Effects of CO2 Concentration on Postharvest Quality of ‘Jinyan’ Kiwifruit Under Controlled Atmosphere Storage: Evidence of Low CO2 Sensitivity
Abstract
1. Introduction
2. Materials and Methods
2.1. Plant Material and Treatments
2.2. Quality Attribute Measurements and First-Order Kinetic Modelling
2.3. Flesh Colour Measurement
2.4. Respiration Rate Determination
2.5. Antioxidant Enzyme Activity Assays
2.6. Data Analysis
3. Results
3.1. Overall Effects of Treatment and Storage Time
3.2. Effects of Different Treatments on Quality Attributes of ‘Jinyan’ Kiwifruit During Storage
3.3. Flesh Colour Evolution of ‘Jinyan’ Kiwifruit Under Different Treatments During Cold Storage
3.4. Respiration and Antioxidant Enzyme Responses of ‘Jinyan’ Kiwifruit to Different Treatments During Cold Storage
4. Discussion
4.1. Low CO2 Sensitivity and the Critical Safety Range
4.2. Physiological Mechanisms of Quality Preservation Under Elevated CO2
4.3. Time-Dependent Effects of Treatments and Implications for Storage Duration
4.4. Limitations of the Study and Future Directions
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Mworia, E.G.; Yoshikawa, T.; Salikon, N.; Oda, C.; Fukuda, T.; Suezawa, K.; Asiche, W.O.; Ushijima, K.; Nakano, R.; Kubo, Y. Low-Temperature-Modulated Fruit Ripening Is Independent of Ethylene in ‘Sanuki Gold’ Kiwifruit. J. Exp. Bot. 2012, 63, 963–971. [Google Scholar] [CrossRef]
- Huang, Z.H.; Guo, L.F.; Wang, H.; Qu, H.X.; Ma, S.M.; Liu, Y.F.; Huang, H.W.; Jiang, Y.M. Energy Status of Kiwifruit Stored under Different Temperatures or Exposed to Long-Term Anaerobic Conditions or Pure Oxygen. Postharvest Biol. Technol. 2014, 98, 56–64. [Google Scholar] [CrossRef]
- Zhong, C.H.; Wang, S.M.; Jiang, Z.W.; Huang, H.W. ‘Jinyan’, an Interspecific Hybrid Kiwifruit with Brilliant Yellow Flesh and Good Storage Quality. HortScience 2012, 47, 1187–1190. [Google Scholar] [CrossRef]
- Yan, H.L.; Chen, H.X.; Zhao, J.L.; Yao, T.; Ding, X.C. Postharvest H2O2 Treatment Affects Flavor Quality, Texture Quality and ROS Metabolism of ‘Hongshi’ Kiwifruit Fruit Kept at Ambient Conditions. Food Chem. 2023, 405, 134908. [Google Scholar] [CrossRef]
- Wang, Q.; An, X.X.; Xiang, M.L.; Chen, X.; Luo, Z.Y.; Fu, Y.Q.; Chen, M.; Chen, J.Y. Effects of 1-MCP on the Physiological Attributes, Volatile Components and Ester-Biosynthesis-Related Gene Expression during Storage of ‘Jinyan’ Kiwifruit. Horticulturae 2021, 7, 381. [Google Scholar] [CrossRef]
- Jiang, L.H.; Zhan, M.X.; Chen, Y.Y.; Zeng, L.C.; Ma, Q.L. Quality Evaluation of 1-MCP Treated ‘Jinyan’ Kiwifruit during Ambient Storage and Post-Cold Storage Shelf Life. Storage Process 2025, 25, 21–32. [Google Scholar] [CrossRef]
- Tang, F.Y.; Li, W.J.; Wang, T.; Wang, J.; Li, L.J.; Deng, Q.X. Effect of 1-MCP Treatment on Preservation and Quality of ‘Jinyan’ Kiwifruit. IOP Conf. Ser. Earth Environ. Sci. 2021, 267, 062039. [Google Scholar] [CrossRef]
- Zhang, J.; Ma, Y.C.; Dong, C.; Terry, L.A.; Watkins, C.B.; Yu, Z.F.; Cheng, Z.-M. Meta-Analysis of the Effects of 1-Methylcyclopropene (1-MCP) Treatment on Climacteric Fruit Ripening. Hortic. Res. 2020, 7, 208. [Google Scholar] [CrossRef] [PubMed]
- Huang, H.; Guo, L.F.; Wang, L.; Wang, H.; Ma, S.M.; Jiang, Y.Y.M.; Qu, H.X. 1-Methylcyclopropene (1-MCP) Slows Ripening of Kiwifruit and Affects Energy Status, Membrane Fatty Acid Contents and Cell Membrane Integrity. Postharvest Biol. Technol. 2019, 156, 110941. [Google Scholar] [CrossRef]
- European Food Safety Authority (EFSA). Evaluation of Confirmatory Data Following the Article 12 MRL Review for 1-Methylcyclopropene. EFSA J. 2020, 18, e05963. [Google Scholar] [CrossRef]
- Lee, J.G.; Lee, J.-H.; Chang, M.-S.; Baek, D.-R.; Yang, H.; Eum, H.L. Exploring Ripening Suppression in Peach Fruit during Controlled Atmosphere Storage with Transcriptome Insights. Sci. Rep. 2025, 15, 14178. [Google Scholar] [CrossRef]
- Irving, D.E. High Concentrations of Carbon Dioxide Influence Kiwifruit Ripening. Postharvest Biol. Technol. 1992, 2, 109–115. [Google Scholar] [CrossRef]
- Burdon, J.; Lallu, N.; Billing, D.; Burmeister, D.; Yearsley, C.; Wang, M.; Gunson, A.; Young, H. Carbon Dioxide Scrubbing Systems Alter the Ripe Fruit Volatile Profiles in Controlled-Atmosphere Stored ‘Hayward’ Kiwifruit. Postharvest Biol. Technol. 2005, 35, 133–141. [Google Scholar] [CrossRef]
- Zhang, S.P.; Wang, X.R.; Cui, W.; Zhang, K.; Hu, Q.X.; Lu, Y.F.; Miao, J.Y.; Liu, C.; Niu, J.J. Effects of Controlled Atmosphere Storage on the Shelf Quality of Jintao Kiwifruit. J. Henan Agric. Sci. 2022, 51, 162–171. [Google Scholar] [CrossRef]
- Li, H.J.; Zhu, Y.Q.; Luo, F.Y.; He, H.Y.; Yuan, H.Y.; Gao, J.; Zeng, X.D.; Huang, C. Use of Controlled Atmospheres to Maintain Postharvest Quality and Improve Storage Stability of a Novel Red-Fleshed Kiwifruit (Actinidia chinensis Planch. var. Rufopulpa [C.F. Liang et R.H. Huang] C.F. Liang et A.R. Ferguson). J. Food Process. Preserv. 2014, 39, 907–914. [Google Scholar] [CrossRef]
- Zhang, P.; Chen, X.R.; Jia, X.Y.; Li, J.K. Effects of CO2 Injury on the Flavor Quality of Actinidia arguta. Sci. Technol. Food Ind. 2023, 44, 378–386. [Google Scholar] [CrossRef]
- Huang, W.J.; Wang, Z.Q.; Yang, J.; Zhang, Q.; Xu, Y.P.; Tu, G.Q.; Han, F.; Zhong, C.H. Effects of Different Temperatures and Ethylene Treatments on Fruit Fast Softening and Ripening of ‘Jinyan’ Kiwifruit. China Fruits 2024, 11, 39–45+52. [Google Scholar] [CrossRef]
- Zhang, Q.; Li, Q.L.; Li, S.H.; Ge, K.D.; Zhang, W. Effects on fruit quality and storability of “Jinyan” kiwifruit under differentharvest time. J. Food Saf. Qual. 2020, 11, 3913–3918. [Google Scholar] [CrossRef]
- Pennycook, S.R.; Manning, M.A. Picking Wound Curing to Reduce Botrytis Storage Rot of Kiwifruit. N. Z. J. Crop Hortic. Sci. 1992, 20, 357–360. [Google Scholar] [CrossRef]
- Wei, X.; Mao, L.; Han, X.; Lu, W.; Xie, D.; Ren, X.; Zhao, Y. High Oxygen Facilitates Wound Induction of Suberin Polyphenolics in Kiwifruit. J. Sci. Food Agric. 2017, 98, 2223–2230. [Google Scholar] [CrossRef]
- Yi, B.; Kan, A.K.; Peng, H.; Wang, N.; Sun, X.G. Prediction of Quality Indicators of Strawberries under Hypobaric Storage Using Kinetic Modeling. J. Food Meas. Charact. 2024, 18, 1473–1482. [Google Scholar] [CrossRef]
- Binder, B.M. Ethylene Signaling in Plants. J. Biol. Chem. 2020, 295, 7710–7725. [Google Scholar] [CrossRef]
- Wang, W.; Wang, J.; Wu, Y.; Li, D.; Allan, A.C.; Yin, X. Genome-wide Analysis of Coding and Non-coding RNA Reveals a Conserved miR164-NAC Regulatory Pathway for Fruit Ripening. New Phytol. 2019, 225, 1618–1634. [Google Scholar] [CrossRef] [PubMed]
- Zhang, A.; Hu, X.; Kuang, S.; Ge, H.; Yin, X.; Chen, K. Isolation, Classification and Transcription Profiles of the Ethylene Response Factors (ERFs) in Ripening Kiwifruit. Sci. Hortic. 2016, 199, 209–215. [Google Scholar] [CrossRef]
- Chang, E.-H.; Lee, J.-S.; Kim, J.-G. Cell Wall Degrading Enzymes Activity Is Altered by High Carbon Dioxide Treatment in Postharvest ‘Mihong’ Peach Fruit. Sci. Hortic. 2017, 225, 399–407. [Google Scholar] [CrossRef]
- Ali, M.; Raza, M.A.; Li, S.; Zhou, L.; Huan, C.; Shuling, S.; Zheng, X. 1-MCP Regulates Ethanol Fermentation and GABA Shunt Pathway Involved in Kiwifruit Quality During Postharvest Storage. Hortic. Plant J. 2021, 7, 23–30. [Google Scholar] [CrossRef]
- Wang, Z.H.; Wang, W.H.; Jia, C.S.; Jiang, Y.B. Effects of carbon dioxide concentrations on the physiological indexes of ‘Hongxiangsu’ pears during shelf-life after controlled atmosphere storage. J. Fruit. Sci. 2020, 37, 1562–1572. [Google Scholar] [CrossRef]
- Li, H.; Billing, D.; Pidakala, P.; Burdon, J. Textural Changes in ‘Hayward’ Kiwifruit during and after Storage in Controlled Atmospheres. Sci. Hortic. 2017, 222, 40–45. [Google Scholar] [CrossRef]
- Li, R.; Yang, S.; Wang, D.; Liang, J.; Huang, T.; Zhang, L.; Luo, A. Electron-Beam Irradiation Delayed the Postharvest Senescence of Kiwifruit during Cold Storage through Regulating the Reactive Oxygen Species Metabolism. Radiat. Phys. Chem. 2021, 189, 109717. [Google Scholar] [CrossRef]
- Xia, Y.; Chen, T.; Qin, G.; Li, B.; Tian, S. Synergistic Action of Antioxidative Systems Contributes to the Alleviation of Senescence in Kiwifruit. Postharvest Biol. Technol. 2016, 111, 15–24. [Google Scholar] [CrossRef]
- Del Olmo, I.; Romero, I.; Alvarez, M.D.; Tarradas, R.; Sanchez-Ballesta, M.T.; Escribano, M.I.; Merodio, C. Transcriptomic Analysis of CO2-Treated Strawberries (Fragaria Vesca) with Enhanced Resistance to Softening and Oxidative Stress at Consumption. Front. Plant Sci. 2022, 13, 983976. [Google Scholar] [CrossRef]
- Wang, D.; Li, W.; Li, D.; Li, L.; Luo, Z. Effect of High Carbon Dioxide Treatment on Reactive Oxygen Species Accumulation and Antioxidant Capacity in Fresh-Cut Pear Fruit during Storage. Sci. Hortic. 2021, 281, 109925. [Google Scholar] [CrossRef]
- Liao, Z.Y.; Zhou, H.L.; Yao, Z.X.; Wang, X.R.; Ma, H. Effects of Dynamic Controlled Atmosphere Storage on Postharvest Qualities of ‘Cuixiang’ Kiwi Fruits. Storage Process 2021, 21, 31–37. [Google Scholar] [CrossRef]
- Zhang, Y.; Wang, K.; Xiao, X.; Cao, S.; Chen, W.; Yang, Z.; Shi, L. Effect of 1-MCP on the Regulation Processes Involved in Ascorbate Metabolism in Kiwifruit. Postharvest Biol. Technol. 2021, 179, 111563. [Google Scholar] [CrossRef]
- Hasanuzzaman, M.; Bhuyan, M.H.M.B.; Anee, T.I.; Parvin, K.; Nahar, K.; Mahmud, J.A.; Fujita, M. Regulation of Ascorbate-Glutathione Pathway in Mitigating Oxidative Damage in Plants under Abiotic Stress. Antioxidants 2019, 8, 384. [Google Scholar] [CrossRef] [PubMed]
- Ding, H.; Wang, B.; Han, Y.; Li, S. The Pivotal Function of Dehydroascorbate Reductase in Glutathione Homeostasis in Plants. J. Exp. Bot. 2020, 71, 3405–3416. [Google Scholar] [CrossRef]
- Zhang, Y.X.; Chen, Y.; Guo, Y.Y.; Ma, Y.L.; Yang, M.; Fu, R.Q.; Sun, Y.P. Elevated CO2 Delayed Yellowing by Maintaining Chlorophyll Biosynthesis and Inhibiting Chlorophyll Degradation and Carotenoid Accumulation of Postharvest Broccoli. Postharvest Biol. Technol. 2022, 194, 112089. [Google Scholar] [CrossRef]
- Eum, H.L.; Han, S.H.; Lee, E.J. High-CO2 Treatment Prolongs the Postharvest Shelf Life of Strawberry Fruits by Reducing Decay and Cell Wall Degradation. Foods 2021, 10, 1649. [Google Scholar] [CrossRef]
- Smrke, T.; Cvelbar Weber, N.; Razinger, J.; Medic, A.; Veberic, R.; Hudina, M.; Jakopic, J. Short-Term Storage in a Modified Atmosphere Affects the Chemical Profile of Blueberry (Vaccinium corymbosum L.) Fruit. Horticulturae 2022, 10, 194. [Google Scholar] [CrossRef]
- Nguyen, T.M.V.; Tran, D.T.; Van de Poel, B.; Hertog, M.L.A.T.M.; Nicolai, B. The Impact of Growing Season on the Ethylene Biosynthesis and Signaling Pathways of a Heat Tolerant Tomato during Off-Vine Postharvest Ripening. Postharvest Biol. Technol. 2024, 207, 112637. [Google Scholar] [CrossRef]




| Parameter | Treatment (df = 5) | Time (df = 5) | Treatment × Time (df = 25) | |||
|---|---|---|---|---|---|---|
| F | p | F | p | F | p | |
| Firmness | 678.18 | <0.001 | 12,339.24 | <0.001 | 111.84 | <0.001 |
| TA | 249.98 | <0.001 | 5474.13 | <0.001 | 31.84 | <0.001 |
| Vc | 725.49 | <0.001 | 3459.897 | <0.001 | 223.58 | <0.001 |
| TSS | 558.27 | <0.001 | 80,092.10 | <0.001 | 175.80 | <0.001 |
| L* | 7.63 | <0.001 | 288.47 | <0.001 | 3.18 | <0.001 |
| a* | 14.90 | <0.001 | 151.68 | <0.001 | 2.96 | <0.001 |
| b* | 11.19 | <0.001 | 81.81 | <0.001 | 1.82 | 0.026 † |
| C* | 12.43 | <0.001 | 96.31 | <0.001 | 1.94 | 0.015 † |
| h° | 12.19 | <0.001 | 101.41 | <0.001 | 2.98 | <0.001 |
| Respiration rate | 98.31 | <0.001 | 537.27 | <0.001 | 64.15 | <0.001 |
| POD | 17.66 | <0.001 | 39.28 | <0.001 | 19.60 | <0.001 |
| CAT | 19.79 | <0.001 | 9.761 | <0.001 | 3.19 | <0.001 |
| SOD | 18.62 | <0.001 | 279.13 | <0.001 | 36.05 | <0.001 |
| Treatment | Firmness | TA | Vc | |||
|---|---|---|---|---|---|---|
| k (d−1) | R2 | k (d−1) | R2 | k (d−1) | R2 | |
| CK | 0.01376 a | 0.991 | 0.00289 a | 0.907 | 0.00167 | 0.475 |
| 1-MCP | 0.01309 a | 0.949 | 0.00297 a | 0.961 | 0.00153 † | 0.620 |
| 1% CO2 | 0.00990 b | 0.924 | 0.00236 b | 0.847 | 0.00106 | 0.351 |
| 2% CO2 | 0.01018 b | 0.832 | 0.00273 ab | 0.875 | 0.00141 † | 0.648 |
| 3% CO2 | 0.01053 b | 0.969 | 0.00191 c | 0.852 | 0.00149 † | 0.783 |
| 4% CO2 | 0.00837 c | 0.932 | 0.00215 bc | 0.866 | 0.00072 | 0.082 |
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Zhang, S.; Niu, J.; Cui, W.; Zhang, K.; Lu, Y. Effects of CO2 Concentration on Postharvest Quality of ‘Jinyan’ Kiwifruit Under Controlled Atmosphere Storage: Evidence of Low CO2 Sensitivity. Horticulturae 2026, 12, 725. https://doi.org/10.3390/horticulturae12060725
Zhang S, Niu J, Cui W, Zhang K, Lu Y. Effects of CO2 Concentration on Postharvest Quality of ‘Jinyan’ Kiwifruit Under Controlled Atmosphere Storage: Evidence of Low CO2 Sensitivity. Horticulturae. 2026; 12(6):725. https://doi.org/10.3390/horticulturae12060725
Chicago/Turabian StyleZhang, Sipu, Jiajia Niu, Wei Cui, Ke Zhang, and Yunfeng Lu. 2026. "Effects of CO2 Concentration on Postharvest Quality of ‘Jinyan’ Kiwifruit Under Controlled Atmosphere Storage: Evidence of Low CO2 Sensitivity" Horticulturae 12, no. 6: 725. https://doi.org/10.3390/horticulturae12060725
APA StyleZhang, S., Niu, J., Cui, W., Zhang, K., & Lu, Y. (2026). Effects of CO2 Concentration on Postharvest Quality of ‘Jinyan’ Kiwifruit Under Controlled Atmosphere Storage: Evidence of Low CO2 Sensitivity. Horticulturae, 12(6), 725. https://doi.org/10.3390/horticulturae12060725
