Influence of Rhizosphere Temperature and Humidity Regulation on Rooting, Mortality, and Transplant Survival of Aeroponically Rapid Growth Mulberry Cutting
Abstract
:1. Introduction
2. Materials and Methods
2.1. Design of Aeroponically Rapid Propagation Experimental Test Bench
2.2. Temperature and Humidity Monitoring and Control System
2.3. Experimental Site and Plant Material
2.4. Experimental Arrangement
2.5. Experimental Indices
2.5.1. Indices of Cultivation
- The computation methodologies for callus rooting and mortality rates remained consistent across treatment groups. In each treatment group, callus formation at the incision site, root system development at the base, and the count of deceased cuttings were compared to calculate the callus, rooting, and mortality rates.
- Root length was non-invasively measured using a vernier caliper, and root count was recorded directly. The subsequent determination of average root length and average root number followed.
- Upon experiment completion, five randomly selected rooted plants underwent root clipping. The fresh weight of the roots was assessed using an electronic balance model JM-B6002 (Max = 600 g, d = 0.01 g, e = 10 d). After measuring the fresh weight, the roots were placed in an envelope and dried for three hours in an 85 °C dryer. The dry weight was measured using a high-precision electronic balance, Sartorius model BS223S (Max 220 g, d = 0.001 g).
2.5.2. Transplanting Survival Rate
2.5.3. Droplet Adhesion Amount
2.6. Statistical Analyses
3. Results and Discussion
3.1. Rapid Propagation and Transplanting Results
- a.
- Effect of humidity regulation on rooting of cuttings
- b.
- Effect of temperature regulation on rooting of cuttings
- c.
- Effect of temperature and humidity regulation on rooting of cuttings
3.2. The Impact of Aeroponically Rapid Propagation Transplanting Survival Rate Statistics
3.3. Study the Relationship Between the Droplet Adhesion Amount, Mildew, and Rot of Cuttings
3.3.1. Distribution of Moldy and Rotten Cuttings in Aeroponically Rapid Propagation System
3.3.2. Result Analysis of Droplet Adhesion
4. Conclusions
- Develop intelligent systems to regulate the plant’s aeroponically rapid propagation process precisely.
- Investigate temperature and humidity conditions with greater detail and specificity, narrowing down the regulation ranges. Explore other environmental factors, such as light intensity, nutrient solution composition, and concentrations.
- Address the issue of uneven droplet adhesion by redesigning aeroponically rapid propagation devices to improve cutting survival rates.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
H1 | Humidity-regulated aerosol rapid cultivation experiment with 90–100% humidity |
H2 | Humidity-regulated aerosol rapid cultivation experiment with 95–100% humidity |
H3 | Humidity-regulated aerosol rapid cultivation experiment, and spraying for 2 min every 30 min |
HCK | Humidity-regulated soil cultivation experiment and regular watering |
T1 | Temperature-regulated aerosol rapid cultivation experiment with 25–27 °C temperature and spray for 2 min every 30 min |
T2 | No temperature regulation, with room temperature and spraying for 2 min every 30 min |
TCK | Temperature-regulated soil cultivation with room temperature and regular watering |
TH | Temperature and humidity co-regulated aerosol rapid cultivation experiment with 90–100% humidity and 25–27 °C temperature |
THCK | No temperature and humidity co-regulated aerosol rapid cultivation experiment, with room temperature and spraying for 2 min every 30 min |
ANOVA | Analysis of variance |
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Groups | Type | Condition |
---|---|---|
Humidity regulation experiment | ||
H1 | 90% ≤ Humidity ≤ 100% | |
H2 | Aeroponic rapid cultivation | 95% ≤ Humidity ≤ 100% |
H3 | Spray for 2 min every 30 min | |
HCK | Soil cultivation | Regular watering |
Temperature regulation experiment | ||
T1 | Aeroponic rapid cultivation | Spray for 2 min every 30 min, 25 °C < Temperature < 27 °C |
T2 | Spray for 2 min every 30 min, There is no temperature Regulation, Room temperature | |
TCK | Soil cultivation | Regular watering, Room temperature |
Temperature and humidity regulation experiment | ||
TH | Aeroponic rapid cultivation | 90% ≤ Humidity ≤ 100% 25 °C < Temperature < 27 °C |
THCK | Spray for 2 min every 30 min, There is no temperature Regulation, Room temperature |
Groups | The Rooting Rate/% | The Callus Rate/% | The Average Root Number | The Average Root Length/mm | The Mortality Rate/% | The Fresh Weight/g | The Dry Weight/g |
---|---|---|---|---|---|---|---|
Humidity regulation experiment | |||||||
H1 | 54 ± 2 a | 77 ± 3 a | 5.27 ± 0.08 b | 72.10 ± 0.34 b | 40 ± 1 b | 0.722 ± 0.007 b | 0.062 ± 0.002 b |
H2 | 52 ± 2 b | 71 ± 2 b | 4.35 ± 0.05 c | 67.30 ± 0.41 c | 34 ± 2 c | 0.613 ± 0.008 c | 0.053 ± 0.001 c |
H3 | 51 ± 2 c | 70 ± 0.01 c | 5.87 ± 0.05 a | 75.70 ± 0.35 a | 43 ± 2 a | 0.772 ± 0.011 a | 0.064 ± 0.001 a |
Temperature regulation experiment | |||||||
T1 | 43.8 ± 2.3 a | 64.2 ± 1.9 a | 3.183 ± 0.054 a | 18.690 ± 0.265 a | 44.6 ± 2.6 a | 0.473 ± 0.005 a | 0.033 ± 0.001 a |
T2 | 31.7 ± 2.5 b | 45.4 ± 2.6 b | 3.107 ± 0.068 b | 17.983 ± 0.620 b | 58.3 ± 2.5 b | 0.463 ± 0.006 b | 0.032 ± 0.001 b |
Temperature and humidity regulation experiment | |||||||
TH | 48.8 ± 0.023 a | 68.8 ± 2.3 a | 3.767 ± 0.049 a | 34.877 ± 0.214 a | 34.2 ± 1.9 a | 0.473 ± 0.005 a | 0.033 ± 0.003 a |
THCK | 34.6 ± 0.026 b | 43.3 ± 2.5 b | 2.810 ± 0.074 b | 30.167 ± 0.047 b | 53.3 ± 2.5 b | 0.37 ± 0.009 b | 0.024 ± 0.001 b |
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Shen, P.; Wang, L.; Qureshi, W.A.; Gao, J. Influence of Rhizosphere Temperature and Humidity Regulation on Rooting, Mortality, and Transplant Survival of Aeroponically Rapid Growth Mulberry Cutting. Agronomy 2025, 15, 583. https://doi.org/10.3390/agronomy15030583
Shen P, Wang L, Qureshi WA, Gao J. Influence of Rhizosphere Temperature and Humidity Regulation on Rooting, Mortality, and Transplant Survival of Aeroponically Rapid Growth Mulberry Cutting. Agronomy. 2025; 15(3):583. https://doi.org/10.3390/agronomy15030583
Chicago/Turabian StyleShen, Pengfei, Liang Wang, Waqar Ahmed Qureshi, and Jianmin Gao. 2025. "Influence of Rhizosphere Temperature and Humidity Regulation on Rooting, Mortality, and Transplant Survival of Aeroponically Rapid Growth Mulberry Cutting" Agronomy 15, no. 3: 583. https://doi.org/10.3390/agronomy15030583
APA StyleShen, P., Wang, L., Qureshi, W. A., & Gao, J. (2025). Influence of Rhizosphere Temperature and Humidity Regulation on Rooting, Mortality, and Transplant Survival of Aeroponically Rapid Growth Mulberry Cutting. Agronomy, 15(3), 583. https://doi.org/10.3390/agronomy15030583