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大豆-根瘤菌组合对玉米-大豆间作根系、固氮及协同效应的影响

Effects of soybean-rhizobium combinations on root system, nitrogen fixation and synergistic effects in maize-soybean intercropping

  • 摘要: 大豆与根瘤菌共生固氮可为大豆及间作玉米提供氮源。受限于根系观测技术,玉米-大豆间作体系下根系构型、固氮能力与产量间的耦合规律尚不明确。该研究采用微型根系形态采集器和模块化根箱测定大豆根瘤发育及玉米和大豆的根系构型,同步测定根瘤固氮特性及玉米和大豆的产量。结果表明,不同组合根系构型存在显著差异,玉米和大豆根系表现为交错、缠绕或背离;其中Tai6-Sr-Su29(泰丰6-Sinorhizobium fredii-苏玉 29)组合根瘤形成最早,最大直径可达7 mm,固氮酶活性最高达223.2 μL/(g·h),且玉米与大豆根系交错而不缠绕,实现了两种作物的协同增产。根瘤直径与固氮酶活性、单株固氮潜能均呈极显著线性正相关(R2>0.92, P<0.01),可作为评价根瘤共生固氮能力的核心指标。根瘤菌接种可显著调控间作体系生物量分配格局,显著降低(平均36%(P<0.01))大豆根冠比,减少根系冗余生物量消耗,使大豆产量显著提升35%(P<0.01),并提升玉米产量。根瘤菌接种可通过优化间作系统根系空间分布、调控生物量分配策略,实现玉米-大豆间作体系氮素高效利用,研究结果可为根瘤菌在间作体系中的应用提供理论依据与技术支撑。

     

    Abstract: Symbiotic nitrogen fixation of soybean-rhizobium combinations is an essential biological pathway to convert atmospheric nitrogen into plant-available nitrogen nutrients. Both nitrogen supply and crop productivity are also improved in the maize-soybean intercropping system. However, conventional destructive sampling cannot continuously observe underground root growth and nodule dynamics. It is also unclear about the regulatory relationships between soybean genotype-rhizobium matching, root spatial interaction, and the efficiency of symbiotic nitrogen fixation. Therefore, it is required to precisely regulate high-efficiency nitrogen utilization in intercropping agroecosystems. In this study, a systematic investigation was conducted to clarify root spatial distribution, root length density, and nodule development in maize-soybean intercropping. A modular rhizobox was also utilized with in situ monitoring of root morphology. Nitrogen fixation performance and yield formation were determined under different combinations of soybean-rhizobium intercropping. The results showed that rhizobium inoculation significantly altered the directional growth characteristics of maize roots towards intercropped soybean roots. The Huai11-Sr-Su29 (Huaidou11-Sinorhizobium fredii-Suyu29) treatment exhibited an outstanding trend of maize roots proliferating toward soybean root zones, thus forming intensive root interaction regions. Both Tai6-Bj-Su29 (Taifeng6-Bradyrhizobium japonicum-Suyu29) and Tai6-Sr-Su29 (Taifeng6-Sinorhizobium fredii-Suyu29) treatments shared only slight directional growth of maize roots toward soybean roots. In contrast, the Huai11-Bj-Su29 (Huaidou11-Bradyrhizobium japonicum-Suyu29) treatment presented a root spatial distribution similar to that of the non-inoculated group. There was only a small root overlap and no outstanding cross-interaction. The root length density was lower than 0.2 cm/cm³ in the interaction zone. Symbiotic matching analysis indicated that the two rhizobial strains presented host genotype specificities. Bradyrhizobium japonicum (Bj) displayed excellent cultivar matching specificity, while Sinorhizobium fredii (Sr) had broader symbiotic adaptability to form effective nodules with both soybean cultivars. There were only a few differences in nodulation initiation time among treatments. In Tai6 (Taifeng 6), an efficient symbiosis relationship was obtained to form nodules with the rhizobial strains. Whereas in Huai11 (Huaidou 11), high-efficiency nodulation was achieved using the Sr strain, indicating symbiotic performance with the Bj strain, and the maximum nitrogenase activity of 85.46 μL/(g·h). Among all treatments, the Tai6-Sr-Su29 combination exhibited optimal symbiotic performance, with early nodule development, the maximum nodule diameter of 7 mm, and the highest nitrogenase activity of 223.2 μL/(g·h). Interlaced but non-entangled root spatial structures were observed to effectively alleviate interspecific root competition, leading to high maize and soybean yield. Correlation analysis revealed that both nitrogenase activity and single-plant nitrogen fixation potential were extremely significantly and positively linearly correlated with nodule diameter (R2>0.92, P<0.01). Rhizobium inoculation significantly regulated the biomass allocation of the intercropping system. Compared with the non-inoculated group, inoculated soybean reduced root-shoot ratio (P<0.01) by 20%-30%, whereas there was an increase in grain yield (P<0.01) of 30%-40%. Rhizobium inoculation reduced redundant biomass allocation to soybean roots, thus promoting the translocation and accumulation of photosynthates in grains, particularly for the high crop yield. There were genotype-specific symbiotic matching and root spatial interaction of soybean-rhizobium in the soybean-maize intercropping system. Nodule diameter was used as a reliable visual indicator for rapid and non-destructive evaluation of symbiotic nitrogen fixation capacity. The findings can provide a theoretical basis and technical reference to optimize rhizobium inoculation for nitrogen use efficiency and productivity in intercropping farmland.

     

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