018.11.07
  • 심사 : 2018.11.30
  • 발행 : 2018.11.30

초록

Objectives : Astragali Radix is known as a perennial plant, and it is estimated that there may be differences in the contents and their components depending on the ages. The components of astragali radix may activate differently. Methods : The astragali radix components cultivated in Jecheon( one year ), Korea, Shanxi province( 7 years ), China, Inner Mongolia( 5 years) and Inner Mongolia ( 8 years ) were extracted with pure ethyl alcohol and identified the component molecules. The extracted components of astragali radix were measured the activity of Telomerase for confirmation of their Telomere lengths. Results : The cell activity has been shown the greatest contribution in astragali radix of Inner Mongolia(8 years). Although there is the difference in cell activity between the two products of the 5 and 7 years, the difference between the values was small and the 7 years product was slightly higher than 5 years product. Conclusions : Total Astragaloside contents were highest in the product of Inner Mongolia(8 years), followed by the 7 year product of Shanxi province. Especially, astragaloside and cycloastragenol (TA-65) among the astragali radix components have shown to be increased Telomerase activity in the DNA metabolism of the cells, and the efficacy depends on the ages of growth.

키워드

HBBJBB_2018_v26n4_319_f0001.png 이미지

Fig. 1 Cycloastragenol (TA-65) (Scheme 1)

Table 1. Comparison of Chemical Components of Astragali Radix on the Number of Years and Cultivated Area

HBBJBB_2018_v26n4_319_t0001.png 이미지

Table-2. Comparison of Mean Activity* of Telomerase based on TA-65 Standard

HBBJBB_2018_v26n4_319_t0002.png 이미지

참고문헌

  1. Ministry of Food and Drug Safety. Korean Pharmacopeia, Monographs, Part II. 2018:131-132.
  2. Sung Hee Min, Ok Jin Park. Quality Characteristics of Yanggaeng Prepared with Different Amounts of Astragalus membranaceus Powder. J East Asian Soc Dietary Life. 2008;18(1):9-13.
  3. Chan-Sung Park, Dong-Han Kim, Mi-Lim Kim. Biological Activities of Extracts from Cornifructus, Astragalus membranaceus and Glycyrrhiza uralensis., Kor. J. Herbology. 2008;23(1):93-101.
  4. Yu Yin, Seong-Il Heo, Mee Jung Jung, and Myeong-Hyeon Wang. Antioxidant and Antidiabetic Effects of Various Sections of Astragalus membranaceus. Kor. J. Pharmacognosy. 2009;40(1):1-5.
  5. Auyeung K. K., Han Q. B., Ko J. K. Astragalus membranaceus; A Review of Its Protection Against Inflammation and Gastrointestinal Cancer. American Journal of Chinese Medicine. 2016;44(1):1-22. https://doi.org/10.1142/S0192415X16500014
  6. Liu, P., Zhao, H., Luo, Y. Anti-aging Implications of Astragalus Membranaceus (Huangqi):A Well-known Chinese Tonic. Aging and Disease. 2017;8(6):868-886. https://doi.org/10.14336/AD.2017.0816
  7. Brenda, Molgora, Riley Bateman, Hector F. Valenzuela. Functional Assessment of Pharmacological Telomerase Activators in Human T Cells. Cells. 2013;2(1):57-66. https://doi.org/10.3390/cells2010057
  8. Qin, Q., Niu, J., Wang, Z., Xu, W., Qiao, Z., Gu, Y. Astragalus Membranaceus Extract Activates Immune Response in Macrophages via Heparanase. Molecules. 2012;17(6):7232-7240. https://doi.org/10.3390/molecules17067232
  9. Shahzad M. , Shabbir A., Wojcikowski K., Wohlmuth H., Gobe GC. The Antioxidant Effects of Radix Astragali (Astragalus membranaceus and Related Species) in Protecting Tissues from Injury and Disease. Curr Drug Targets. 2016;17(12):1331-40. https://doi.org/10.2174/1389450116666150907104742
  10. Bao-Mei Shao, Wen Xu, Hui Dai, Pengfei Tu, Zhongjun Li, Xiao-Ming Gao. A study on the immune receptors for polysaccharides from the roots of Astragalus membranaceus, a Chinese medicinal herb. Biochemical and Biophysical Research Communications. 2004;320:1103-1111. https://doi.org/10.1016/j.bbrc.2004.06.065
  11. Sen, P., Shah, P. P., Nativio, R., Berger, S. L. Epigenetic Mechanisms of Longevity and Aging. Cell. 2016;166:822-839. https://doi.org/10.1016/j.cell.2016.07.050
  12. Lu, Y., Biancotto, A., Cheung F., Remmers, E., Shah, N., McCoy, J. P. Systematic Analysis of Cell-to-Cell Expression Variation of T Lymphocytes in a Human Cohort Identifies Aging and Genetic Associations. Immunity. 2016;45(5):1162-1175. https://doi.org/10.1016/j.immuni.2016.10.025
  13. Moyzis, R. K., Buckingham, J. M., Cram, L. S., Dani, M., Deaven, L. L. Jones, M. D., Wu, J. R. A Highly Conserved Repetitive DNA Sequence, (TTAGGG)n, Present at the Telomeres of Human Chromosomes. Proceedings of the National Academy of Sciences of the United States of America. 1998;(85):6622-6626.
  14. Alison, J., Montpetit, Areej, A., Alhareeri, B. S., Colleen, K., Jackson-Cook. Telomere Length: A Review of Methods for Measurement. Nurs Res. 2014;63(4):289-299. https://doi.org/10.1097/NNR.0000000000000037
  15. Goodell, M. A., Rando, T. A. Stem Cells and Healthy Aging. Science. 2015;350(6265):1199-1204. https://doi.org/10.1126/science.aab3388
  16. Wang, Y., Hekimi, S. Mitochondrial Dysfunction and Longevity in Animals:Untangling knot. Science. 2015;350(6265):1204-1207. https://doi.org/10.1126/science.aac4357
  17. Finkel, T. The Metabolic Regulation of Aging. National Medicine. 2015;21(12):1416-1423. https://doi.org/10.1038/nm.3998
  18. Liang J., Jiang C., Peng H., Shi Q., Guo X., Yuan Y., Huang L. Analysis of the age of Panax ginseng based on telomere length and telomerase activity. Sci Rep. 2015;5:7985. https://doi.org/10.1038/srep07985
  19. Kyung-ran Im, Mi-Jin Kim, Teak-Kyu Jung, and Kyung-Sup Yoon. Analysis of Isoflavonoid Contents in Astragalus membranaceus Bunge Cultivated in Different Areas and at Various Ages. KSBB. 2010;25:271-276.
  20. Lian-Qun Qui, Wi S. Lai, Deborah J. Stumpo, Perry J. Blackshear. Mouse Embryonic Fibroblast Cell Culture and Stimulation. Bio-Protocol. 2017; 6 (13):e1859.
  21. Hiroyuki Tanaka, Takanori Maruta, Shigeru Shigeoka. Identification and Characterization of Arabidopsis AtNUDX9 as a GDP-d-mannose Phyrophosphohydrolase:Its Involvement in Root Growth Inhibition in Response to Ammonium. Journal of Experimental Botany. 2015; 66(19):5797-5808. https://doi.org/10.1093/jxb/erv281
  22. Vandana Sharma, Mie Ichikawa, Hudson H. Freeze. Mannose Metabolism:More than Meets The Eye. Biochemical and Biophysical Research Communications. 2014;453(2):220-228. https://doi.org/10.1016/j.bbrc.2014.06.021
  23. Lisa, Y. Young, Wing See Lam, Maurice, K. C. Ho, Yuequing Hu, Fanny C. F. Ip, Haihong Pang, Allison, C. Chin, Calvin, B, Harley, Nancy, Y, Ip, Yung, H. Wong. Astragaloside IV and Cycloastragenol Stimulate the Phosphorylation of Extracellualr Signal-Regulated Protein Kinase in Multiple Cell Types. Biological and Pharmacological Activity. 2012;78(2):112-121.
  24. Sultana Rasheed, Khurram Bashir, Jong-Myong Kim, Marina Ando, Maho Tanaka, Motoaki Seki. The Modulation of Acetic Acid Pathway Genes in Arabidopsis Improves Survival Under Drought Stress. Scientific Reports. 2018;8:7831-7846. https://doi.org/10.1038/s41598-018-26103-2
  25. Sisir Ghosh, Pallab Ghosh, Maiti, T. K. Production and Metabolism of Indole Acetic Acid (IAA) by Root Nodule Bacteria (Rhizobium): A Review. Journal of Pure and Applied Microbiology. 2011;5(2):523-540.
  26. National Toxicology Program U. S. Department of Health and Human Service. Toxicity Effects. CAS Registry Number:64-19-7 Acetic Acid. 2009.https://tools.niehs.nih.gov/cebs3/ntpviews/index.cfm?action=testarticle.toxicity&cas_number=64-19-7. (accessed at Nov.30,2018)
  27. Arpad Dobolyi, Gabor Juhasz, Zsolt Kovacs, Julianna Kardos. Uridine Function in the Central Nervous System. Current Topics in Medicinal Chemistry. 2011;11:1058-1067. https://doi.org/10.2174/156802611795347618
  28. Joanna Folwarczna, Aleksandra Janas, Martin Gajdos. Effects of Trigonelline, An Alkaloid Present in Coffee on Diabetes-Induced Disorder in the Rat Skeletal System. Nutrients. 2016;8:133-145. https://doi.org/10.3390/nu8030133
  29. Miglio, F., Rovati, L. C., Santoro, A., Setnikar, I. Efficacy and Safety of Oral Betaine Glucuronate in non-Alcoholic Steatohepatitis. A Double-Blind, Randomized, Paralled-Group Placebo-Controlled Prospective Clinical Study. Arzneimittelforschung. 2000;50(8):722-727. https://doi.org/10.1055/s-0031-1300279
  30. Li, L., Hou, X., Xu, R., Liu, C., Tu, M. Research Review on the Pharmacological Effects of Astragaloside IV. Fundamental Clinic Pharmacology. 2017;31(1):17-36. https://doi.org/10.1111/fcp.12232