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영지 균주별 생육특성, 생리활성, 영양성분 및 당 성분 함량 비교

Comparisons of growth characteristics, biological activities, nutritional contents, and sugar contents of Ganoderma spp. strains

  • 안기홍 (농촌진흥청 국립원예특작과학원 인삼특작부 버섯과) ;
  • 한재구 (농촌진흥청 국립원예특작과학원 인삼특작부 버섯과) ;
  • 조재한 (농촌진흥청 국립원예특작과학원 인삼특작부 버섯과)
  • An, Gi-Hong (Mushroom Research Division, National Institute of Horticultural and Herbal Science, RDA) ;
  • Han, Jae-Gu (Mushroom Research Division, National Institute of Horticultural and Herbal Science, RDA) ;
  • Cho, Jae-Han (Mushroom Research Division, National Institute of Horticultural and Herbal Science, RDA)
  • 투고 : 2020.07.15
  • 심사 : 2020.09.09
  • 발행 : 2020.09.30

초록

본 연구에서는 국내외에서 수집한 영지 유전자원에 대한 평가를 위하여 균주별 생육특성을 분석하였고, 영지의 항산화 활성과 관련이 있는 생리활성 성분, 베타글루칸 함량, 필수 및 비필수 아미노산 성분, 단당류, 이당류 및 당알콜 등의 당 성분 함량을 분석하였다. 14종의 영지 중 갓의 크기, 수확량 등을 고려하여 생육특성이 우수한 균주는 KMCC02960 (G. meredithae), KMCC02932 (G. tropicum)이었다. 14종의 영지 70% 에탄올 추출물 1 mg/ml 농도에서의 DPPH 라디컬 소거능은 53.1% ~ 79.4%를 나타냈으며, 그 중에서 KMCC02932 (G. tropicum) 균주가 가장 높은 소거활성을 나타냈으며, 아질산염 소거능은 영지1호인 KMCC02824 (G. lucidum)와 KMCC02852 (G. neo-japonicum)가 각각 69.5%와 63.2%로 높은 소거활성을 보였다. 총 폴리페놀의 함량은 영지1호인 KMCC02824 (G. lucidum)와 KMCC02852 (G. neojaponicum)가 각각 38.0 mg GAE/g와 37.8 mg GAE/g로 다른 균주에 비하여 높은 함량치를 보였다. 14종의 영지 중에서 높은 베타글루칸 함유량을 보이는 균주는 32.95%의 KMCC02852 (G. neo-japonicum)와, 33.43%의 KMCC03018 (G. lingzhi)이었다. 4종류의 단당류와 2종류의 이당류, 4종류의 당알콜류 분석결과, 모든 성분이 검출된 영지 균주는 KMCC02996 (G. weberianum)과 KMCC03018 (G. lingzhi)이었으며, 총 아미노산과 총 필수아미노산 함량이 높은 균주는 KMCC02932 (G. tropicum)로 티로신(Tyr), 페닐알라닌(Phe) 성분함량이 높게 검출되었으며, 균주별로 성분함량 차이가 있었으나 시스테인(Cys), 티로신(Tyr), 페닐알라닌(Phe) 성분이 다른 성분에 비하여 높게 검출되었다. 위와 같은 결과를 바탕으로 우수 유전자원을 선발하는데 기초자료로서의 활용도가 높으리라 기대되며, 추후 영지 고유의 유용성분인 가노데릭산(ganoderic acid) 등의 분석을 통하여 기능성 소재에 관한 연구를 진행하려 한다.

This study was carried out to compare the growth characteristics, biological activities, β-glucan contents, sugar contents, and amino acid contents of 14 strains of Ganoderma spp. Among the 14 strains of Ganoderma spp., KMCC02960 (G. meredithae) and KMCC02932 (G. tropicum) showed excellent growth characteristics such as those with respect to the size and yield of fruiting bodies. The highest 2,2-diphenyl-1-picrylhydrazyl radical scavenging activity was observed in KMCC02932 (G. tropicum). The nitrite scavenging activities of KMCC02824 (G. lucidum) and KMCC02852 (G. neo-japonicum) were higher than those of the other strains. The total polyphenol contents of the extracts from KMCC02824 (G. lucidum) and KMCC02852 (G. neo-japonicum) were higher than those of the other strains. KMCC03018 (G. lingzhi) showed the highest β-glucan content of 33.4%. In an analysis of the 4 types of monosaccharides, 2 types of disaccharides, and 4 types of sugar alcohols, only KMCC02996 (G. weberianum) and KMCC03018 (G. lingzhi) were commonly detected out of the 14 strains of Ganoderma spp. Eighteen amino acids, including eight essential amino acids, were identified: the highest total amino acids and total essential amino acids were found in KMCC02932 (G. tropicum), which had the highest levels of tyrosine and phenylalanine. Although the contents of amino acids differed by strain, cysteine, tyrosine, and phenylalanine were the most abundant amino acids in the analyzed extracts.

키워드

참고문헌

  1. Ames BN. 1983. Dietary carcinogens and anticarcinogens. Oxygen radical and degenerative diseases. Science 221: 1256-1264. https://doi.org/10.1126/science.6351251
  2. Blois MS. 1958. Antioxidant determination by the use of a stable free radical. Nature 181: 1191-1200. https://doi.org/10.1038/1811199a0
  3. Breen WM. 1990. Nutritional and medicinal value of specialty mushrooms. J Food Prot 53: 883-894. https://doi.org/10.4315/0362-028X-53.10.883
  4. Brown GD, Gordon S. 2003. Fungal beta-glucans and mammalian immunity. Immunity 19: 311-315. https://doi.org/10.1016/S1074-7613(03)00233-4
  5. Chandrasekaran G, Oh DS, Shin HJ. 2011. Properties and potential applications of the culinary-medicinal cauliflower mushrooms, Sparassis crispa Wulf.:Fr. (Aphyllophoromycetideae): a review. Int J Med Mushrooms 13: 177-183. https://doi.org/10.1615/IntJMedMushr.v13.i2.100
  6. Chang TT, Chen T. 1986. Studies on nuclear behavior, mating type and heterokaryosis of several species of Ganoderma in Taiwan. Plant Prot Bull (Taiwan) 28: 231-240.
  7. Cho JH, Lee GH, Han JG, Kim DH, Jhune CS. 2015. Comparative analysis of nitrite scavenging activity and anti-inflammation effects in the fruiting bodies of medicinal mushrooms. J Mushrooms 13: 330-333. https://doi.org/10.14480/JM.2015.13.4.330
  8. Cho JH, Park HS, Han JG, Lee GH, Sung GH, Jhune CS. 2014. Comparative analysis of total sugar and sugar alcohol contents of the fruiting bodies in edible and medicinal mushrooms. J Mushrooms 12: 316-323. https://doi.org/10.14480/JM.2014.12.4.316
  9. Cho JH, Lee JY, Lee MJ, Oh HN, Kang DH, Jhune CS. 2013. Comparative analysis of useful $\beta$-glucan and polyphenol in the fruiting bodies of Ganoderma spp. J Mushrooms Sci Pro 11: 164-170. https://doi.org/10.14480/JM.2013.11.3.164
  10. Cho JH, Noh HJ, Kang DH, Lee JY, Lee MJ, Park HS, Sung GH, Jhune CS. 2012. Antioxidant activity and cancer cell growth inhibition of Ganoderma lucidum. J Mushroom Sci Pro 10: 203-207.
  11. Cho SH, Chung CE, Kim Sh, Chung HK. 2007. Establishment of total sugar reference value for Koreans. Korean J Nutr 40: 3-8.
  12. Choi DB, Cho KA, Na MS, Choi HS, Kim YO, Lim DH, Cho SJ, Cho H. 2008. Effect of bamboo oil on antioxidative activity and nitrite scavenging activity. J Ind Eng Chem 14: 765-770. https://doi.org/10.1016/j.jiec.2008.06.005
  13. Choi JS, Park SH, Choi JH. 1989. Nitrite scavenging effect by flavonoids and its structure-effect relationship. Arch Pharm Res 12: 26-33. https://doi.org/10.1007/BF02855742
  14. Choi MH, Han HK, Lee YJ, Jo HG, Shin HJ. 2014. In vitro anti-cancer activity of hydrophobic fractions of Sparassis latifolia extract using AGS, A529, and HepG2 cell lines. J Mushrooms 12: 304-310. https://doi.org/10.14480/JM.2014.12.4.304
  15. Choi SJ, Lee YS, Kim JK, Kim JK, Lim SS. 2010. Physiological activities of extract from edible mushrooms. J Korean Soc Food Sci Nutr 39: 1087-1096. https://doi.org/10.3746/jkfn.2010.39.8.1087
  16. Chung SY, Kim NK, Yoon S. 1999. Nitrite scavenging effect of methanol fraction obtained from green yellow vegetable juices. J Korean Soc Food Sci Nutr 28: 342-347.
  17. Daniel JS, Steven AC. 1993. Sensitive analysis of cystine/cysteine using 6-aninoquinoquinoly-N-hydroxysuccinimidy carbamate (AQC) derivatives. Tech Protein Chem 4: 299-306.
  18. David A. 1986. Mushrooms demystified. Ten Speed Press, Inc., New York, USA.
  19. Duncan DB. 1955. Multiple range and multiple F-test. Biometrics 11: 1-5. https://doi.org/10.2307/3001478
  20. Folin O, Denis W. 1912. On phosphotungstic-phosphomolybdic compounds as color reagents. J Biol Chem 12: 239-243. https://doi.org/10.1016/S0021-9258(18)88697-5
  21. Fridovich I. 1986. Biological effects of the superoxide radical. Arch Biophys 247: 1-11. https://doi.org/10.1016/0003-9861(86)90526-6
  22. Gardner PR, Fridovich I. 1991. Superoxide sensitivity of Escherichiacoli 6-phosphogluconate dehydratase. J Biol Chem 266: 1478-1783. https://doi.org/10.1016/S0021-9258(18)52319-X
  23. Gillbertson RL, Ryvarden L. 1986. North American polypores, Vol. 1. Abortiporus-Lindtneria. Fungiflora A/S. Oslo, Norway.
  24. Gray JI, Dugan Jr LR. 1975. Inhibition of N-nitrosamine formation in model food systems. J Food Sci 40: 981-984. https://doi.org/10.1111/j.1365-2621.1975.tb02248.x
  25. Harada T, Miura NN, Adachi Y, Nakajima M, Yadomae T, Ohno N. 2002. $IFN-{\gamma}$ induction by SCG, 1,3-$\beta$-D-glucan from Sparassis crispa, DBA/2 mice in vitro. J Interferon Cytokine Res 22: 1227-1239. https://doi.org/10.1089/10799900260475759
  26. Hong JS, Kim YH, Kim MK, Sohn HS. 1989. Contents of free amino acids and total amino acids in Agaricus bisporus, Pleurotus ostreatus and Lentinus edodes. Korean J Food Sci Technol 55: 466-475.
  27. Hui YF, Den ES, Chi TH. 2002. Antioxidant and free radical scavenging activities of edible mushrooms. J Food Lipids 9: 35-46. https://doi.org/10.1111/j.1745-4522.2002.tb00206.x
  28. Hwang YJ, Nam HK, Chang MJ, Noh GW, Kim SH. 2003. Effect of Lentinus edodes and Pleurotus eryngii extracts on proliferation and apoptosis in human colon cancer cell lines. J Korean Soc Food Sci Nutr 32: 217-222. https://doi.org/10.3746/jkfn.2003.32.2.217
  29. Jeong EJ, Sung SH, Kim J, Kim SH, Kim YC. 2008. Rhus vemiciflua stokes attenuates glutamate-induced neurotoxicity in primary cultures of rat cortical cells. Natural Pro Sci 14: 156-160.
  30. Joung EM, Hwang IG, Lee HY, Jeong JH, Yu KW, Jeong HS. 2009. Changes of saponin and $\beta$-glucan content on the cultured ginseng with mushroom mycelia. J Korean Soc Food Sci Nutr 38: 1084-1089. https://doi.org/10.3746/jkfn.2009.38.8.1084
  31. Kang TS, Kang MS, Sung JM, Kang AS, Shon HR, Lee SY. 2001. Effect of Pleurotus eryngii on the blood glucose and cholesterol in diabetic rats. Kor J Mycol 29: 86-90.
  32. Kim KJ, Im SB. Yun KW, Je HS. Ban SE, Jin SW, Jeong SW, Koh YW, Cho IK, Seo KS. 2017. Content of proximate compositions, free sugars, amino acids, and minerals in five Lentinula edodes cultivars collected in Korea. J Mushrooms 15: 216-222.
  33. Kim MY, Chung IM, Lee SJ, Ahn JK, Kim EY, Kim MJ, Kim SL, Moon SH, Ro HM, Kang E, Seo SH, Song HK. 2009. Comparison of free amino acid, carbohydrates concentrations in Korean edible and medicinal mushrooms. Food Chem 113: 386-393. https://doi.org/10.1016/j.foodchem.2008.07.045
  34. Kim MY. 2006. Comparison of free amino acids, mono and disaccharides, and phenolic compounds concentration, and antioxidant activities on edible and medicinal mushrooms. MS Thesis. Konkuk University. pp. ###. Seoul, South Korea.
  35. Kim SC, Kim HS, Cho YU, Ryu JS, Cho SJ. 2015. Development of strain-specific SCAR marker for selection of Pleurotus eryngii strains with higher $\beta$-glucan. J Mushroom Sci Prod 13: 79-83. https://doi.org/10.14480/JM.2015.13.1.79
  36. Kwon JH, Byun MW, Cho HO, Kim YJ. 1987. Effect of chemical fumigant and ${\gamma}-rays$ on the physicochemical properties of dried oak mushrooms. Kor J Food Sci Technol 19: 273-278.
  37. Lee HJ, Do JR, Chung MY, Kim HK. 2014. Antioxidant activities of Pleurotus cornucopiae extracts by extraction ondition. J Korean Soc Food Sci Nutr 43: 836-841. https://doi.org/10.3746/jkfn.2014.43.6.836
  38. Lee YL, Jian SY, Mau JL. 2009. Composition and non-volatile taste components of Hypsizigus marmoreus. Food Sci Technol 42: 594-598.
  39. Mau JL, Lin HC, Chen CC. 2001. Non-volatile components of several medicinal mushrooms. Food Res Int 34: 521-526. https://doi.org/10.1016/S0963-9969(01)00067-9
  40. Ohno N, Miura NN, Nakajima M, Yadomae T. 2000. Antitumor 1,3-$\beta$-glucan from cultured fruit body of Sparassis crispa. Biol Pharm Bull 23: 866-872. https://doi.org/10.1248/bpb.23.866
  41. Park WH, Lee JH. 2011. New wild fungi of Korea. Kyohak Publishing Co., Ltd., Seoul, South Korea.
  42. Park YA, Bak WC, Ka KH, Koo CD. 2017. Comparative analysis of amino acid content of Lentinula edodes, a new variety of shiitake mushroom, in 'Poongnyunko'. J Mushrooms Sci 15: 31-37. https://doi.org/10.14480/JM.2017.15.1.31
  43. Park YJ, Nam JY, Yoon DE, Kwon OC, Kim HI, Yoo YB, Kong WS, Lee CS. 2013. Comparison of anti-inflammatory, antioxidant and anti-allergic effects of Ganoderma species mycelial extracts. J Mushroom Sci Pro 11: 111-115. https://doi.org/10.14480/JM.2013.11.2.111
  44. Park YM, Sohn CM, Jang HC. 2006. Correlation of carbohydrate intake with obesity in type 2 diabetes mellitus patients. J Korean Diet Assoc 12: 254-263.
  45. Qi Y, Zhao X, Lim YL, Park KY. 2013. Antioxidant and anticancer effects of edible and medicinal mushrooms. J Korean Soc Food Sci Nutr 42: 655-662. https://doi.org/10.3746/jkfn.2013.42.5.655
  46. Seo HC. 2012. Purification and characterization of anti-complementary polysaccharide from Phellinus linteus mycelia. Kor J Mycol 40: 109-113. https://doi.org/10.4489/KJM.2012.40.2.109
  47. Sliva D. 2010. Medicinal mushroom Phellinus linteus as an alternative cancer therapy. Exp Ther Med 1: 407-411. https://doi.org/10.3892/etm_00000063
  48. Sohn HY, Shin YK, Kim JS. 2010. Anti-proliferative activities of solid-state fermented medicinal herbs using Phelimus baumii against human colorectal HCT116 cell. J Life Sci 20: 1268-1275. https://doi.org/10.5352/JLS.2010.20.8.1268
  49. Song KS, Cho SM, Lee JH, Kim HM, Han SB, Ko KS, Yoo ID. 1995. B-lymphocyte stimulating polysaccharide from mushroom Phellinus linteus. Chem Pharm Bull 43: 2105-2108. https://doi.org/10.1248/cpb.43.2105
  50. Yang JH, Lin HC, Mau JL. 2001. Non-volatile taste components of several commercial mushrooms. Food Chem 72: 465-471. https://doi.org/10.1016/S0308-8146(00)00262-4
  51. Zhao JD, Xu LW, Zhang XQ. 1983. Taxonomic studies on the family Ganodermataceae of China II, Acta Mycol Sin 2: 159-167.