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Antioxidant Properties of Lentinula edodes after Sawdust Bag Cultivation with Different Oak Substrates

참나무 수종별 톱밥재배에 따른 표고의 항산화 특성

  • Seo, Sooyoung (Wood Chemistry and Microbiology Division, National Institute of Forest Science) ;
  • Park, Youngae (Wood Chemistry and Microbiology Division, National Institute of Forest Science) ;
  • Jang, Yeongseon (Wood Chemistry and Microbiology Division, National Institute of Forest Science) ;
  • Ka, Kang-Hyeon (Wood Chemistry and Microbiology Division, National Institute of Forest Science)
  • 서수영 (국립산림과학원 화학미생물과) ;
  • 박영애 (국립산림과학원 화학미생물과) ;
  • 장영선 (국립산림과학원 화학미생물과) ;
  • 가강현 (국립산림과학원 화학미생물과)
  • Received : 2017.02.01
  • Accepted : 2017.05.11
  • Published : 2017.06.01

Abstract

We evaluated the antioxidant properties of Lentinula edodes upon sawdust bag cultivation with 5 oak substrates: Quercus acutissima, Q. mongolica, Q. serrata, Q. aliena, and Q. variabilis. We found that the optimal extraction conditions were 70% (v/v) methanol shaken at 150 rpm at $25^{\circ}C$ and 150 rpm for 24 h. The methanolic extracts from L. edodes contained high phenolic and flavonoid contents, they also exhibited stronger antioxidant activities. The total phenolic contents and total flavonoid contents of the mushroom extracts ranged from 2.37 to 3.12 milligrams of gallic acid equivalents per gram of dried mushroom (mg GAE/g) and 0.48 to 0.48 milligrams of quercetin equivalents per gram of dried mushroom (mg QE/g), respectively. In addition, the mushroom extracts exhibited 2,2-diphenyl-1-picrylhydrazyl radical scavenging activity (15.8% to 89.4%) at 2 to 10 mg/mL, ferric reducing antioxidant power (0.153 to 0.425) at 5 to 20 mg/mL, and reducing power (0.078 to 0.359) at 5 to 20 mg/mL, respectively. Q. aliena more effectively increased total phenolic contents, total flavonoid contents, and antioxidant activities than the other oak substrates.

본 연구에서는 참나무 수종을 달리하여 톱밥재배한 표고의 항산화 활성을 알아보기 위해 건조된 표고를 70% methanol로 추출하여 총 폴리페놀 함량, 총 플라보노이드 함량, 2,2-Diphenyl-1-picrylhydrazyl (DPPH) 라디칼 소거활성, ferric reducing antioxidant capacity(FRAP), reducing power를 측정하였다. 총 폴리페놀 함량과 총 플라보노이드 함량을 측정한 결과, 갈참나무로 톱밥재배 한 표고가 3.12 mg GAE/g과 0.84 mg QE/g으로 다른 수종에 비해 가장 높게 나타났다. DPPH 라디칼 소거활성 측정 결과, 10 mg/mL일 때 다른 수종에서 재배한 표고에 비해 갈참나무(89.4%)와 상수리나무(87.9%)에서 가장 높았다. FRAP은 갈참나무일 때 0.425로 가장 높게 나타났고, reducing power도 역시 갈참나무에서 0.359로 가장 높게 나타내었다. 참나무 수종에 따른 표고의 항산화 활성은 갈참나무로 톱밥재배한 것이 가장 우수한 것으로 나타났다. 본 연구의 결과로 동일한 균주를 이용하더라도 톱밥재료에 따라 표고의 항산화 활성이 차이가 있다는 것을 확인할 수 있었다.

Keywords

References

  1. Kim SM, Kim DY, Park HR, Seo JH, Yeom BM, Jin YJ, Pyo YH. Screening the antioxidant components and antioxidant activitiy of extracts derived from five varieties of edible spring flowers. Korean J Food Sci Technol 2014;46:13-8. https://doi.org/10.9721/KJFST.2014.46.1.13
  2. Islam T, Yu X, Xu B. Phenolic profiles, antioxidant capacities and metal chelating ability of edible mushrooms commonly consumed in China. LWT Food Sci Technol 2016;72:423-31. https://doi.org/10.1016/j.lwt.2016.05.005
  3. Kues U, Liu Y. Fruiting body production in basidiomycetes. Appl Microbiol Biotechnol 2000;54:141-52. https://doi.org/10.1007/s002530000396
  4. Boonsong S, Klaypradit W, Wilaipun P. Antioxidant activities of extracts from five edible mushrooms using different extractants. Agric Nat Resour 2016;50:89-97.
  5. Lee WH, Kim IY, Ko HG, Kim SC, Choi SG, Noh JH, Park HS. Cultural characteristics and formation of fruiting body in Lentinula edodes. J Mushrooms 2014;12:24-8. https://doi.org/10.14480/JM.2014.12.1.24
  6. Choi MY, Jung TY, Hahm KJ. Cytotoxic effects of hot water soluble polysaccharides from mushroom, Lentinus edodes and vitamin A & E supplementation against P388 cells. Korean J Nutr 1995;28:1091-9.
  7. Jiang T, Luo Z, Ying T. Fumigation with essential oils improves sensory quality and enhanced antioxidant ability of shiitake mushroom (Lentinus edodes). Food Chem 2015;172:692-8. https://doi.org/10.1016/j.foodchem.2014.09.130
  8. Tian Y, Zhao Y, Huang J, Zeng H, Zheng B. Effects of different drying methods on the product quality and volatile compounds of whole shiitake mushrooms. Food Chem 2016;197:714-22. https://doi.org/10.1016/j.foodchem.2015.11.029
  9. Lee CJ, Jhune CS, Cheong JC, Kong WS, Suh JS, Park GC, Park CG, Shin YS. Cultural characteristics of oyster mushroom (Pleurotus ostratus) on addition rate of Cudrania tricuspodata. J Mushroom Sci Prod 2012;10:129-35.
  10. Cheung LM, Cheung PC, Ooi VE. Antioxidant activity and total phenolics of edible mushroom extracts. Food Chem 2003;81:249-55. https://doi.org/10.1016/S0308-8146(02)00419-3
  11. Kim MJ, Chu WM, Park EJ. Antioxidant and antigenotoxic effects of shiitake mushrooms affected by different drying methods. J Korean Soc Food Sci Nutr 2012;41:1041-8. https://doi.org/10.3746/jkfn.2012.41.8.1041
  12. Woo KS, Lee JS, Ko JY, Song SB, Seo HI, Seo MC, Oh BG, Kwak DY, Nam MH, Oh IS, et al. Antioxidant compounds and antioxidant activities of different varieties of foxtail millet and proso millet according to cultivation time. J Korean Soc Food Sci Nutr 2012;41:302-9. https://doi.org/10.3746/jkfn.2012.41.3.302
  13. Woo KS, Seo HI, Lee YH, Kim HY, Ko JY, Song SB, Lee JS, Jung KY, Nam MH, Oh IS, et al. Antioxidant compounds and antioxidant activities of sweet potatoes with cultivated conditions. J Korean Soc Food Sci Nutr 2012;41:519-25. https://doi.org/10.3746/jkfn.2012.41.4.519
  14. Singleton VL, Rossi JA. Colorimetry of total phenolics with phosphomolybdicphosphotungstic acid reagents. Am J Enol Vitic 1965;16:144-58.
  15. Xu BJ, Chang SK. A comparative study on phenolic profiles and antioxidant activities of legumes as affected by extraction solvents. J Food Sci 2007;72:S159-66. https://doi.org/10.1111/j.1750-3841.2006.00260.x
  16. Blois MS. Antioxidant determination by the use of a stable free radical. Nature 1958;181:1199-200. https://doi.org/10.1038/1811199a0
  17. Benzie IF, Strain JJ. Ferric reducing antioxidant power assay: direct measure of total antioxidant activity of biological fluids and modified version for simultaneous measurement of total antioxidant power and ascorbic acid concentration. Methods Enzymol 1999;299:15-27.
  18. Oyaizu M. Studies on products of browning reactions: antioxidative activities of products of browning reaction prepared from glucosamine. Jpn J Nutr Diet1986;44:307-15. https://doi.org/10.5264/eiyogakuzashi.44.307
  19. Fu HY, Shieh DE, Ho CT. Antioxidant and free radical-scavenging activities of edible mushrooms. J Food Lipids 2002;9:35-43. https://doi.org/10.1111/j.1745-4522.2002.tb00206.x
  20. Park YK, Kim CW, Kim JH, Kim SH, Han SU, Choi YS. Antioxidant activity of pollens from Quercus spp. in Korea. J Apic 2015;30:299-306. https://doi.org/10.17519/apiculture.2015.11.30.4.299
  21. Siddhuraju P, Mohan PS, Becker K. Studies on the antioxidant activity of Indian Laburnum (Cassia fistula L.): a preliminary assessment of crude extracts from stem bark, leaves, flowers, and fruit pulp. Food Chem 2002:79:61-7. https://doi.org/10.1016/S0308-8146(02)00179-6
  22. Jung IC, Park S, Park KS, Ha HC, Kim SH, Kwon YI, Lee JS. Antioxidative effect of fruit body and mycelial extracts of Pleurotus ostreatus. Korean J Food Sci Technol 1996;28:464-9.
  23. Kim JO, Jung MJ, Choi HJ, Lee JT, Lim AK, Hong JH, Kim DI. Antioxidative and biological activity of hot water and ethanol extracts from Phellinus linteus. J Korean Soc Food Sci Nutr 2008;37:684-90. https://doi.org/10.3746/jkfn.2008.37.6.684
  24. Lee SO, Kim MJ, Kim DG, Choi HJ. Antioxidative activities of temperature - stepwise water extracts from Inonotus obliquus. J Korean Soc Food Sci Nutr 2005;34:139-47. https://doi.org/10.3746/jkfn.2005.34.2.139
  25. Xu XM, Jun JY, Jeong IH. A Study on the antioxidant activity of Hae-songi mushroom (Hypsizigus marmoreus) hot water extracts. J Korean Soc Food Sci Nutr 2007;36:1351-7. https://doi.org/10.3746/jkfn.2007.36.11.1351
  26. Kim SR, Kim MR. Physicochemical characteristics and antioxidant activity, antimutagenicity, and cytotoxicity of hot-water extract of Hericium erinaceus. Korean J Food Cook Sci 2012;28:569-77. https://doi.org/10.9724/kfcs.2012.28.5.569
  27. Rice-Evans CA, Miller NJ, Paganga G. Structure-antioxidant activity relationships of flavonoids and phenolic acids. Free Radic Biol Med 1996;20:933-56. https://doi.org/10.1016/0891-5849(95)02227-9
  28. Sarikurkcu C, Tepe B, Semiz DK, Solak MH. Evaluation of metal concentration and antioxidant activity of three edible mushrooms from Mugla, Turkey. Food Chem Toxicol 2010;48:1230-3. https://doi.org/10.1016/j.fct.2009.12.033
  29. Shimada K, Fujikawa K, Yahara K, Nakamura T. Antioxidative properties of xanthan on the autoxidation of soybean oil in cyclodextrin emulsion. J Agric Food Chem 1992;40:945-8. https://doi.org/10.1021/jf00018a005