Submitted:
07 January 2026
Posted:
09 January 2026
You are already at the latest version
Abstract
The rapid development of viticulture in subtropical regions represents a significant achievement in China’s table grape industry over the past two decades. However, insufficient winter chilling in these areas often leads to inadequate dormancy, which compromises nutrient translocation and storage in grapevine. Insufficient chilling accumulation results in asynchronous budbreak and reduced cane quality. In this study, ‘Shine Muscat’ grapevines were used to systematically evaluate how different defoliant agents affect budbreak characteristics from the perspective of nutrient translocation and storage. The results indicated applications of ethephon or urea alone, as well as their combinations with boric acid, yielded unstable effects, often causing primary bud necrosis, decreased flower formation rates, and phytotoxicity. In contrast, the combination of lime sulfur and boric acid exhibited a remarkable synergistic effect, significantly promoting dry matter and starch accumulation in the canes, while enhancing budbreak speed, uniformity, and flower cluster formation rate. Further experiments with varying concentrations of lime sulfur combined with 0.2% boric acid revealed 2% lime sulfur combined with 0.2% boric acid produced the most pronounced effects. This combination achieved the highest dormancy-breaking efficacy under conventional cultivation conditions and was used for the first time to produce a second crop in off-season cultivation. The dual effects of dormancy release and bud promotion offered by this approach provide a reliable solution for high-quality and efficient grape production in subtropical regions.
Keywords:
1. Introduction
2. Materials and Methods
2.1. Location, Description of the Vineyard and Tested Chemicals
2.2. Treatments and Experimental Design
2.3. Data Collection and Measurement
2.3.1. Dry-Wet Weight Ratio Detection
2.3.2. Starch Content Analysis
2.3.3. Bud Necrosis Rate Statistics
2.3.4. Budbreak Rate and Speed Statistics
2.3.6. Fruiting Shoot Rate Statistics
2.3.7. Statistical Analysis
3. Results
3.1. The Effects of Different Treatments on the First Crop
3.2. The Effects of Different Treatments on Grape Secondary Crop
3.3. Effects of Lime Sulfur at Different Concentrations Combined with Boric Acid Treatment
4. Discussion
Author Contributions
Funding
Conflicts of Interest
Abbreviations
| BA | Boric Acid |
| ET | Ethephon |
| LR | Leaf Removal |
| LS | Lime Sulfur |
| UR | Urea |
| WC | Water Control |
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