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The Selection of Optimum Rice Species and Germanium Application Method for Production of Functional Rice with Germanium

게르마늄 함유 기능성 쌀 생산을 위한 최적 품종 및 게르마늄 시비 방법 선정

  • Lim, Jong-Sir (Division of Applied Life Science, Gyeongsang National University) ;
  • Seo, Dong-Cheol (Wetland Biogeochemistry Institute, Louisiana State University) ;
  • Park, Woo-Young (Division of Applied Life Science, Gyeongsang National University) ;
  • Cheon, Yeong-Seok (Division of Applied Life Science, Gyeongsang National University) ;
  • Park, Seong-Kyu (Division of Applied Life Science, Gyeongsang National University) ;
  • Lee, Seong-Tae (Gyeongnam-do Agricultural Research and Extension Services) ;
  • Park, Jong-Hwan (Yeongsan River Environmental Research Center) ;
  • Kim, Sang-Don (Yeongsan River Environmental Research Center) ;
  • Cho, Ju-Sik (Division of Applied Life and Environmental Sciences, Sunchon National University) ;
  • Heo, Jong-Soo (Division of Applied Life Science, Gyeongsang National University)
  • 임종서 (경상대학교 응용생명과학부) ;
  • 서동철 (루이지애나주립대 습지생물지구화학연구소) ;
  • 박우영 (경상대학교 응용생명과학부) ;
  • 천영석 (경상대학교 응용생명과학부) ;
  • 박성규 (경상대학교 응용생명과학부) ;
  • 이성태 (경상남도 농업기술원) ;
  • 박종환 (국립환경과학원 영산강물환경연구소) ;
  • 김상돈 (국립환경과학원 영산강물환경연구소) ;
  • 조주식 (순천대학교 생명환경과학부) ;
  • 허종수 (경상대학교 응용생명과학부)
  • Published : 2008.12.31

Abstract

To select of optimum rice species and germanium (Ge) application method for production of functional rice with Ge, the growth characteristics, Ge absorption and grain quality of rice plant were investigated under different rice species (Hopyungbyeo, Junambyeo, Ilmeebyeo and Dongjinbyeo) and Ge application method (soil application and foliar spray). The rice yield by soil application was higher in the order of Hopyungbyeo $\fallingdotseq$ Junambyeo > Ilmeebyeo >> Dongjinbyeo. On the other hand, the rice yield by foliar spray was higher in the order of Junambyeo >> Ilmeebyeo > Dongjinbyeo > Hopyungbyeo. The rice yield by soil application was higher than that by foliar spray regardless of rice species. For soil application, the Ge absorption in various parts of the rice was higher in the other of rice bran > brown rice > polished rice regardless of rice species. The Ge absorption of brown rice in Hopyungbyeo, Ilmeebyeo, Dongjinbyeo and Junambyeo by soil application was 14.5, 8.0, 11.6 and $10.4\;mg\;kg^{-1}$, respectively. In leaf, stem and root, the Ge absorption by foliar spray was higher than that by soil application, whereas, in rice bran, brown rice and polished rice, the Ge absorption by soil application was higher than that by foliar spray. The optimum rice species and Ge application method were demonstrated to be Hopyungbyeo and soil application, respectively, which provided suitable conditions for production of functional rice with Ge.

게르마늄 함유 기능성 쌀 생산을 위한 최적 품종 및 게르마늄 시비방법을 선정하기 위해 토양처리와 엽면처리로 게르마늄 시비방법을 달리하여 호평, 주남, 일미 및 동진벼 등 총4개 품종하에서 벼의 생육특성, 게르마늄 흡수 특성 및 쌀 품질특성을 각각 조사한 결과 벼의 생육은 호평벼가 타 품종에 비해 전반적으로 양호하였으며, 게르마늄 무처리와 토양처리시 벼의 생육은 엽면처리에 비해 양호하였다. 벼의 품종에 따른 쌀 생산량은 게르마늄 토양처리의 경우 호평 $\fallingdotseq$ 주남 > 일미 >> 동진벼 순이었으며, 엽면처리의 경우 주남 > 일미 $\fallingdotseq$ 호평 >> 동진벼 순이었다. 또한 쌀 생산량은 전반적으로 토양처리 > 엽면처리 순이었다. 벼 품종별 현미 중 게르마늄 함량은 토양처리의 경우 호평, 주남, 일미 및 동진벼가 각각 14.5, 8.0, 11.6 및 $10.4\;mg\;kg^{-1}$로 호평벼가 가장 높았고, 엽면처리의 경우도 유사한 경향이었다. 게르마늄의 흡수율은 전반적으로 엽면처리가 토양처리에 비해 높았으나 실제 주식으로 사용되는 현미나 백미 중의 게르마늄 흡수율은 토양처리가 엽면처리에 비해 약2배정도 높았다. 따라서 게르마늄 함유 기능성 쌀을 생산하기 위해서는 현미나 백미 중 게르마늄 흡수량을 증대시켜야 하므로 게르마늄 토양처리가 엽면처리에 비해 적합할 것으로 판단되며, 최적 품종은 호평벼이었다.

Keywords

References

  1. Obara, K., Saito, T., Sato, H., Yamakage, K., Watanabe, T., Kakizawa, M., Tsukamoto, T., Kobayashi, K., Hongo, M. and Yoshinaga, K. (1991) Germanium poisoning; clinical symptoms and renal damage caused by long-term intake of germanium. Japanese J. Medicine 30(1), 67-72 https://doi.org/10.2169/internalmedicine1962.30.67
  2. Iijima, M., Mugishima, M., Takeuchi, M., Uchiyama, S., Kobayashi, I. and Maruyama, S. (1990) A case of inorganic germanium poisoning with peripheral and cranial nephropathy. Myopathy and autonomic dysfunction 42(9), 851-856
  3. Jang, J. J., Cho, K. J., Lee, Y. S. and Bae, J. H. (1991) Modifying responses of allyl sulfide, indole- 3-carbinol and germanium in a rat multi-organ carcinogenesis model. Carcinogenesis 12(4), 691-695 https://doi.org/10.1093/carcin/12.4.691
  4. Mochizuki, H. and Kada, T. (1982) Antimutagenic effect of Ge-132 on $\gamma$-ray-induced mutation in Escherchia coli B/rWP2 trp-. Int. J. Radiat. Biol. 42(6), 653-659 https://doi.org/10.1080/09553008214551621
  5. Suzuki, F., Brutkiewicz, R. R. and Pollard, R. B. (1986) Cooperation of lymphokine(s) and marcophages in expression of antitumor activity of carboxyethylgermanium (Ge-132). Antitumor Res. 62(2), 177-182
  6. Aso, H., Suzuki, F., Yamaguchi, T., Hayashi, Y., Ebina, T. and Ishida, N. (1985) Induction of interferone and activation of NK cells and macrophages in mice by oral administration of Ge-12, and organic germanium compound. Microbiol. Immunol. 29(1), 65-74 https://doi.org/10.1111/j.1348-0421.1985.tb00803.x
  7. Dimartino, M. J. (1986) Antiarthritic and immunoregulatory activity of spirogermanium. J. Pharmacol. Exp. Ther. 236(1), 103-110
  8. Sasaki, K., Ishikawa, M., Monma, K. and Takayanagi, G. (1984) Effect of carboxyethylgermanium sesquioxide (Ge-132) on the acute inflammation and $CCl_4$ induced hepatic damage in mice. Pharmacometrics 27(6), 1119-1131
  9. Kumano, N., Nakai, Y., Ishikawa, T., Koinumaru, S., Suzuki, S. and Konno, K. (1978) Effect of carboxyethylgermanium sesquioxide in the methylcholathrene induced tumorigenesis. Sci. Rep. Res. Inst. Tohoku Univ. 25, 89-95
  10. Lee, H. M. and Chung, Y. (1991) Effect of organic germanium on metallothionnein inductin in liver and kindey of cadmium and mercury intoxicated rats. Yakhak Hoeji 35(2), 99-110
  11. Ho, C. C., Cherm, Y. F. and Lin, M. T. (1990) Effects of organogermanium compound 2-carboxyethylgermanium sesquioxide on cardiovascular function motor activity in rats. Pharmacology 41, 286-291 https://doi.org/10.1159/000138736
  12. Higuchi, I., Takahashi, K., Nakahara, K., Izumo, S., Nakagawa, M. and Osame, M. (1991) Experimental germanium myopathy. Acta -Neuropathol-(Berl), 82(1), 55-59 https://doi.org/10.1007/BF00310923
  13. Sanai, T., Oochi, N. and Okuda, D. (1990) Subacute nephrotoxicity of germanium dioxide in the experiment animal. Toxicol Apppl. Pharmacol. 103, 345-353 https://doi.org/10.1016/0041-008X(90)90234-L
  14. Lee, S. T. (2004) Characteristics of growth response and germanium absorption of crops in soil treated germanium. Doctor Thesis. Gyeongsang National University of Education, Korea
  15. Lee, S. T., Lee, Y. H., Lee, H. J., Cho, J. S. and Heo, J. S. (2005) Germanium Contentsof Soil and Crops in Gyeongnam Province. Korean J. Environ. Agric. 24(4), 404-408 https://doi.org/10.5338/KJEA.2005.24.1.034
  16. Lee, S. T., Lee, Y. H., Bhan, K. N., Seo, D. C. and Heo, J. S. (2005) Growth characteristics and germanium absorption in Lettuce with different concentrations of germanium in soil. Korean J. Environ. Agric. 24(4), 404-408 https://doi.org/10.5338/KJEA.2005.24.4.404
  17. Hwang, S. H. (2008) Effect of Organic and Inorganic Germanium On Growth and Its Uptake of Rice in Paddy Soil Condition. Master Thesis. Gyeongsang National University of Education, Korea
  18. Rural Development Administration. (1988) Methods of soil chemical analysis. National Institute of Agriculture Science and Technology, Suwon (in korea)
  19. Rural Development Administration. (1995) Research of farm in test investigation standard. National Institute of Agriculture Science and Technology, Suwon (in korea)
  20. Datnoff. L. E., Snyder, G. H. and Korndorfer, G. H. (2001) Silicon in Agriculture. Elsevier Science, 1 edition
  21. Matsumoto, H., Syo, S. and Takahashi, E. (1975) Translocation and some forms of germanium in rice plants. Soil Sci. Plant Nutr. 21, 273-279 https://doi.org/10.1080/00380768.1975.10432642
  22. Lim, J. S., Seo, D. C., Park, W. Y., Cheon, Y. S., Lee, S. T., Cho, J. S. and Heo, J. S. (2008) Effects of Soil Texture on Germanium Uptake and Growth in Rice by Soil Application with Germanium. Korean J. Environ. Agric. 24(4), 404-408 https://doi.org/10.5338/KJEA.2008.27.3.245
  23. Jang, B. C., and Park, M. U. (1997) Absorption and accumulation of Sr-85 by rice(Oryza sativa L.) and its transfer factor from soil to plant. Korea J. Soil science & Feritizer. 30(2), 184-188
  24. Lee, J. H., Cho, Y. S., Song, M. T., Yang, S. J., Hwang, H. G., Kim, N. S., Choi, H. C. and Moon, H. P. (2000) Analysis of Quantitative Trait Loci (QTLs) related to Rice Gelatinization. Korean J. Breeding Sci. 32(3), 211-217
  25. Kwak, T. S. and Yeo, J. H. (2004) Variation of Grain Quality and Grain Filling Rapidity Milyang 23 / Gihobyeo Recombinant Inbred Lines. Korean J. Crop Sci. 49(3), 160-166
  26. Choi, J. C. and Cheon, D. K. (2002) Effect of Harvest Time on Yield and Quality of Rice. Korean J. Crop Sci. 47(3), 254-258

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