期刊文献+

大豆幼苗对套作玉米遮荫环境的光合生理生态响应 被引量:35

Photosynthetic responses of soybean( Glycine max) seedlings to shading caused by maize in an intercropping system
下载PDF
导出
摘要 以2个耐荫性不同的大豆品种为材料,田间试验设置大豆单作和玉米-大豆套作2个种植模式处理,研究不同耐荫性大豆品种的幼苗光合生理生态特性对套作玉米遮荫环境的响应。结果表明:1)玉米-大豆套作模式中,玉米遮荫显著降低大豆冠层的光合有效辐射,导致大豆幼苗光合速率、气孔导度、蒸腾速率显著下降(P<0.05),分别达37.9%、54.2%和42.4%,但品种间无显著差异;而胞间二氧化碳浓度和Fv/Fm无显著变化,且光合速率的下降与气孔导度存在显著相关关系,光合速率下降主要是由气孔限制和CO2同化过程中能量不足所致;2)玉米遮荫显著降低大豆幼苗叶面积指数、叶片碳含量、叶片和根系干重及总生物量,且品种间差异显著,相关性分析显示,叶面积指数下降是导致生物量减少的主要原因;3)玉米遮荫环境中,大豆幼苗的叶片叶绿素和氮素含量提高以增强光捕获能力,但它们并不能补偿因光截获面积降低而引起的光截获量下降。 Maize-soybean relay intercropping pattern, with highly economic, ecological and environmental significance, is widely applied in southwestern China. However, growth of soybean seedlings may be depressed by maize shade in this cropping pattern. The objective of this paper was to study the photosynthetic responses of soybean seedlings to maize shading in relay intercropping system in terms of morphological plasticity and photosynthetic parameters compared with mono-cropping system. A field experiment was conducted to compare gas exchange, chlorophyll fluorescence parameters, pigments contents, leaf carbon and nitrogen contents, leaf area index and dry matter accumulation of two soybean cultivars in two cropping patterns, i.e., soybean mono-cropping and maize-soybean relay intercropping. Compared with the mono-cropped seedlings, soybean seedlings intercropped with maize had significantly lower net photosynthetic rate (Pn)(-37.9%), transpiration rate (Tr) (-42.4%) and stomatal conductance (Gs) (-54.2%) due to low available light, but there was non-significant difference in two soybean varieties. The intercellular carbon dioxide concentration (Ci) and Fv/Fm were not changed significantly, in comparison with the seedlings under mono-cropping. Additionally, reductions in photosynthetic rate induced by maize shading was correlated significantly with stomatal conductance. The maize shading-induced depressions of photosynthetic rate may be attributed to stomatal limitation and energy deficiency in CO2 assimilation process. Leaf carbon contents, leaf weight, leaf area index, root dry weight, total biomass and root/shoot ratio was also reduced because of maize shading, and significant difference was found between the two soybean varieties, which indicated that Nangdou12 might be a better cultivar to be relay intercropped with maize in Southwest China. The correlation analysis indicated that the relative reduction in biomass was caused by the decline in leaf area index rather than Pn. Although automatic regulation of light-harvesting efficiency in terms of total nitrogen contents, total chlorophyll contents and chlorophyll b contents was significantly improved in soybean seedlings in relay intercropping condition, it could not compensate the decline of light interception caused by the reduced light interception area. Therefore, the growth parameters may be more important index for assessing the adaptation of soybean cultivars to low light condition in intercropping system than ecophysiological parameters merely at unit leaf level.
出处 《生态学报》 CAS CSCD 北大核心 2015年第10期3298-3308,共11页 Acta Ecologica Sinica
基金 国家自然科学基金(31171476 31201169) 科技部973项目(2011CB100402) 农业部公益性行业科研专项(201203096)
关键词 间套作 遮荫 气体交换 光合色素 干物质积累 intercropping shading gas exchange pigments contents dry matter accumulation
  • 相关文献

参考文献45

  • 1Li L, Li S M, Sun J H, Zhou L L, Bao X G, Zhang H G, Zhang F S. Diversity enhances agricultural productivity via rhizosphere phosphorus facilitation on phosphorus-deficient soils. Proceedings of the National Academy of Sciences of the United States of America, 2007, 104 (27): 11192-11196.
  • 2Lithourgidis A S, Dordas C A, Damalas C A, Vlachostergios D N. Annual intercrops: an alternative pathway for sustainable agriculture. Australian Journal of Crop Science, 2011, 5(4) : 396-410.
  • 3Agegnehu G, Ghizaw A, Sinebo W. Yield potential and land-use efficiency of wheat and faba bean mixed intercropping. Agronomy for Sustain Development, 2008, 28 (2) : 257- 263.
  • 4Metwally A A, Shafik M M, EI-Habbak K E, Abdel-Wahab S I. Yield and land equivalent ratio of intercropped soybean with maize under different intercropping patterns and high population densities. Egyptian Journal of Agronomy, 2009, 31 (2) : 199-222.
  • 5Pypers P, Sanginga J M, Kasereka B, Walangululu M, Vanlauwe B. Increased productivity through integrated soil fertility management in cassava- legume intercropping systems in the highlands of Sud-Kivu, DR Congo. Field Crops Research, 2011, 120( 1 ) : 76-85.
  • 6Horwith B. A role for intercropping in modem agriculture. BioScience, 1985, 35 (5) : 286-291.
  • 7Leihner D E, Ruppenthal M, Hilger T H, Castillo J A F. Soil conservation effectiveness and crop productivity of forage legume intercmpping, contour grass barriers and contour ridging in cassava on Andean Hillsides. Experimental Agriculture, 1996, 32(3) : 327-338.
  • 8Fustec J, Lesuffleur F, Mahieu S, Cliquet J B. Nitrogen rhizodeposition of legumes//Sustainable Agriculture Volume 2. Netherlands: Springer, 2010: 869-881.
  • 9Zhu Y Y, Chen H R, Fan ] H, Wang Y Y, Li Y, Chen i B, Fang J X, Yang S S, Hu L P, Leung H, Mew T W, Teng P S, Wang Z H, Mundt C C. Genetic diversity and disease control in rice. Nature, 2000, 406(6797) : 718-722.
  • 10Saucke H, Ackermann K. Weed suppression in mixed cropped grain peas and false flax ( Camelina sativa). Weed Research, 2006, 46 (6) : 453-461.

二级参考文献151

共引文献656

同被引文献609

引证文献35

二级引证文献318

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部