Scientia Agricultura Sinica ›› 2026, Vol. 59 ›› Issue (16): 3519-3540.doi: 10.3864/j.issn.0578-1752.2026.16.005

• TILLAGE & CULTIVATION·PHYSIOLOGY & BIOCHEMISTRY·AGRICULTURE INFORMATION TECHNOLOGY • Previous Articles     Next Articles

Analysis of Interrelationships Among Yield Source, Flow, and Sink Traits in Soybean Cultivars

WANG Ke1,2(), GONG HaoRan2(), WANG YuBin1, ZHANG YanWei1, WANG CaiJie1, LIU Xin2(), XU Ran1()   

  1. 1 Crop Research Institute, Shandong Academy of Agricultural Sciences, Jinan 250100
    2 College of Agronomy, Shandong Agricultural University, Tai'an 271018, Shandong
  • Received:2026-01-06 Accepted:2026-06-03 Online:2026-08-16 Published:2026-08-18
  • Contact: LIU Xin, XU Ran

Abstract:

【Objective】 To evaluate the contributions of source, flow and sink traits to soybean yield, clarify the relationships among these traits during yield formation, reveal the key physiological mechanisms underlying soybean yield formation, and provide a theoretical basis for soybean breeding. 【Method】 Qihuang 34, Lindou 9, Weidou 9, and Hedou 12 were investigated during the pod-setting and seed-filling stages. The photosynthetic performance, assimilate partitioning, and dry matter accumulation were analyzed throughout plant development by using 13C isotope labeling. Source-flow-sink traits were comprehensively evaluated, and radar chart analysis was applied to characterize the coordination of these traits among cultivars during yield formation.【Result】 (1) The correlations between source, flow and sink traits and yield varied considerably. The contributions of these traits to yield ranked as follows: leaf area index > 100-seed weight > net photosynthetic rate > palisade tissue thickness > effective quantum yield of PSII (ΦPSII) > glutamine synthetase activity > glutamate synthase activity > mean sieve tube diameter > stomatal conductance > midrib diameter. (2) Significant interactions were observed among source, flow and sink traits. Source-sink interactions were reflected by positive correlations of net photosynthetic rate, stomatal conductance and transpiration rate with 100-seed weight. Source-flow interactions were indicated by positive correlations of palisade tissue thickness and leaf thickness with net photosynthetic rate, whereas flow-sink interactions were represented by a positive correlation between mean sieve tube diameter and 100-seed weight. (3) Source, flow and sink traits differed markedly among cultivars. Qihuang 34 exhibited higher leaf area index, palisade tissue thickness, leaf thickness, net photosynthetic rate, ΦPSII, sustained dry matter accumulation in main stem pods, yield, 100-seed weight, glutamine synthetase activity, glutamate synthase activity, 3-day assimilate translocation to main stem pods and sustained assimilate translocation than the other three cultivars. Hedou 12 showed the largest midrib diameter, Weidou 9 had the highest seed number per plant, and Lindou 9 exhibited the greatest carbon assimilation capacity of branch pods. These results indicate that high soybean yield depends on the coordinated regulation of source, flow and sink traits rather than on any single trait.【Conclusion】 Among the four cultivars, Qihuang 34 achieved the highest yield owing to its larger leaf area index, stronger assimilate transport capacity, and greater 100-seed weight. Breeding high-yield soybean cultivars with coordinated source, flow and sink characteristics should prioritize germplasm with high photosynthetic efficiency based on ΦPSII, net photosynthetic rate and leaf area index, followed by evaluation of assimilate transport efficiency using leaf and vascular bundle anatomical traits and assessment of yield potential through nitrogen metabolism enzyme activities and sink capacity.

Key words: soybean, cultivar, yield, source-flow-sink, correlation

Table 1

Information of tested soybean varieties"

品种Variety 审定区域Approval status 有效分枝Effective branches 特性Characteristic
齐黄34 Qihuang 34 国家审定Approved by the state 1.3 高产、优质High yield, high quality
菏豆12 Hedou 12 国家审定Approved by the state 1.0—3.0 高产、优质High yield, high quality
临豆9号Lindou 9 国家审定Approved by the state 3.7 高蛋白型High-protein
潍豆9号Weidou 9 山东省审定Approved by Shandong province 1.9 高油型High-oil

Fig. 1

Variation trend of leaf area index in different soybean varieties R2: Full flowering stage; R4: Full pod stage; R6: Seed filling stage.The same as below"

Fig. 2

Cross-sectional structure of leaves in different soybean varieties at the seed filling stage The red line indicates the thickness of the fence structure, while the blue line indicates the thickness of the leaf"

Table 2

Leaf palisade tissue thickness and thickness of different soybean cultivars"

年份Year 品种Cultivar 栅栏组织厚度Palisade tissue thickness (μm) 叶片厚度Leaf thickness (μm)
2023 齐黄34 Qihuang 34 102.67±6.76a 195.50±4.85a
菏豆12 Hedou 12 93.57±1.93b 184.27±2.18a
潍豆9号Weidou 9 91.53±1.56b 187.13±0.85a
临豆9号Lindou 9 95.23±2.31b 191.73±10.89a
2024 齐黄34 Qihuang 34 119.00±13.13b 218.90±11.80a
菏豆12 Hedou 12 79.30±9.72c 172.20±3.34b
潍豆9号Weidou 9 80.50±1.37c 165.10±2.44b
临豆9号Lindou 9 98.60±2.12a 212.40±4.52a

Fig. 3

Variation trends of photosynthetic indices and chlorophyll fluorescence parameters in different soybean varieties R8: Maturity stage. The same as below"

Fig. 4

Distribution rate of 13C among different organs in different soybean varieties immediately after labeling at the pod-setting and seed-filling stages IUR-BP: Instantaneous 13C uptake rate of pods on branches; IUR-MSP: Instantaneous 13C uptake rate of pods on the main stem; IUR-BS: Instantaneous 13C uptake rate of branch stems; IUR-MSS: Instantaneous 13C uptake rate of main-stem stems; IUR-BL: Instantaneous 13C uptake rate of branch leaves; IUR-MSL: Instantaneous 13C uptake rate of main-stem leaves. The same as below"

Fig. 5

Correlation between instantaneous 13C absorption rate of different organs and source-related indices at the seed filling stage * means significance at P≤0.05, ** means significance at P≤0.01. LAI: Leaf area index; PTT: Palisade tissue thickness; LT: Leaf thickness; Pn: Net photosynthetic rate; Gs: Stomatal conductance; Tr: Transpiration rate; Ci: Intercellular CO2 concentration; Fv/Fm: Maximum photochemical quantum yield of Photosystem II; ΦPSⅡ: Optimal/maximal quantum yield of PSⅡ; qP: Photochemical Quenching; NPQ: Non-photochemical quenching. The same as below"

Fig. 6

Cross-sectional structures of leaves, petioles, and stems in different soybean varieties"

Table 3

Leaf vein diameter, petiole diameter and of different soybean cultivars"

年份
Year
品种
Cultivar
主叶脉直径
Midrib diameter
(μm)
次叶脉直径
Secondary vein diameter (μm)
叶柄直径
Petiole diameter
(μm)
筛管平均直径
Mean sieve tube diameter (μm)
2023 齐黄34 Qihuang 34 458.33±4.71c 185.90±13.36b 3180.83±15.09a 72.75±2.79a
菏豆12 Hedou 12 716.33±12.30a 148.40±1.10c 2913.60±16.80b 67.78±3.90a
潍豆9号Weidou 9 547.73±5.86b 195.00±4.52ab 2883.33±8.46b 67.67±1.81a
临豆9号Lindou 9 368.20±2.85d 204.67±6.35a 2717.50±25.67c 70.05±0.74a
2024 齐黄34 Qihuang 34 584.63±5.12b 179.70±9.92b 2899.50±30.74b 126.80±7.94b
菏豆12 Hedou 12 686.67±2.87a 143.97±6.93c 2688.53±33.33d 92.92±4.17c
潍豆9号Weidou 9 587.47±1.30b 138.87±7.26c 2783.20±31.32c 83.80±5.85c
临豆9号Lindou 9 420.33±2.06c 204.53±1.40a 3131.17±17.80a 121.97±4.57a

Fig. 7

Transport capacity of assimilates in different soybean varieties after 13C labeling at the pod-setting and seed-filling stages TC0-3-BP: Transport capacity to branch pods during 0-3 days; TC0-3-MSP: Transport capacity to main-stem pods during 0-3 days; STC-BP: Sustained transport capacity of branch pods; STC-MSP: Sustained transport capacity of main-stem pods. The same as below"

Fig. 8

Correlation between assimilate transport capacity to pods and flow-related indices at the seed filling stages (2023-2024) MD: Midrib diameter; SVD: Secondary vein diameter; PD: Petiole diameter; STD: Mean sieve tube diameter. The same as below"

Fig. 9

Assimilate allocation rate to pods in different soybean varieties after 13C labeling at the pod-setting and seed-filling stages"

Fig. 10

Glutamate synthase activity and glutamine synthetase activity in seeds of different soybean varieties"

Table 4

Yield, yield components, and harvest index of different soybean cultivars"

年份
Year
品种
Cultivar
株粒数
Grains per plant
百粒重
100-grain weight (g)
株数
Plants per hectare (plants/hm2)
产量
Yield (kg·hm-2)
经济系数
Harvest index
2023 齐黄34 Qihuang 34 113.28±9.26ab 26.32±0.47a 143850.16±617.61a 3556.16±93.61a 0.52±0.02ab
菏豆12 Hedou 12 104.45±5.51bc 24.81±0.53ab 149307.18±1217.73a 3446.93±94.9ab 0.53±0.01a
潍豆9号Weidou 9 122.96±5.51a 19.48±1.85c 158772.30±5986.74a 3285.60±120.07bc 0.50±0.01b
临豆9号Lindou 9 93.24±8.57c 23.10±0.83b 154006.30±1805.22a 3213.44±106.71b 0.50±0.02ab
2024 齐黄34 Qihuang 34 127.90±10.00a 26.49±1.23a 160269.12±2038.59a 3680.84±137.69a 0.52±0.02a
菏豆12 Hedou 12 117.30±11.53ab 22.39±1.35b 150406.47±1210.47a 3360.94±75.51b 0.51±0.03a
潍豆9号Weidou 9 113.97±6.69ab 20.01±0.64b 154585.85±959.76a 3337.15±46.85b 0.50±0.03a
临豆9号Lindou 9 100.50±9.49b 20.30±1.10ab 162570.85±1302.93a 3254.55±75.12b 0.50±0.04a

Fig. 11

Correlation between assimilate accumulation capacity of main-stem pods and branch pods and sink-related indices at the seed filling stage (2023-2024) Yield: Yield; GNP: Grain number per plant; HGW: Hundred-grain weight; PN: Plant number; GS activity: Glutamine synthetase activity; GOGAT activity: Glutamate synthase activity. The same as below"

Fig. 12

Dynamic changes in dry matter accumulation of different soybean varieties during reproductive stages (2023-2024)"

Fig. 13

Correlation between source-flow-sink indices and yield in different soybean varieties (2023-2024)"

Fig. 14

Radar chart of source-flow-sink indicators for different soybean cultivars (2023-2024) The values for Qihuang 34 were normalized to 1, and the data of all other cultivars were normalized relative to Qihuang 34"

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