Effects of Low Temperature Stress During Jointing Stage on the Source–Flow–Sink System in Winter Wheat
Abstract
1. Introduction
2. Materials and Methods
2.1. Experimental Materials
2.2. Experimental Design
2.3. Measurement Methods
2.3.1. Measurement of Photosynthetic Parameters
2.3.2. Measurement of Anatomical Structures
2.3.3. Measurement of Dry Matter
2.3.4. Measurement of Yield
2.3.5. Statistical Analysis
3. Results
3.1. Coordinated Responses of Leaf Photosynthetic Traits and Vascular Bundle Parameters to Low-Temperature Stress
3.1.1. Effects of Low-Temperature Stress on Photosynthetic Capacity and Potential Photosynthetic Efficiency of Winter Wheat Leaves
3.1.2. Effects of Low-Temperature Stress on Photosynthetic Regulation and Resource Use Efficiency in Leaves
3.1.3. Effects of Low-Temperature Stress on Leaf Vascular Bundle Structural Parameters
3.2. Responses of Dry Matter Allocation and Stem Vascular Bundle Parameters to Low-Temperature Stress
3.2.1. Effects of Low-Temperature Stress on Dry Matter Accumulation and Allocation Ratios in Winter Wheat
3.2.2. Effects of Low-Temperature Stress on Stem Vascular Bundle Structural Parameters
3.3. Correlation Analysis of Yield and Vascular Bundle Parameters Under Low-Temperature Stress and Identification of Sensitive Parameters
3.3.1. Effects of Low-Temperature Stress on Winter Wheat Yield and Its Component Traits
3.3.2. Correlation Analysis Between Vascular Bundle Parameters and Yield Components of Winter Wheat Under Different Temperature and Duration Treatments
3.4. Screening of Representative Indicators of Low-Temperature Responses During the Jointing Stage in Winter Wheat
4. Discussion
4.1. Dynamic Changes and Potential Relationship Between Photosynthetic Parameters and Leaf Vascular Bundle Traits Under Low-Temperature Stress
4.2. Dynamic Changes and Potential Relationship Between Dry Matter Production and Allocation and Stem Vascular Bundle Traits Under Low-Temperature Stress
4.3. Potential Relationship Between Yield Formation and Leaf and Stem Vascular Bundle Characteristics Under Low Temperature Stress and Screening of Sensitive Parameters
4.4. Research Limitations and Future Directions
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Li, G.; Ren, X.; Pang, S.; Feng, C.; Niu, Y.; Qu, Y.; Liu, C.; Lin, X.; Wang, D. Nitrogen redistribution during the grain-filling stage and its correlation with senescence and TaATG8 expression in leaves of winter wheat. J. Integr. Agric. 2024, 25, 1433–1442. [Google Scholar] [CrossRef]
- Xie, J.; Zhang, D.; Jin, N.; Cheng, T.; Zhao, G.; Han, D.; Niu, Z.; Li, W. Coupling crop growth models and machine learning for scalable winter wheat yield estimation across major wheat regions in China. Agric. For. Meteorol. 2025, 372, 110687. [Google Scholar] [CrossRef]
- Wang, Y.; Li, B.; Luo, M.; Guo, H.; Meng, X.; Cao, Z. Daily-scale gridded analysis of spatiotemporal characteristics in agricultural drought events across winter wheat growth stages in the Huang–Huai–Hai Plain, China. Agric. Water Manag. 2026, 327, 110274. [Google Scholar] [CrossRef]
- Xie, S.; Wang, X.; Zhu, X.; Li, Y. Prediction of soil organic matter content in winter wheat jointing stage based on UAV multispectral and machine learning. Measurement 2025, 256, 118508. [Google Scholar] [CrossRef]
- Ji, W.; Gu, J.; Zhang, W.; Chen, X.; Qiu, X.; Xiao, L.; Liu, B.; Tang, L.; Cao, W.; Zhu, Y.; et al. Prediction of grain number and grain weight across different spikelet positions in winter wheat under short-term low-temperature stress. Inf. Process. Agric. 2026, in press. [Google Scholar] [CrossRef]
- Zhang, F.; Huo, Z.; Yang, Z.; Zhang, L.; Wang, N.; Jiang, M.; Kong, R.; Mi, Q.; Li, M.; Wu, H. Construction of Indicators of Low-Temperature Stress Levels at the Jointing Stage of Winter Wheat. Agriculture 2024, 14, 1430. [Google Scholar] [CrossRef]
- Zhao, J.; Yang, J.; Huang, R.; Xie, H.; Qin, X.; Hu, Y. Estimating evapotranspiration and drought dynamics of winter wheat under climate change: A case study in Huang-Huai-Hai region, China. Sci. Total Environ. 2024, 949, 175114. [Google Scholar] [CrossRef] [PubMed]
- Lin, F.; Li, C.; Xu, B.; Chen, J.; Chen, A.; Hassan, M.A.; Liu, B.; Xu, H.; Chen, X.; Sun, J.; et al. Late spring cold reduces grain number at various spike positions by regulating spike growth and assimilate distribution in winter wheat. Crop J. 2023, 11, 1272–1278. [Google Scholar] [CrossRef]
- Ma, M.-Y.; Liu, Y.; Zhang, Y.-W.; Qin, W.-L.; Wang, Z.-M.; Zhang, Y.-H.; Lu, C.-M.; Lu, Q.-T. In situ measurements of winter wheat diurnal changes in photosynthesis and environmental factors reveal new insight into photosynthesis improvement by super-high-yield cultivation. J. Integr. Agric. 2021, 20, 527–539. [Google Scholar] [CrossRef]
- Pang, H.; Lian, Y.; Zhao, Z.; Guo, H.; Li, Z.; Hu, J.; Ren, Y.; Lin, T.; Wang, Z. Compensatory effect of supplementary irrigation on winter wheat under warming conditions. Agric. Water Manag. 2024, 295, 108778. [Google Scholar] [CrossRef]
- Wu, R.; Shen, X.; Shang, B.; Zhao, J.; Agathokleous, E.; Feng, Z. Complexity and interactions of climatic variables affecting winter wheat photosynthesis in the North China Plain. Eur. J. Agron. 2025, 166, 127568. [Google Scholar] [CrossRef]
- Zhang, Z.-Z.; Cheng, S.; Fan, P.; Zhou, N.-B.; Xing, Z.-P.; Hu, Y.-J.; Xu, F.-F.; Guo, B.-W.; Wei, H.-Y.; Zhang, H.-C. Effects of sowing date and ecological points on yield and the temperature and radiation resources of semi-winter wheat. J. Integr. Agric. 2023, 22, 1366–1380. [Google Scholar] [CrossRef]
- Chen, J.; Zhang, P.; Liu, J.; Deng, J.; Su, W.; Wang, P.; Li, Y. Study on the impact of low-temperature stress on winter wheat based on multi-model coupling. Food Energy Secur. 2024, 13, e543. [Google Scholar] [CrossRef]
- Lotfi, R.; Eslami-Senoukesh, F.; Mohammadzadeh, A.; Zadhasan, E.; Abbasi, A.; Kalaji, H.M. Identification of key chlorophyll fluorescence parameters as biomarkers for dryland wheat under future climate conditions. Sci. Rep. 2024, 14, 28699. [Google Scholar] [CrossRef] [PubMed]
- Miller, K.; Hall, D.; Kramer, D.; Olson, E.; Merewitz, E. Photosynthetic health of winter wheat following overwintering stresses in controlled conditions. Grass Res. 2024, 4, 25–36. [Google Scholar] [CrossRef]
- Shah, A.; Schiller, J.A.; Ramos, I.; Serrano, J.; Adams, D.K.; Tawfick, S.; Ertekin, E. Automated image segmentation of scanning electron microscopy images of graphene using U-Net Neural Network. Mater. Today Commun. 2023, 35, 106127. [Google Scholar] [CrossRef]
- Faleiro, R.; Pace, M.R.; Tessmer, M.A.; Pereira, A.d.E.S.; Fraceto, L.F.; Mayer, J.L.S. Smart delivery of auxin: Lignin nanoparticles promote efficient and safer vascular development in crop species. Plant Nano Biol. 2026, 15, 100226. [Google Scholar] [CrossRef]
- Wang, C.; Liu, M.; Wang, Z.; Batool, M.; El-Badri, A.M.; Sun, C.; Gao, J.; Zhang, J.; Zhao, Y.; Liu, S.; et al. Rapid elongation of stems during the bolting stage reduces the lodging resistance of late-sown rapeseed. Crop J. 2025, 13, 1874–1883. [Google Scholar] [CrossRef]
- Xu, H.; Hassan, M.A.; Sun, D.; Wu, Z.; Jiang, G.; Liu, B.; Ni, Q.; Yang, W.; Fang, H.; Li, J.; et al. Effects of Low Temperature Stress on Source-Sink Organs in Wheat and Phosphorus Mitigation Strategies. Front. Plant Sci. 2022, 13, 807844. [Google Scholar] [CrossRef]
- Yu, X.; Jiang, Y.; Yao, H.; Ran, L.; Zang, Y.; Xiong, F. Cytological and molecular characteristics of delayed spike development in wheat under low temperature in early spring. Crop J. 2022, 10, 840–852. [Google Scholar] [CrossRef]
- Yu, J.; Cang, J.; Zhou, Z.; Liu, L. Anatomical Structure Comparison Between Leaves of Two Winter Wheat Cultivars with Different Cold/Freezing Tolerance Under Low Temperature Stress. J. Northeast Agric. Univ. (Engl. Ed.) 2011, 18, 1–6. [Google Scholar] [CrossRef]
- Khoshravesh, R.; Hoffmann, N.; Hanson, D.T. Leaf microscopy applications in photosynthesis research: Identifying the gaps. J. Exp. Bot. 2022, 73, 1868–1893. [Google Scholar] [CrossRef] [PubMed]
- Wang, Y.; Bo, C.; Wang, X.; Yang, X.; Wang, H. Analysis of the Physiological Parameters of Cold Resistance in Core Winter and Spring Wheat Cultivars. Agronomy 2024, 14, 2438. [Google Scholar] [CrossRef]
- Xiao, L.; Asseng, S.; Wang, X.; Xia, J.; Zhang, P.; Liu, L.; Tang, L.; Cao, W.; Zhu, Y.; Liu, B. Simulating the effects of low-temperature stress on wheat biomass growth and yield. Agric. For. Meteorol. 2022, 326, 109191. [Google Scholar] [CrossRef]
- Liu, P.; Zhang, Z.; Yin, Y.; Yan, S.; Ren, Y.; Sang, W.; Xu, H.; Han, X.; Cui, F.; Nie, Y.; et al. Quality traits analysis of 153 wheat lines derived from CIMMYT and China. Front. Genet. 2023, 14, 1198835. [Google Scholar] [CrossRef]
- Mei, X.-R.; Zhong, X.-L.; Vincent, V.; Liu, X.-Y. Improving Water Use Efficiency of Wheat Crop Varieties in the North China Plain: Review and Analysis. J. Integr. Agric. 2013, 12, 1243–1250. [Google Scholar] [CrossRef]
- Ma, M.; Li, Y.; Xue, C.; Xiong, W.; Peng, Z.; Han, X.; Ju, H.; He, Y. Current Situation and Key Parameters for Improving Wheat Quality in China. Front. Plant Sci. 2021, 12, 638525. [Google Scholar] [CrossRef]
- Papadimitriou, D.M.; Daliakopoulos, I.N.; Louloudakis, I.; Savvidis, T.I.; Sabathianakis, I.; Savvas, D.; Manios, T. Impact of container geometry and hydraulic properties of coir dust, perlite, and their blends used as growing media, on growth, photosynthesis, and yield of Golden Thistle (S. hispanicus L.). Sci. Hortic. 2024, 323, 112425. [Google Scholar] [CrossRef]
- Sato, M.; Inaba, S.; Noguchi, M.; Nakagiri, A. Vermiculite as a culture substrate greatly improves the viability of frozen cultures of ectomycorrhizal basidiomycetes. Fungal Biol. 2020, 124, 742–751. [Google Scholar] [CrossRef] [PubMed]
- Wang, Y.; Qi, M.; Yang, C.; Sun, R.; Li, H.; Zhao, Y.; Wang, L. Biochar and Phosphogypsum in agricultural soils: Individual roles, combined potentials, and future prospects. Pedosphere, 2025; in press. [CrossRef]
- Ali, M.F.; Ma, L.; Han, W.; Zhou, Y.; Wang, S.; Lin, X.; Wang, D. Interactive effects of irrigation and planting density on photosynthetic performance and yield of winter wheat. Field Crops Res. 2026, 337, 110250. [Google Scholar] [CrossRef]
- Zhang, F.; Jiang, N.; Zhang, H.; Huo, Z.; Yang, Z. Effect of Low Temperature on Photosynthetic Characteristics, Senescence Characteristics, and Endogenous Hormones of Winter Wheat “Ji Mai 22” during the Jointing Stage. Agronomy 2023, 13, 2650. [Google Scholar] [CrossRef]
- Wang, D.; Rianti, W.; Gálvez, F.; van der Putten, P.E.L.; Struik, P.C.; Yin, X. Estimating photosynthetic parameter values of rice, wheat, maize and sorghum to enable smart crop cultivation. Crop Environ. 2022, 1, 119–132. [Google Scholar] [CrossRef]
- Wu, J.; Liu, W.; Li, C.; Jiang, T.; Shariful, I.M.; Yao, Y.; Sun, H.; Li, X.; Li, X.; Huang, X.; et al. A state-of-the-art survey of U-Net in microscopic image analysis: From simple usage to structure mortification. Neural Comput. Appl. 2023, 36, 3317–3346. [Google Scholar] [CrossRef]
- Ahmed, N.; Zhang, Y.; Li, K.; Zhou, Y.; Zhang, M.; Li, Z. Exogenous application of glycine betaine improved water use efficiency in winter wheat (Triticum aestivum L.) via modulating photosynthetic efficiency and antioxidative capacity under conventional and limited irrigation conditions. Crop J. 2019, 7, 635–650. [Google Scholar] [CrossRef]
- Zhang, Z.; Sun, S.; Zhang, F.; Guo, S.; Guo, E.; Liu, Z.; Zhao, J.; Zhao, C.; Li, T.; Yang, X. Using estimated radiation in crop models amplified the negative impacts of climate variability on maize and winter wheat yields in China. Agric. For. Meteorol. 2022, 318, 108914. [Google Scholar] [CrossRef]
- Zhai, L.; Song, S.; Zhang, L.; Huang, J.; Lv, L.; Dong, Z.; Cui, Y.; Zheng, M.; Hou, W.; Zhang, J.; et al. Subsoiling before winter wheat alleviates the kernel position effect of densely grown summer maize by delaying post-silking root-shoot senescence. J. Integr. Agric. 2023, 24, 3384–3402. [Google Scholar] [CrossRef]
- Cheng, J.; Liu, C.; Yang, G.; Fan, Z.; Lai, Y.; Zhang, J.; Cao, X.; Kang, J.; Ma, X.; Yang, H.; et al. Estimating wheat above-ground biomass by integrating dry matter allocation and phenology information. Eur. J. Agron. 2026, 172, 127885. [Google Scholar] [CrossRef]
- Han, Y.; Wang, Y.; Zhang, D.; Gao, H.; Sun, Y.; Tao, B.; Zhang, F.; Ma, H.; Liu, X.; Ren, H. Planting models and deficit irrigation strategies to improve radiation use efficiency, dry matter translocation and winter wheat productivity under semi-arid regions. J. Plant Physiol. 2023, 280, 153864. [Google Scholar] [CrossRef]
- Yan, S.; Wu, Y.; Fan, J.; Zhang, F.; Guo, J.; Zheng, J.; Wu, L. Optimization of drip irrigation and fertilization regimes to enhance winter wheat grain yield by improving post-anthesis dry matter accumulation and translocation in northwest China. Agric. Water Manag. 2022, 271, 107782. [Google Scholar] [CrossRef]
- Zhu, Y.; Liu, J.; Li, J.; Xian, L.; Chu, J.; Liu, H.; Song, J.; Sun, Y.; Dai, Z. Delayed sowing increased dry matter accumulation during stem elongation in winter wheat by improving photosynthetic yield and nitrogen accumulation. Eur. J. Agron. 2023, 151, 127004. [Google Scholar] [CrossRef]
- Astaoui, G.; Dadaiss, J.E.; Sebari, I.; Benmansour, S.; Mohamed, E. Mapping Wheat Dry Matter and Nitrogen Content Dynamics and Estimation of Wheat Yield Using UAV Multispectral Imagery Machine Learning and a Variety-Based Approach: Case Study of Morocco. AgriEngineering 2021, 3, 29–49. [Google Scholar] [CrossRef]
- Chen, X.; Liu, L.; Cai, H.; Zheng, B.; Li, J. Effects of spring low-temperature stress on winter wheat seed-setting characteristics of spike. Plant Soil Environ. 2024, 70, 84–92. [Google Scholar] [CrossRef]
- Zhao, J.; Peng, H.; Yang, J.; Huang, R.; Huo, Z.; Ma, Y. Response of winter wheat to different drought levels based on Google Earth Engine in the Huang-Huai-Hai Region, China. Agric. Water Manag. 2024, 292, 108662. [Google Scholar] [CrossRef]
- Xu, X.; He, W.; Zhang, H. A novel habitat adaptability evaluation indicator (HAEI) for predicting yield of county-level winter wheat in China base on multisource climate data from 2001 to 2020. Int. J. Appl. Earth Obs. Geoinf. 2023, 125, 103603. [Google Scholar] [CrossRef]
- Xiao, L.; Liu, B.; Zhang, H.; Gu, J.; Fu, T.; Asseng, S.; Liu, L.; Tang, L.; Cao, W.; Zhu, Y. Modeling the response of winter wheat phenology to low temperature stress at elongation and booting stages. Agric. For. Meteorol. 2021, 303, 108376. [Google Scholar] [CrossRef]











| Cultivar | Low Temperature Treatment | |||||||
| Name | Types | Total Planting Pot [Pot] | Marker | Duration [d] | Marker | Temperature [°C] | Biological Replicate [Pot] | Marker |
| Zhen Mai 12 | semi-spring | 250 | C1 | 2 | D1 | 8/18 (min/max) | 150 | CK |
| 6/16 | 108 | T1 | ||||||
| Ji Mai 22 | semi-winter | 250 | C2 | 4 | D2 | 3/13 | 108 | T2 |
| 0/10 | 108 | T3 | ||||||
| Shan Nong 38 | strong-winter | 250 | C3 | 6 | D3 | −3/7 | 108 | T4 |
| −6/4 | 108 | T5 | ||||||
| Cultivar | Low Temperature Treatment | |||||||
| Name | Types | Total Planting Pot [pot] | Marker | Stress [d] | Marker | Temperature [°C] | Biological Replicate per Treatment [pot] | Marker |
| Zhen Mai 12 | semi-spring | 220 | C1 | 2 | D1 | 8/18 (min/max) | 108 | CK |
| 6/16 | 108 | T1 | ||||||
| Ji Mai 22 | semi-winter | 220 | C2 | 4 | D2 | 3/13 | 108 | T2 |
| 0/10 | 108 | T3 | ||||||
| Shan Nong 38 | strong-winter | 220 | C3 | 6 | D3 | −3/7 | 108 | T4 |
| −6/4 | 108 | T5 | ||||||
| Treatments | Leaf Vascular Bundle Area (μm2) | Leaf Xylem Percentage (%) | Leaf Phloem Percentage (%) | ||||||
|---|---|---|---|---|---|---|---|---|---|
| C1 | C2 | C3 | C1 | C2 | C3 | C1 | C2 | C3 | |
| T1-D1 | 738.39 ± 21.36 | 847.14 ± 23.04 | 835.56 ± 23.58 | 46.23 ± 0.96 | 49.56 ± 1.12 | 55.76 ± 0.86 | 33.75 ± 1.30 | 38.75 ± 1.07 | 30.49 ± 1.15 |
| T1-D2 | 737.28 ± 19.32 | 844.56 ± 24.27 | 838.14 ± 27.78 | 46.56 ± 0.93 | 49.56 ± 1.47 | 56.03 ± 0.82 | 33.92 ± 1.02 | 38.89 ± 1.05 | 30.42 ± 1.56 |
| T1-D3 | 745.29 ± 25.95 | 845.85 ± 28.47 | 843.15 ± 26.28 | 46.49 ± 0.95 | 49.56 ± 0.98 | 55.83 ± 0.84 | 34.04 ± 1.30 | 38.55 ± 1.02 | 30.63 ± 1.27 |
| T2-D1 | 729.75 ± 16.17 | 851.88 ± 30.12 | 837.93 ± 24.96 | 47.76 ± 0.75 | 50.07 ± 0.89 | 55.95 ± 0.83 | 35.13 ± 0.85 | 39.05 ± 1.36 | 30.73 ± 1.22 |
| T2-D2 | 728.46 ± 18.57 | 846.24 ± 23.58 | 831.48 ± 24.09 | 50.67 ± 0.97 | 50.76 ± 1.03 | 55.32 ± 0.82 | 38.80 ± 0.96 | 38.80 ± 0.96 | 30.63 ± 0.73 |
| T2-D3 | 720.24 ± 15.87 | 851.07 ± 33.84 | 837.93 ± 32.58 | 51.96 ± 0.78 | 51.15 ± 0.90 | 54.63 ± 0.80 | 34.25 ± 1.08 | 38.63 ± 1.25 | 30.55 ± 0.86 |
| T3-D1 | 731.19 ± 29.79 | 838.74 ± 22.17 | 840.66 ± 20.97 | 53.85 ± 0.65 | 52.02 ± 0.70 | 56.37 ± 0.95 | 34.33 ± 1.09 | 38.50 ± 0.96 | 30.50 ± 0.88 |
| T3-D2 | 717.78 ± 16.47 | 819.87 ± 20.91 | 834.18 ± 20.55 | 54.78 ± 0.83 | 52.38 ± 0.79 | 56.76 ± 0.83 | 37.56 ± 1.19 | 37.53 ± 1.19 | 30.43 ± 0.76 |
| T3-D3 | 700.74 ± 19.71 | 810.33 ± 27.54 | 831.42 ± 20.31 | 56.37 ± 0.92 | 53.94 ± 0.73 | 56.88 ± 1.03 | 32.55 ± 0.93 | 35.52 ± 0.82 | 30.48 ± 1.13 |
| T4-D1 | 705.24 ± 23.55 | 826.50 ± 28.98 | 835.17 ± 24.06 | 57.48 ± 0.48 | 54.63 ± 0.88 | 57.15 ± 0.95 | 32.65 ± 1.02 | 35.40 ± 0.86 | 30.38 ± 0.96 |
| T4-D2 | 690.33 ± 25.50 | 804.99 ± 31.08 | 826.53 ± 23.37 | 58.35 ± 0.72 | 55.68 ± 0.83 | 57.33 ± 0.92 | 32.81 ± 1.30 | 35.20 ± 1.19 | 30.35 ± 1.22 |
| T4-D3 | 673.17 ± 20.79 | 786.51 ± 29.07 | 810.24 ± 28.74 | 49.83 ± 1.03 | 56.46 ± 0.85 | 57.54 ± 0.90 | 33.92 ± 1.29 | 37.33 ± 1.33 | 30.20 ± 1.10 |
| T5-D1 | 657.96 ± 24.66 | 781.08 ± 18.03 | 798.93 ± 22.17 | 46.56 ± 0.72 | 57.18 ± 0.80 | 57.78 ± 0.79 | 33.98 ± 1.08 | 34.45 ± 0.89 | 30.15 ± 0.80 |
| T5-D2 | 633.84 ± 29.04 | 759.51 ± 16.02 | 791.19 ± 26.55 | 38.52 ± 0.90 | 54.54 ± 0.83 | 58.23 ± 0.88 | 33.70 ± 0.93 | 34.33 ± 1.03 | 30.08 ± 1.12 |
| T5-D3 | 619.08 ± 27.15 | 725.19 ± 31.56 | 777.54 ± 24.96 | 30.69 ± 0.76 | 51.24 ± 0.90 | 58.59 ± 1.12 | 33.54 ± 0.93 | 36.73 ± 1.02 | 29.66 ± 0.88 |
| T6-D1 | 615.63 ± 17.55 | 714.93 ± 22.17 | 759.87 ± 27.24 | 32.85 ± 0.82 | 49.26 ± 0.72 | 58.74 ± 0.92 | 33.23 ± 0.72 | 36.45 ± 0.88 | 29.33 ± 0.91 |
| T6-D2 | 570.99 ± 27.24 | 699.27 ± 25.08 | 743.16 ± 23.88 | 27.93 ± 0.69 | 45.63 ± 0.79 | 54.15 ± 0.86 | 31.55 ± 1.08 | 36.32 ± 1.11 | 29.05 ± 0.69 |
| T6-D3 | 539.55 ± 26.64 | 673.41 ± 32.46 | 720.45 ± 23.67 | 27.48 ± 0.99 | 41.46 ± 0.83 | 51.84 ± 1.10 | 28.16 ± 0.88 | 36.05 ± 0.99 | 28.73 ± 1.13 |
| Treatments | Stem Vascular Bundle Area (μm2) | Stem Xylem Percentage (%) | Stem Phloem Percentage (%) | ||||||
|---|---|---|---|---|---|---|---|---|---|
| C1 | C2 | C3 | C1 | C2 | C3 | C1 | C2 | C3 | |
| T1-D1 | 5896.37 ± 126.34 | 6497.36 ± 168.36 | 7303.88 ± 187.31 | 38.28 ± 0.68 | 41.29 ± 0.74 | 45.22 ± 1.21 | 30.34 ± 1.12 | 29.11 ± 0.85 | 26.19 ± 0.75 |
| T1-D2 | 5937.75 ± 146.74 | 6528.29 ± 189.36 | 7339.14 ± 200.13 | 38.86 ± 0.76 | 41.86 ± 0.62 | 45.65 ± 1.16 | 31.69 ± 1.16 | 29.29 ± 0.69 | 26.22 ± 0.59 |
| T1-D3 | 6014.25 ± 134.69 | 6578.15 ± 177.43 | 7398.56 ± 196.34 | 39.04 ± 0.91 | 42.13 ± 0.81 | 46.13 ± 0.96 | 32.43 ± 0.89 | 29.76 ± 0.77 | 26.46 ± 0.62 |
| T2-D1 | 6339.85 ± 153.64 | 6829.36 ± 180.17 | 7314.51 ± 206.73 | 41.23 ± 0.83 | 41.78 ± 0.59 | 45.36 ± 1.06 | 30.59 ± 1.05 | 29.46 ± 0.62 | 26.33 ± 0.71 |
| T2-D2 | 6597.34 ± 144.73 | 7085.07 ± 189.71 | 7403.73 ± 213.43 | 41.59 ± 0.69 | 43.09 ± 0.71 | 46.21 ± 1.11 | 31.86 ± 0.82 | 29.54 ± 0.75 | 26.69 ± 0.66 |
| T2-D3 | 6616.75 ± 129.37 | 7135.73 ± 200.36 | 7477.97 ± 179.34 | 42.66 ± 0.86 | 44.59 ± 0.65 | 47.82 ± 0.86 | 32.86 ± 1.06 | 29.81 ± 0.82 | 27.02 ± 0.69 |
| T3-D1 | 7028.61 ± 159.34 | 7026.59 ± 197.34 | 7464.99 ± 185.73 | 44.13 ± 0.95 | 44.36 ± 0.61 | 46.29 ± 0.76 | 29.31 ± 0.79 | 30.25 ± 0.65 | 26.95 ± 0.74 |
| T3-D2 | 7323.69 ± 171.35 | 7221.29 ± 206.37 | 7587.51 ± 192.33 | 46.39 ± 1.02 | 45.11 ± 0.86 | 47.55 ± 1.33 | 28.18 ± 0.85 | 29.46 ± 0.59 | 27.36 ± 0.58 |
| T3-D3 | 7611.27 ± 186.34 | 7389.59 ± 211.46 | 7667.12 ± 165.92 | 48.27 ± 0.87 | 47.26 ± 0.91 | 48.37 ± 1.42 | 26.19 ± 0.74 | 28.59 ± 0.68 | 27.98 ± 0.64 |
| T4-D1 | 7269.73 ± 163.72 | 7429.28 ± 193.37 | 7686.57 ± 175.29 | 45.36 ± 0.93 | 48.79 ± 0.79 | 48.86 ± 1.19 | 28.57 ± 0.82 | 28.29 ± 0.76 | 26.59 ± 0.75 |
| T4-D2 | 7063.79 ± 174.64 | 7890.55 ± 204.31 | 7790.63 ± 184.33 | 41.11 ± 0.72 | 51.79 ± 0.62 | 50.12 ± 1.29 | 27.37 ± 0.76 | 27.86 ± 0.82 | 27.81 ± 0.59 |
| T4-D3 | 6576.43 ± 152.47 | 8319.86 ± 217.33 | 7953.12 ± 189.37 | 35.22 ± 0.69 | 56.33 ± 0.68 | 51.89 ± 1.46 | 25.19 ± 0.69 | 27.57 ± 0.66 | 29.69 ± 0.63 |
| T5-D1 | 6203.39 ± 171.08 | 7526.82 ± 198.37 | 8240.24 ± 208.36 | 38.38 ± 0.66 | 50.22 ± 0.52 | 50.74 ± 1.28 | 24.23 ± 0.52 | 26.99 ± 0.52 | 28.45 ± 0.57 |
| T5-D2 | 5723.34 ± 130.28 | 7119.63 ± 169.34 | 8576.01 ± 213.43 | 33.39 ± 0.63 | 46.19 ± 0.49 | 53.61 ± 1.52 | 22.15 ± 0.71 | 26.53 ± 0.48 | 27.69 ± 0.85 |
| T5-D3 | 5122.67 ± 129.33 | 6633.58 ± 172.37 | 8900.66 ± 222.73 | 28.46 ± 0.52 | 41.22 ± 0.36 | 55.36 ± 1.36 | 21.85 ± 0.66 | 24.39 ± 0.32 | 25.22 ± 0.57 |
| T6-D1 | 4767.42 ± 142.69 | 6319.84 ± 179.34 | 7745.90 ± 196.34 | 24.85 ± 0.43 | 36.26 ± 0.52 | 54.75 ± 1.27 | 21.74 ± 0.61 | 25.86 ± 0.51 | 26.19 ± 0.69 |
| T6-D2 | 4364.31 ± 116.32 | 5928.37 ± 140.37 | 7255.64 ± 185.16 | 22.33 ± 0.37 | 32.29 ± 0.46 | 51.39 ± 1.12 | 20.26 ± 0.49 | 23.85 ± 0.48 | 25.02 ± 0.51 |
| T6-D3 | 3935.56 ± 105.96 | 5413.05 ± 152.43 | 6656.78 ± 190.18 | 19.83 ± 0.26 | 25.28 ± 0.41 | 48.33 ± 1.05 | 19.96 ± 0.38 | 22.29 ± 0.37 | 23.62 ± 0.73 |
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Zhang, F.; Wang, J.; Yang, J.; Lin, C.; Wang, N.; Zheng, W.; Huo, Z. Effects of Low Temperature Stress During Jointing Stage on the Source–Flow–Sink System in Winter Wheat. Agriculture 2026, 16, 738. https://doi.org/10.3390/agriculture16070738
Zhang F, Wang J, Yang J, Lin C, Wang N, Zheng W, Huo Z. Effects of Low Temperature Stress During Jointing Stage on the Source–Flow–Sink System in Winter Wheat. Agriculture. 2026; 16(7):738. https://doi.org/10.3390/agriculture16070738
Chicago/Turabian StyleZhang, Fengyin, Jiayi Wang, Jianying Yang, Cheng Lin, Na Wang, Wei Zheng, and Zhiguo Huo. 2026. "Effects of Low Temperature Stress During Jointing Stage on the Source–Flow–Sink System in Winter Wheat" Agriculture 16, no. 7: 738. https://doi.org/10.3390/agriculture16070738
APA StyleZhang, F., Wang, J., Yang, J., Lin, C., Wang, N., Zheng, W., & Huo, Z. (2026). Effects of Low Temperature Stress During Jointing Stage on the Source–Flow–Sink System in Winter Wheat. Agriculture, 16(7), 738. https://doi.org/10.3390/agriculture16070738

