Pipe Cavitation Parameters Reveal Bubble Embolism Dynamics in Maize Xylem Vessels across Water Potential Gradients
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Theory
2.3. Sample Processing
2.3.1. Physiological Indicators
2.3.2. Measurement of Stem Flow Rate and Leaf Water Potential in Maize
2.3.3. Quantifying Hydraulic Conductivity Loss for Xylem Vulnerability-Curve Generation
2.4. Small Flow Method
3. Results
3.1. Physiological Parameters of Maize
3.2. Establishing the Bubble Radius–Sap Flow Rate–Water Potential Model
3.3. Comparison of Cavitation Emergence in Leaf PLC and Model Predictions
3.4. Observations of Leaf Conditions at Different Water Potentials during Cavitation
4. Discussion
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
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Month | Mean Month Air Temperature (°C) | Humidity Range (%) | Precipitation (mm) | Mean Daily Net Radiation (W m−2) | |
---|---|---|---|---|---|
2021 | March | 21.91 | 18.1–99.9 | 1.39 | 259.3 |
2022 | March | 23.12 | 25.4–99.9 | 79.33 | 206.1 |
2023 | March | 20.69 | 23.1–99.9 | 0.13 | 197.4 |
Year | Number of Leaves | Number of Veins | Diameter of Xylem Vessels (μm) | Maize Leaf Length (cm) |
---|---|---|---|---|
2021 | 12 | 45 | 43.01 ± 0.35 | 74.95 ± 1.21 |
9 | 38 | 28.01 ± 1.27 | 56.50 ± 0.53 | |
11 | 43 | 36.13 ± 0.98 | 64.40 ± 3.18 | |
6 | 35 | 32.74 ± 2.77 | 47.90 ± 2.26 | |
9 | 39 | 34.29 ± 1.3 | 67.40 ± 1.30 | |
15 | 53 | 64.8 ± 1.43 | 93.70 ± 2.11 | |
12 | 48 | 41.57 ± 2.36 | 66.40 ± 1.57 | |
Average value | 10.57 | 43 | 40.08 | 67.30 |
2022 | 11 | 45 | 46.02 ± 2.78 | 78.40 ± 0.43 |
7 | 34 | 18.43 ± 1.24 | 41.55 ± 3.53 | |
8 | 35 | 22.65 ± 0.74 | 49.60 ± 1.73 | |
10 | 38 | 23.79 ± 2.1 | 56.10 ± 3.12 | |
12 | 47 | 46.19 ± 2.33 | 75.35 ± 1.83 | |
7 | 29 | 19.41 ± 0.69 | 40.75 ± 0.86 | |
10 | 40 | 35.43 ± 1.45 | 62.75 ± 1.48 | |
Average value | 9.29 | 38.29 | 30.27 | 57.80 |
2023 | 12 | 49 | 49 ± 1.26 | 72.5 ± 1.32 |
11 | 46 | 21.86 ± 2.10 | 59.05 ± 1.2 | |
7 | 36 | 23.2 ± 1.56 | 49.40 ± 2.10 | |
12 | 41 | 35.67 ± 1.43 | 66.70 ± 1.63 | |
8 | 37 | 27.81 ± 2.43 | 49.30 ± 3.41 | |
10 | 27 | 27.53 ± 1.15 | 78.15 ± 0.76 | |
9 | 35 | 25.67 ± 0.89 | 56.20 ± 0.84 | |
Average value | 9.86 | 38.71 | 30.51 | 62.20 |
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Ren, Y.; Zhang, Y.; Guo, S.; Wang, B.; Wang, S.; Gao, W. Pipe Cavitation Parameters Reveal Bubble Embolism Dynamics in Maize Xylem Vessels across Water Potential Gradients. Agriculture 2023, 13, 1867. https://doi.org/10.3390/agriculture13101867
Ren Y, Zhang Y, Guo S, Wang B, Wang S, Gao W. Pipe Cavitation Parameters Reveal Bubble Embolism Dynamics in Maize Xylem Vessels across Water Potential Gradients. Agriculture. 2023; 13(10):1867. https://doi.org/10.3390/agriculture13101867
Chicago/Turabian StyleRen, Yangjie, Yitong Zhang, Shiyang Guo, Ben Wang, Siqi Wang, and Wei Gao. 2023. "Pipe Cavitation Parameters Reveal Bubble Embolism Dynamics in Maize Xylem Vessels across Water Potential Gradients" Agriculture 13, no. 10: 1867. https://doi.org/10.3390/agriculture13101867
APA StyleRen, Y., Zhang, Y., Guo, S., Wang, B., Wang, S., & Gao, W. (2023). Pipe Cavitation Parameters Reveal Bubble Embolism Dynamics in Maize Xylem Vessels across Water Potential Gradients. Agriculture, 13(10), 1867. https://doi.org/10.3390/agriculture13101867