DOI QR코드

DOI QR Code

Change of photosynthetic efficiency and yield by low light intensity on ripening stage in japonica rice

등숙기의 차광 처리에 의한 광합성능 및 쌀 수량 변화

  • Received : 2014.10.13
  • Accepted : 2014.12.15
  • Published : 2014.12.31

Abstract

Light intensity is one of the most important requirements for plant growth, affecting growth, development, survival, and crop productivity. Sunlight is the main energy source on Earth which is energy used by photosynthesis to convert light energy to chemical energy. In this study, the light use efficiency and photosynthetic characteristics of high-quality rice cultivars were evaluated after shading on ripening stage. For the study, we treated of three levels of shade (0, 50 and 70%) on rice at ripening stage and two levels of nitrogen (9 and 18 kg/10a) used three high yielding rice cultivars, such as Boramchan, Hopum, and Honong. The shade was given for the respective plots from heading up to harvesting. We were performed to determine growth survey, SPAD and chlorophyll fluorescence every 10 days interval after shading on ripening stage. At harvest stage, grain yield and yield components were determined. Results of analysis of the results representing the maximum photosynthetic efficiency of PSII, Fv/Fm, and SPAD were decreased by depending on the time at full sunlight. But shade treatments were not changed and a significant difference among cultivars did not appear. Compared with the full sunlight, shade treatments significantly delayed ripening rate and decreased rice quality of cultivated rice. Therefore, rice yield, can be reduced in proportion to the shading density is apparent, the rate of decrease was not observed difference between varieties, when protected from light 70%, and decreased to less than 50%. The adverse effects of low light intensity on the yield and yield components were not able to significantly minimize by the nitrogen level.

최근 육성된 고품질 벼 품종인 보람찬, 호품 및 호농을 공시하여 질소 시비량(9, 18 kg/10a) 및 출수 직후 차광처리(50, 70%)에 의한 등숙기 일조부족이 광합성 특성 변화와 수량 및 수량구성형질 등에 미치는 영향을 검토한 결과를 요약하면 다음과 같다. 1. 등숙기 차광처리에 의해 Fv/Fm 및 SPAD값은 차광률이 높을수록 그 감소율이 적었으며, 질소 시비량을 증가에 따른 유의적인 변화는 없었다. 다른 품종과 달리 호농의 경우 18 kg 처리시 자연광에서 자란 시료에서도 감소율이 완만하게 나타났다. 2. 등숙기 차광처리에 의해 천립중과 수량은 차광에 따라 감소하였고, 차광률에 따라 더 높은 감소율을 보였다. 천립중은 세 품종 중 보람찬이 가장 많이 감소하는 경향을 보였다. 차광 70% 처리시 질소 시비량의 증수에 따라서 감소율이 더 급격히 나타나 등숙기 일조부족에 질소질 비료의 추가시용은 비효율적임을 알 수 있었다. 3. 등숙기 차광처리시 백미 단백질 함량은 증가하였고 50% 차광 보다 70% 차광에서 높았으며, 호농이 보람찬과 호품에 비해 단백질 함량의 변화가 적었다. 4. 등숙기 차광처리시 아밀로스 함량 변화는 감소하는 경향을 보였으며, 호농이 보람찬과 호품에 비해 변화가 적었다. 5. 등숙기 차광처리에 따른 쌀의 품위 분석 결과 보람찬과 호품은 차광에 의해 완전립 비율이 차광율 70%일 때 64.8-70.9%로 크게 감소하였는데 이는 분상질립의 증가로 인한 것으로 판단된다.

Keywords

References

  1. Bjorkman O, Demmig B. 1987. Photon yield of O2 evolution and chlorophyll fluorescence characteristics at 77 K among vascular plants of diverse origins. Planta 170(4):489-504. https://doi.org/10.1007/BF00402983
  2. Dobermann A, Dawe D. Roetter RP, Cassman KG. 2000. Reversal of rice yield decline in a long-term continuous cropping experiment. Agronomy Journal 92(4):633-643. https://doi.org/10.2134/agronj2000.924633x
  3. Duysens LN, Sweers HE. 1963. Mechanisms of two photochemical reactions in algae as studied by means of fluorescence. In: Ashida J (ed) Studies of Microalgae and Photosynthetic Bacteria. Special issue of Plant Cell Physiol, pp 353-372. Tokyo: University of Tokyo Press Eds.
  4. Evan LT, De Datta SK. 1979. The relationship between irradiance and grain yield of irrigated rice in the tropics, as influenced by cultivar, nitrogen fertilizer application and month of planting. Field Crops Research 2:1-17. https://doi.org/10.1016/0378-4290(79)90002-9
  5. Gibson KD, Fischer AJ, Foin TC. 2004. Compensatory responses of late watergrass (Echinochloa phyllopogon) and rice to resource limitations. Weed Science 52(2):271-280 https://doi.org/10.1614/WS-03-103R
  6. Islam MS, Morison JIL. 1992. Influence of solar-radiation and temperature on irrigated rice grain-yield in Bangladesh. Field Crops Research 30(1-2):13-28. https://doi.org/10.1016/0378-4290(92)90053-C
  7. Johnson GN, Young AJ, Scholes JD, Horton P. 1993. The dissipation of excess excitation energy in British plant species. Plant Cell and Environment 16(6):673-379. https://doi.org/10.1111/j.1365-3040.1993.tb00485.x
  8. Juliano BO. 1985. Criteria and tests for quality. in Rice : Chemistry and Technology. American Association of Community Colleges 443-524.
  9. Kim DS, Yoon YH, Shin JC, Kim JK Kim SD. 2002 Varietal difference in relationship between SPAD value and chlorophyll and nitrogen concentration in rice leaf. Korean journal of crop science 47(3):263-267.
  10. Lee CK, Kwon YU, Lee JE, Seo JH, Shin JC, Lee BW. 2009. Effect of sink and source related characteristics on grain weight and grain nitrogen content in rice. Korean journal of crop science 54(1):45-54.
  11. Makino A, Sato T, Nakano H, Mae T. 1997. Leaf photosynthesis and nitrogen allocation in rice under different irradiance. Planta 2003(3):390-398.
  12. Matsushima S. 1957. Analysis of developmental factors determining yield and yield prediction in lowland rice. Bulletin of the National Institute of Agricultural Sciences Series A5:1-271.
  13. Park DH, Chi RX, Lee BW. 2002. Variation in spikelet number under different nitrogen levels and shading treatments during panicle formation stage of rice. Korean journal of crop science 47(6):479-485.
  14. Peng S, Sheehy JE, Laza RC, Visperas RM, Zhong X, Centeno GS, Khush GS, Cassman KG. 2004. Rice yield decline with higher night temperature from global warming. Proceedings of the National Academy of Sciences 101(27):9971-9975. https://doi.org/10.1073/pnas.0403720101
  15. Samarajeewa KBDP, Kojima N, Sakagami J, Chandanie 2005. The effect of different timing of top dressing of nitrogen application under low light intensity on the yield of rice (Oryza sativa L.). Journal of Agro Crop Science 191(2): 99-105. https://doi.org/10.1111/j.1439-037X.2004.00132.x
  16. Son JR., Kim JH, Lee JI, Youn YH, Kim JK, Hwang HG, Moon HP. 2002. Trend and further research of rice quality evaluation. Korean journal of crop science 47(S):33-54.
  17. Viji MM, Thangaraj M, Jayapragasam M. 1997. Effect of loe light on photosynthetic pigments, photochemical efficieney and Hill reaction in rice (Oryza sativa).Journal of Agro Crop Science-Zeitschrift fur Acker unk Pflanxenban 178(4):193-196. https://doi.org/10.1111/j.1439-037X.1997.tb00490.x
  18. Wardlaw IF. 1976. Assimilate partitioning cause and effect. in "Transport and transfer process in plants". Edited by I.F. Wardlaw and J. B. Passioura. Academic Press, New York: 381-391.
  19. Yang WH, Peng S, Dionsio-Sese ML. 2007. Morphological and photosynthetic responses of rice to low radiation. Korean J. Crop Science 52(1):1-11.

Cited by

  1. 유형이 다른 영농형 태양광발전시설 하부 재배 환경 및 벼 생산성 평가 vol.22, pp.4, 2014, https://doi.org/10.5532/kjafm.2020.22.4.258