Biotechnology Bulletin ›› 2025, Vol. 41 ›› Issue (3): 181-189.doi: 10.13560/j.cnki.biotech.bull.1985.2024-0635
WU Xia-ming(
), YANG Min, ZHOU Chen-ping, KUANG Rui-bin, LIU Chuan-he, HE Han, XU Ze, WEI Yue-rong(
)
Received:2024-07-05
Online:2025-03-26
Published:2025-03-20
Contact:
WEI Yue-rong
E-mail:wuxiaming625@126.com;weid18@163.com
WU Xia-ming, YANG Min, ZHOU Chen-ping, KUANG Rui-bin, LIU Chuan-he, HE Han, XU Ze, WEI Yue-rong. Effects of Different Concentrations of Melatonin on the Physiological Characteristics of Strawberry Seedlings under High-temperature Stress[J]. Biotechnology Bulletin, 2025, 41(3): 181-189.
Fig. 1 Effects of different concentrations of melatonin treatments on the growths of strawberry seedlings under high temperature stressa and b are the growth status of strawberry seedlings in each treatment at day 0 and day 9 of the high-temperature treatment, respectively
处理 Treatment | 地上部分鲜重 Fresh weight of aboveground parts/g | 地下部分鲜重 Fresh weight of underground parts/g | 地上部分干重 Dry weight of aboveground parts/g | 地下部分干重 Dry weight of underground parts/g |
|---|---|---|---|---|
| CK | 3.85±0.19 c | 4.32±0.15 b | 0.38±0.02 bc | 0.43±0.03 b |
| 100 MT | 4.05±0.22 bc | 4.32±0.23 b | 0.38±0.02 bc | 0.44±0.02 b |
| 200 MT | 3.81±0.23 c | 4.22±0.28 b | 0.36±0.02 c | 0.41±0.03 b |
| 300 MT | 4.29±0.17 b | 4.56±0.19 ab | 0.42±0.03 b | 0.46±0.04 b |
| 400 MT | 4.98±0.38 a | 4.87±0.14 a | 0.50±0.03 a | 0.52±0.03 a |
| 500 MT | 4.20±0.23 bc | 4.35±0.11 b | 0.38±0.03 bc | 0.44±0.01 b |
Table 1 Effects of different concentrations of melatonin on growth characteristics of strawberry seedlings
处理 Treatment | 地上部分鲜重 Fresh weight of aboveground parts/g | 地下部分鲜重 Fresh weight of underground parts/g | 地上部分干重 Dry weight of aboveground parts/g | 地下部分干重 Dry weight of underground parts/g |
|---|---|---|---|---|
| CK | 3.85±0.19 c | 4.32±0.15 b | 0.38±0.02 bc | 0.43±0.03 b |
| 100 MT | 4.05±0.22 bc | 4.32±0.23 b | 0.38±0.02 bc | 0.44±0.02 b |
| 200 MT | 3.81±0.23 c | 4.22±0.28 b | 0.36±0.02 c | 0.41±0.03 b |
| 300 MT | 4.29±0.17 b | 4.56±0.19 ab | 0.42±0.03 b | 0.46±0.04 b |
| 400 MT | 4.98±0.38 a | 4.87±0.14 a | 0.50±0.03 a | 0.52±0.03 a |
| 500 MT | 4.20±0.23 bc | 4.35±0.11 b | 0.38±0.03 bc | 0.44±0.01 b |
处理 Treatment | 蒸腾速率 Transpiration rate/(mmol·m-2·s-1) | 净光合速率 Net photosynthesis rate/(µmol·m-²·s-¹) | 胞间CO2浓度 Intercellular CO2 concentration/(µmol·mol-1) | 气孔导度 Stomatal conductance/(mmol·m-²·s-¹) | ||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 0 d | 3 d | 6 d | 9 d | 0 d | 3 d | 6 d | 9 d | 0 d | 3 d | 6 d | 9 d | 0 d | 3 d | 6 d | 9 d | |
| CK | 1.64±0.27 a | 0.45±0.15 b | 0.11±0.02 b | 0.05±0.01 c | 12.54±2.31 a | 3.16±0.81 d | 0.13±0.01 c | -2.16±0.48 b | 397.28±16.45 a | 387.03±19.77a | 365.85±4.42 a | 355.85±6.34 a | 56.41±4.75 a | 15.20±2.66 c | 5.63±0.93 c | 1.07±0.47 c |
| 100 MT | 1.66±0.35 a | 0.80±0.23 ab | 0.15±0.03 ab | 0.07±0.01 bc | 13.74±3.11 a | 5.32±1.04 c | 0.20±0.03 b | -1.87±0.33 b | 387.94±14.47 a | 372.02±13.80 ab | 339.89±15.43 ab | 333.23±8.29 bc | 54.91±5.83 a | 23.81±6.66 bc | 8.41±1.32 ab | 1.91±0.37 b |
| 200 MT | 1.66±0.17 a | 0.69±0.08 ab | 0.16±0.03 a | 0.07±0.01 bc | 12.67±1.84 a | 6.22±0.37 bc | 0.22±0.02 ab | -1.82±0.40 b | 396.26±22.65 a | 368.55±21.79 ab | 349.96±19.91 ab | 339.96±7.64 b | 58.97±5.24 a | 25.27±2.98 ab | 7.86±0.72 bc | 2.19±0.37 ab |
| 300 MT | 1.63±0.44 a | 0.93±0.30 a | 0.16±0.03 a | 0.06±0.01 bc | 13.34±2.25 a | 7.97±0.54 a | 0.22±0.02 ab | -1.72±0.17 b | 391.42±21.64 a | 344.81±33.55 bc | 339.93±24.13 ab | 329.93±10.60 bc | 55.26±3.93 a | 29.37±6.18 a | 8.61±1.06 ab | 2.34±0.22 ab |
| 400 MT | 1.74±0.47 a | 0.99±0.20 a | 0.17±0.02 a | 0.10±0.01 a | 13.07±1.67 a | 7.26±1.61 ab | 0.26±0.01 a | -0.53±0.16 a | 389.58±21.87 a | 328.02±18.17 c | 325.84±9.84 b | 319.17±7.05 c | 60.38±5.17 a | 36.70±5.55 a | 9.81±1.49 ab | 2.81±0.59 a |
| 500 MT | 1.71±0.36 a | 0.97±0.19 a | 0.16±0.01 a | 0.08±0.01 ab | 12.94±2.02 a | 6.81±0.99 abc | 0.25±0.05 ab | -0.55±0.12 a | 387.53±26.74 a | 350.93±11.19 abc | 336.22±5.52 b | 324.88±11.34 bc | 60.24±6.43 a | 37.18±5.45 a | 10.18±1.92 a | 2.31±0.41 ab |
Table 2 Effects of different concentrations of melatonin on photosynthesis parameters of strawberry seedlings
处理 Treatment | 蒸腾速率 Transpiration rate/(mmol·m-2·s-1) | 净光合速率 Net photosynthesis rate/(µmol·m-²·s-¹) | 胞间CO2浓度 Intercellular CO2 concentration/(µmol·mol-1) | 气孔导度 Stomatal conductance/(mmol·m-²·s-¹) | ||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 0 d | 3 d | 6 d | 9 d | 0 d | 3 d | 6 d | 9 d | 0 d | 3 d | 6 d | 9 d | 0 d | 3 d | 6 d | 9 d | |
| CK | 1.64±0.27 a | 0.45±0.15 b | 0.11±0.02 b | 0.05±0.01 c | 12.54±2.31 a | 3.16±0.81 d | 0.13±0.01 c | -2.16±0.48 b | 397.28±16.45 a | 387.03±19.77a | 365.85±4.42 a | 355.85±6.34 a | 56.41±4.75 a | 15.20±2.66 c | 5.63±0.93 c | 1.07±0.47 c |
| 100 MT | 1.66±0.35 a | 0.80±0.23 ab | 0.15±0.03 ab | 0.07±0.01 bc | 13.74±3.11 a | 5.32±1.04 c | 0.20±0.03 b | -1.87±0.33 b | 387.94±14.47 a | 372.02±13.80 ab | 339.89±15.43 ab | 333.23±8.29 bc | 54.91±5.83 a | 23.81±6.66 bc | 8.41±1.32 ab | 1.91±0.37 b |
| 200 MT | 1.66±0.17 a | 0.69±0.08 ab | 0.16±0.03 a | 0.07±0.01 bc | 12.67±1.84 a | 6.22±0.37 bc | 0.22±0.02 ab | -1.82±0.40 b | 396.26±22.65 a | 368.55±21.79 ab | 349.96±19.91 ab | 339.96±7.64 b | 58.97±5.24 a | 25.27±2.98 ab | 7.86±0.72 bc | 2.19±0.37 ab |
| 300 MT | 1.63±0.44 a | 0.93±0.30 a | 0.16±0.03 a | 0.06±0.01 bc | 13.34±2.25 a | 7.97±0.54 a | 0.22±0.02 ab | -1.72±0.17 b | 391.42±21.64 a | 344.81±33.55 bc | 339.93±24.13 ab | 329.93±10.60 bc | 55.26±3.93 a | 29.37±6.18 a | 8.61±1.06 ab | 2.34±0.22 ab |
| 400 MT | 1.74±0.47 a | 0.99±0.20 a | 0.17±0.02 a | 0.10±0.01 a | 13.07±1.67 a | 7.26±1.61 ab | 0.26±0.01 a | -0.53±0.16 a | 389.58±21.87 a | 328.02±18.17 c | 325.84±9.84 b | 319.17±7.05 c | 60.38±5.17 a | 36.70±5.55 a | 9.81±1.49 ab | 2.81±0.59 a |
| 500 MT | 1.71±0.36 a | 0.97±0.19 a | 0.16±0.01 a | 0.08±0.01 ab | 12.94±2.02 a | 6.81±0.99 abc | 0.25±0.05 ab | -0.55±0.12 a | 387.53±26.74 a | 350.93±11.19 abc | 336.22±5.52 b | 324.88±11.34 bc | 60.24±6.43 a | 37.18±5.45 a | 10.18±1.92 a | 2.31±0.41 ab |
处理 Treatment | SOD活性SOD enzyme activity/(U·g-1) | CAT活性CAT enzyme activity/(U·g-1) | POD活性POD enzyme activity/(U·g-1) | |||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 0 d | 3 d | 6 d | 9 d | 0 d | 3 d | 6 d | 9 d | 0 d | 3 d | 6 d | 9 d | |
| CK | 72.36±3.47 a | 114.31±3.83 b | 125.22±4.43 c | 84.83±3.43 b | 96.61±7.50 a | 133.35±5.89 e | 159.58±3.98 c | 102.93±5.71 c | 37.28±4.64 a | 55.33±3.06 d | 76.48±4.62 d | 55.33±3.06 d |
| 100 MT | 78.54±4.88 a | 115.21±11.88 b | 132.31±4.56 bc | 86.30±4.63 b | 103.31±6.23 a | 150.86±9.72 de | 197.23±4.17 b | 109.26±5.98 bc | 38.53±5.24 a | 79.33±4.16 c | 95.87±7.64 c | 54.67±5.67 cd |
| 200 MT | 81.64±7.64 a | 130.01±7.78 a | 138.60±5.06 ab | 96.62±2.18 a | 106.87±8.79 a | 183.27±9.08 c | 210.17±7.74 b | 116.18±3.47 ab | 41.69±3.16 a | 80.67±7.02 c | 104.58±3.21 c | 57.38±3.06 c |
| 300 MT | 76.48±3.06 a | 126.73±2.01 ab | 133.15±5.93 bc | 96.83±1.17 a | 105.47±5.84 a | 156.47±5.71 d | 206.17±21.96 b | 110.78±4.31 bc | 43.63±5.14 a | 90.66±7.57 b | 129.34±8.08 b | 61.65±3.51 bc |
| 400 MT | 80.54±5.71 a | 136.47±10.71 a | 146.60±4.58 a | 102.58±8.22 a | 110.64±13.58 a | 239.07±26.25 a | 265.39±13.85 a | 119.82±5.77 a | 47.28±7.38 a | 107.64±3.51 a | 146.42±8.74 a | 69.43±4.16 a |
| 500 MT | 79.36±4.87 a | 126.04±5.05 ab | 140.92±6.20 ab | 97.91±2.26 a | 109.82±11.58 a | 210.62±7.74 b | 251.55±8.55 a | 116.71±4.10 ab | 43.85±5.54 a | 93.32±5.03 b | 135.46±5.86 ab | 66.32±4.04 ab |
Table 3 Effects of different concentrations of melatonin on antioxidant enzyme activities of strawberry seedlings
处理 Treatment | SOD活性SOD enzyme activity/(U·g-1) | CAT活性CAT enzyme activity/(U·g-1) | POD活性POD enzyme activity/(U·g-1) | |||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 0 d | 3 d | 6 d | 9 d | 0 d | 3 d | 6 d | 9 d | 0 d | 3 d | 6 d | 9 d | |
| CK | 72.36±3.47 a | 114.31±3.83 b | 125.22±4.43 c | 84.83±3.43 b | 96.61±7.50 a | 133.35±5.89 e | 159.58±3.98 c | 102.93±5.71 c | 37.28±4.64 a | 55.33±3.06 d | 76.48±4.62 d | 55.33±3.06 d |
| 100 MT | 78.54±4.88 a | 115.21±11.88 b | 132.31±4.56 bc | 86.30±4.63 b | 103.31±6.23 a | 150.86±9.72 de | 197.23±4.17 b | 109.26±5.98 bc | 38.53±5.24 a | 79.33±4.16 c | 95.87±7.64 c | 54.67±5.67 cd |
| 200 MT | 81.64±7.64 a | 130.01±7.78 a | 138.60±5.06 ab | 96.62±2.18 a | 106.87±8.79 a | 183.27±9.08 c | 210.17±7.74 b | 116.18±3.47 ab | 41.69±3.16 a | 80.67±7.02 c | 104.58±3.21 c | 57.38±3.06 c |
| 300 MT | 76.48±3.06 a | 126.73±2.01 ab | 133.15±5.93 bc | 96.83±1.17 a | 105.47±5.84 a | 156.47±5.71 d | 206.17±21.96 b | 110.78±4.31 bc | 43.63±5.14 a | 90.66±7.57 b | 129.34±8.08 b | 61.65±3.51 bc |
| 400 MT | 80.54±5.71 a | 136.47±10.71 a | 146.60±4.58 a | 102.58±8.22 a | 110.64±13.58 a | 239.07±26.25 a | 265.39±13.85 a | 119.82±5.77 a | 47.28±7.38 a | 107.64±3.51 a | 146.42±8.74 a | 69.43±4.16 a |
| 500 MT | 79.36±4.87 a | 126.04±5.05 ab | 140.92±6.20 ab | 97.91±2.26 a | 109.82±11.58 a | 210.62±7.74 b | 251.55±8.55 a | 116.71±4.10 ab | 43.85±5.54 a | 93.32±5.03 b | 135.46±5.86 ab | 66.32±4.04 ab |
处理 Treatment | H2O2含量H2O2 content/(μmol·g-1) | O2·-的产生速率Production rate of O2·-/(μmol·g-1·min-1) | ||||||
|---|---|---|---|---|---|---|---|---|
| 0 d | 3 d | 6 d | 9 d | 0 d | 3 d | 6 d | 9 d | |
| CK | 2.63±0.12 a | 4.11±0.38 a | 6.93±0.18 a | 8.57±0.25 a | 0.83±0.06 a | 1.18±0.09 a | 1.87±0.08 a | 1.55±0.06 a |
| 100 MT | 2.58±0.11 a | 3.32±0.12 bc | 6.18±0.32 b | 7.61±0.14 b | 0.79±0.07 a | 1.15±0.08 a | 1.83±0.06 ab | 1.53±0.06 a |
| 200 MT | 2.66±0.14 a | 3.43±0.24 b | 6.09±0.19 b | 7.57±0.11 b | 0.81±0.07 a | 1.05±0.09 ab | 1.76±0.07 bc | 1.47±0.06 ab |
| 300 MT | 2.56±0.08 a | 3.18±0.13 bc | 6.14±0.25 b | 7.65±0.20 b | 0.79±0.10 a | 1.05±0.08 ab | 1.70±0.05 cd | 1.39±0.07 bc |
| 400 MT | 2.65±0.06 a | 3.01±0.16 c | 5.86±0.19 b | 7.25±0.17 c | 0.77±0.08 a | 0.92±0.04 b | 1.61±0.03 d | 1.31±0.06 c |
| 500 MT | 2.61±0.11 a | 3.52±0.20 b | 6.07±0.21 b | 7.41±0.12 bc | 0.81±0.06 a | 0.99±0.06 b | 1.67±0.04 cd | 1.35±0.06 bc |
Table 4 Effects of different concentrations of melatonin on the reactive oxygen contents of strawberry seedlings
处理 Treatment | H2O2含量H2O2 content/(μmol·g-1) | O2·-的产生速率Production rate of O2·-/(μmol·g-1·min-1) | ||||||
|---|---|---|---|---|---|---|---|---|
| 0 d | 3 d | 6 d | 9 d | 0 d | 3 d | 6 d | 9 d | |
| CK | 2.63±0.12 a | 4.11±0.38 a | 6.93±0.18 a | 8.57±0.25 a | 0.83±0.06 a | 1.18±0.09 a | 1.87±0.08 a | 1.55±0.06 a |
| 100 MT | 2.58±0.11 a | 3.32±0.12 bc | 6.18±0.32 b | 7.61±0.14 b | 0.79±0.07 a | 1.15±0.08 a | 1.83±0.06 ab | 1.53±0.06 a |
| 200 MT | 2.66±0.14 a | 3.43±0.24 b | 6.09±0.19 b | 7.57±0.11 b | 0.81±0.07 a | 1.05±0.09 ab | 1.76±0.07 bc | 1.47±0.06 ab |
| 300 MT | 2.56±0.08 a | 3.18±0.13 bc | 6.14±0.25 b | 7.65±0.20 b | 0.79±0.10 a | 1.05±0.08 ab | 1.70±0.05 cd | 1.39±0.07 bc |
| 400 MT | 2.65±0.06 a | 3.01±0.16 c | 5.86±0.19 b | 7.25±0.17 c | 0.77±0.08 a | 0.92±0.04 b | 1.61±0.03 d | 1.31±0.06 c |
| 500 MT | 2.61±0.11 a | 3.52±0.20 b | 6.07±0.21 b | 7.41±0.12 bc | 0.81±0.06 a | 0.99±0.06 b | 1.67±0.04 cd | 1.35±0.06 bc |
处理 Treatment | 相对电导率 Relative conductivity/% | 脯氨酸含量 Proline content/(μg·g-1) | 丙二醛含量 Malondialdehyde content/(nmol·g-1) | |||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 0 d | 3 d | 6 d | 9 d | 0 d | 3 d | 6 d | 9 d | 0 d | 3 d | 6 d | 9 d | |
| CK | 12.31±1.47 a | 34.13±2.14 a | 47.40±1.78 a | 66.95±1.72 a | 30.84±2.73 a | 64.50±6.78 d | 74.65±5.71 c | 29.34±1.90 a | 5.28±0.64 a | 9.16±0.61 a | 11.77±0.76 a | 16.98±1.02 a |
| 100 MT | 11.54±1.88 a | 26.91±1.74 b | 42.64±3.32 ab | 62.49±1.91 b | 29.65±3.16 a | 65.89±5.50 d | 74.11±4.41 c | 27.44±2.63 a | 5.53±0.24 a | 8.21± 0.45 bc | 10.88±0.78 ab | 15.56±0.93 b |
| 200 MT | 11.64±1.64 a | 27.31±1.53 b | 37.23±4.90 bc | 58.29±2.20 c | 32.14±3.79 a | 72.20±3.36 cd | 75.94±4.28 c | 30.76±3.19 a | 5.69±0.46 a | 8.75± 0.53 ab | 10.68±0.57 ab | 15.94±0.29 ab |
| 300 MT | 12.48±2.06 a | 24.74±1.17 bc | 36.10±4.14 c | 51.83±1.96 d | 31.27±3.84 a | 79.14±2.95 bc | 88.76±7.03 b | 31.42±2.02 a | 5.63±0.34 a | 8.97± 0.66 ab | 11.10±0.46 ab | 15.90±0.73 ab |
| 400 MT | 11.54±1.71 a | 20.80±1.42 d | 32.23±1.03 c | 43.06±2.01 e | 34.64±3.58 a | 90.03±3.11 a | 108.88±6.37 a | 32.64±3.95 a | 6.28±0.58 a | 7.73±0.36 c | 9.99±0.72 b | 14.80±0.36 b |
| 500 MT | 12.36±1.87 a | 23.28±1.10 cd | 34.94±2.96 c | 56.19±2.15 c | 29.82±3.47 a | 84.91±4.04 ab | 99.51±5.74 a | 31.04±3.54 a | 5.85±0.54 a | 8.42± 0.25 abc | 10.44±0.58 b | 15.76±0.66 ab |
Table 5 Effects of different concentrations of melatonin treatments on the relative conductivity, MDA, and PRO contents of strawberry seedlings
处理 Treatment | 相对电导率 Relative conductivity/% | 脯氨酸含量 Proline content/(μg·g-1) | 丙二醛含量 Malondialdehyde content/(nmol·g-1) | |||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 0 d | 3 d | 6 d | 9 d | 0 d | 3 d | 6 d | 9 d | 0 d | 3 d | 6 d | 9 d | |
| CK | 12.31±1.47 a | 34.13±2.14 a | 47.40±1.78 a | 66.95±1.72 a | 30.84±2.73 a | 64.50±6.78 d | 74.65±5.71 c | 29.34±1.90 a | 5.28±0.64 a | 9.16±0.61 a | 11.77±0.76 a | 16.98±1.02 a |
| 100 MT | 11.54±1.88 a | 26.91±1.74 b | 42.64±3.32 ab | 62.49±1.91 b | 29.65±3.16 a | 65.89±5.50 d | 74.11±4.41 c | 27.44±2.63 a | 5.53±0.24 a | 8.21± 0.45 bc | 10.88±0.78 ab | 15.56±0.93 b |
| 200 MT | 11.64±1.64 a | 27.31±1.53 b | 37.23±4.90 bc | 58.29±2.20 c | 32.14±3.79 a | 72.20±3.36 cd | 75.94±4.28 c | 30.76±3.19 a | 5.69±0.46 a | 8.75± 0.53 ab | 10.68±0.57 ab | 15.94±0.29 ab |
| 300 MT | 12.48±2.06 a | 24.74±1.17 bc | 36.10±4.14 c | 51.83±1.96 d | 31.27±3.84 a | 79.14±2.95 bc | 88.76±7.03 b | 31.42±2.02 a | 5.63±0.34 a | 8.97± 0.66 ab | 11.10±0.46 ab | 15.90±0.73 ab |
| 400 MT | 11.54±1.71 a | 20.80±1.42 d | 32.23±1.03 c | 43.06±2.01 e | 34.64±3.58 a | 90.03±3.11 a | 108.88±6.37 a | 32.64±3.95 a | 6.28±0.58 a | 7.73±0.36 c | 9.99±0.72 b | 14.80±0.36 b |
| 500 MT | 12.36±1.87 a | 23.28±1.10 cd | 34.94±2.96 c | 56.19±2.15 c | 29.82±3.47 a | 84.91±4.04 ab | 99.51±5.74 a | 31.04±3.54 a | 5.85±0.54 a | 8.42± 0.25 abc | 10.44±0.58 b | 15.76±0.66 ab |
| 1 | Van de Velde F, Grace MH, Pirovani MÉ, et al. Impact of a new postharvest disinfection method based on peracetic acid fogging on the phenolic profile of strawberries [J]. Postharvest Biol Technol, 2016, 117: 197-205. |
| 2 | 徐艺格, 王丽娟. 草莓品质育种研究进展 [J]. 北方园艺, 2020(18): 152-157. |
| Xu YG, Wang LJ. Research progress on strawberry quality breeding [J]. North Hortic, 2020(18): 152-157. | |
| 3 | Giampieri F, Forbes-Hernandez TY, Gasparrini M, et al. Strawberry as a health promoter: an evidence based review [J]. Food Funct, 2015, 6(5): 1386-1398. |
| 4 | 赵密珍, 王静, 袁华招, 等. 草莓育种新动态及发展趋势 [J]. 植物遗传资源学报, 2019, 20(2): 249-257. |
| Zhao MZ, Wang J, Yuan HZ, et al. Situation and perspectives of strawberry breeding [J]. J Plant Genet Resour, 2019, 20(2): 249-257. | |
| 5 | 才智, 岳静宇, 王钰雯, 等. 红花草莓育种及花瓣呈色机制研究进展 [J]. 果树学报, 2024, 41(1): 155-161. |
| Cai Z, Yue JY, Wang YW, et al. Advances in research on breeding and petal coloration mechanism of red-flowered strawberry [J]. J Fruit Sci, 2024, 41(1): 155-161. | |
| 6 | 武冲, 姜莉莉, 宗晓娟, 等. 中国草莓育种研究进展 [J]. 落叶果树, 2022, 54(2):28-30. |
| Wu C, Jiang LL, Zong XJ, et al. Advances in strawberry breeding in China [J]. Deciduous Fruit, 2022, 54(2):28-30. | |
| 7 | Ledesma NA, Kawabata S, Sugiyama N. Effect of high temperature on protein expression in strawberry plants [J]. Biol Plant, 2004, 48(1): 73-79. |
| 8 | Ledesma NA, Kawabata S. Responses of two strawberry cultivars to severe high temperature stress at different flower development stages [J]. Sci Hortic, 2016, 211: 319-327. |
| 9 | Zhao C, Liu B, Piao SL, et al. Temperature increase reduces global yields of major crops in four independent estimates [J]. Proc Natl Acad Sci USA, 2017, 114(35): 9326-9331. |
| 10 | Sharkey TD, Zhang R. High temperature effects on electron and proton circuits of photosynthesis [J]. J Integr Plant Biol, 2010, 52(8): 712-722. |
| 11 | Richter K, Haslbeck M, Buchner J. The heat shock response: life on the verge of death [J]. Mol Cell, 2010, 40(2): 253-266. |
| 12 | 周宏丹, 罗晓萍, 涂米雪, 等. 植物褪黑素: 植物应答非生物胁迫的新兴信号分子 [J]. 生物技术通报, 2024, 40(3): 41-51. |
| Zhou HD, Luo XP, Tu MX, et al. Phytomelatonin: an emerging signal molecule responding to abiotic stress [J]. Biotechnol Bull, 2024, 40(3): 41-51. | |
| 13 | Arnao MB, Hernández-Ruiz J. Functions of melatonin in plants: a review [J]. J Pineal Res, 2015, 59(2): 133-150. |
| 14 | Jahan MS, Guo SR, Sun J, et al. Melatonin-mediated photosynthetic performance of tomato seedlings under high-temperature stress [J]. Plant Physiol Biochem, 2021, 167: 309-320. |
| 15 | Annadurai MKK, Alagarsamy S, Karuppasami KM, et al. Melatonin decreases negative effects of combined drought and high temperature stresses through enhanced antioxidant defense system in tomato leaves [J]. Horticulturae, 2023, 9(6): 673. |
| 16 | Wu P, Ma YD, Ahammed GJ, et al. Insights into melatonin-induced photosynthetic electron transport under low-temperature stress in cucumber [J]. Front Plant Sci, 2022, 13: 1029854. |
| 17 | Liang D, Gao F, Ni ZY, et al. Melatonin improves heat tolerance in kiwifruit seedlings through promoting antioxidant enzymatic activity and glutathione S-transferase transcription [J]. Molecules, 2018, 23(3): 584. |
| 18 | Li X, Li MH, Deng WW, et al. Exogenous melatonin improves tea quality under moderate high temperatures by increasing epigallocatechin-3-gallate and theanine biosynthesis in Camellia sinensis L [J]. J Plant Physiol, 2020, 253: 153273. |
| 19 | Iqbal N, Sehar Z, Fatma M, et al. Melatonin reverses high-temperature-stress-inhibited photosynthesis in the presence of excess sulfur by modulating ethylene sensitivity in mustard [J]. Plants (Basel), 2023, 12(17): 3160. |
| 20 | Jia CH, Yu XJ, Zhang M, et al. Application of melatonin-enhanced tolerance to high-temperature stress in cherry radish (Raphanus sativus L. var. radculus pers) [J]. J Plant Growth Regul, 2020, 39(2): 631-640. |
| 21 | Tiryaki I, Keles H. Reversal of the inhibitory effect of light and high temperature on germination of Phacelia tanacetifolia seeds by melatonin [J]. J Pineal Res, 2012, 52(3): 332-339. |
| 22 | Zhang J, Shi Y, Zhang XZ, et al. Melatonin suppression of heat-induced leaf senescence involves changes in abscisic acid and cytokinin biosynthesis and signaling pathways in perennial ryegrass (Lolium perenne L.) [J]. Environ Exp Bot, 2017, 138: 36-45. |
| 23 | 李雪, 赵士文, 包星星, 等. 提高绿光占比对黄瓜幼苗形态、光合性状及碳水化合物的影响 [J]. 中国农业大学学报, 2024, 29(2): 58-65. |
| Li X, Zhao SW, Bao XX, et al. Effect of increasing the percentage of green light on morphology, photosynthetic traits and carbohydrates of cucumber seedlings [J]. J China Agric Univ, 2024, 29(2): 58-65. | |
| 24 | Dexter ST, Tottingham WE, Graber LF. Investigations of the hardiness of plants by measurement of electrical conductivity [J]. Plant Physiol, 1932, 7(1): 63-78. |
| 25 | Wang P, Yin LH, Liang D, et al. Delayed senescence of apple leaves by exogenous melatonin treatment: toward regulating the ascorbate-glutathione cycle [J]. J Pineal Res, 2012, 53(1): 11-20. |
| 26 | 刘若溪, 曹歌, 王琪, 等. 外源褪黑素对高温胁迫下西瓜幼苗生理特性的影响 [J]. 天津农业科学, 2023, 29(6): 7-12, 20. |
| Liu RX, Cao G, Wang Q, et al. Effects of exogenous melatonin on physiological characteristics of watermelon seedlings under elevated temperature stress [J]. Tianjin Agric Sci, 2023, 29(6): 7-12, 20. | |
| 27 | 陈倩云, 刘海河, 张彦萍, 等. 外源褪黑素对高温胁迫下厚皮甜瓜幼苗光合及抗氧化特性的影响 [J]. 河北农业大学学报, 2019, 42(1): 33-37. |
| Chen QY, Liu HH, Zhang YP, et al. Effects of exogenous melatonin on photosynthesis and antioxidant activities of muskmelon seedlings under high temperature stress [J]. J Hebei Agric Univ, 2019, 42(1): 33-37. | |
| 28 | 齐晓媛, 王文莉, 胡少卿, 等. 外源褪黑素对高温胁迫下菊花光合和生理特性的影响 [J]. 应用生态学报, 2021, 32(7): 2496-2504. |
| Qi XY, Wang WL, Hu SQ, et al. Effects of exogenous melatonin on photosynthesis and physiological characteristics of chry-santhemum seedlings under high temperature stress [J]. Chin J Appl Ecol, 2021, 32(7): 2496-2504. | |
| 29 | Liu SJ, Sun BX, Cao BL, et al. Effects of soil waterlogging and high-temperature stress on photosynthesis and photosystem II of ginger (Zingiber officinale) [J]. Protoplasma, 2023, 260(2): 405-418. |
| 30 | 田雪军, 徐佩琦, 吴晶晶, 等. 外源褪黑素对玫瑰高温胁迫的缓解效应 [J]. 山西农业大学学报: 自然科学版, 2024, 44(1): 34-42. |
| Tian XJ, Xu PQ, Wu JJ, et al. Alleviating effects of exogenous melatonin on rose under high temperature stress [J]. J Shanxi Agric Univ Nat Sci Ed, 2024, 44(1): 34-42. | |
| 31 | 吴雪霞, 张圣美, 张爱冬, 等. 外源褪黑素对高温胁迫下茄子幼苗光合和生理特性的影响 [J]. 植物生理学报, 2019, 55(1): 49-60. |
| Wu XX, Zhang SM, Zhang AD, et al. Effect of exogenous melatonin on photosynthetic and physiological characteristics of eggplant seedlings under high temperature stress [J]. Plant Physiol J, 2019, 55(1): 49-60. | |
| 32 | 张雪莲, 罗德旭, 杨红, 等. 外源褪黑素和硒对高温胁迫下辣椒生理特性和抗氧化系统的影响 [J]. 江苏农业学报, 2023, 39(8): 1729-1738. |
| Zhang XL, Luo DX, Yang H, et al. Effects of exogenous melatonin and selenium on physiological properties and antioxidant systems of chilies under high temperature stress [J]. Jiangsu J Agric Sci, 2023, 39(8): 1729-1738. | |
| 33 | 王博伟, 陈艳丽, 朱国鹏, 等. 叶面喷施褪黑素对海南高温季节水培叶用莴苣生长生理的影响 [J]. 中国蔬菜, 2022(11): 80-85. |
| Wang BW, Chen YL, Zhu GP, et al. Effect of melatonin foliar spraying on growth and physiology characteristics of hydroponic lettuce during high temperature season in Hainan [J]. China Veg, 2022(11): 80-85. | |
| 34 | 王译, 韩莹琰, 郝敬虹, 等. 褪黑素对高温胁迫下生菜抗氧化酶系统的影响 [J]. 北京农学院学报, 2022, 37(2): 45-49. |
| Wang Y, Han YY, Hao JH, et al. Effects of melatonin on antioxidant enzyme of lettuce under high temperature stress [J]. J Beijing Univ Agric, 2022, 37(2): 45-49. | |
| 35 | 黄鸿晖, 顾里娟, 李美琳, 等. 褪黑素处理对草莓品质与活性氧代谢的影响 [J]. 食品科学, 2021, 42(15): 187-193. |
| Huang HH, Gu LJ, Li ML, et al. Effect of postharvest melatonin treatment on quality and reactive oxygen species metabolism in strawberry [J]. Food Sci, 2021, 42(15): 187-193. | |
| 36 | Alscher RG, Erturk N, Heath LS. Role of superoxide dismutases (SODs) in controlling oxidative stress in plants [J]. J Exp Bot, 2002, 53(372): 1331-1341. |
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