浙江农业学报 ›› 2025, Vol. 37 ›› Issue (2): 311-320.DOI: 10.3969/j.issn.1004-1524.20240346
收稿日期:
2024-04-13
出版日期:
2025-02-25
发布日期:
2025-03-20
作者简介:
程建徽,E-mail: chengjianhui@zaas.ac.cn通讯作者:
程建徽
基金资助:
ZHENG Ting(), XIANG Jiang, WEI Lingzhu, WU Jiang, CHENG Jianhui(
)
Received:
2024-04-13
Online:
2025-02-25
Published:
2025-03-20
Contact:
CHENG Jianhui
摘要: 为研究处理剂对无核葡萄香气的影响,以天工墨玉为试材,用氯吡脲(CPPU)和噻苯隆(TDZ)搭配赤霉素(GA3)处理花序,检测成熟果实香气组分和萜类代谢基因表达水平,结合转录组通过加权基因共表达网络分析(WGCNA)探析萜类组分的变化,筛选相关基因。结果表明,在成熟果实中共有35种香气组分,其中,萜类13种。处理后,特征物质——橙花醇、香叶醇和芳樟醇的含量显著(P<0.05)下降。萜类合成甲羟戊酸途径(mevalonate pathway,MVA)关键基因HMGR在处理后表达降低;2-甲基赤藓糖醇-4-磷酸路径(methylerythritol phosphate pathway,MEP)关键基因DXR在CPPU处理后呈下降-上升趋势,TDZ相反。WGCNA结果显示,芳樟醇、橙花醇和香叶醇聚在一起,与turquoise模块高度相关,关联到MYB44基因在处理后大幅下调,尤其TDZ处理后,与物质含量变化一致。研究结果为葡萄生产中CPPU和TDZ的使用提供了理论依据。
中图分类号:
郑婷, 向江, 魏灵珠, 吴江, 程建徽. 基于WGCNA分析CPPU和TDZ对天工墨玉葡萄香气影响及关键基因挖掘[J]. 浙江农业学报, 2025, 37(2): 311-320.
ZHENG Ting, XIANG Jiang, WEI Lingzhu, WU Jiang, CHENG Jianhui. Analysis on the effects of CPPU and TDZ on the aroma of Tiangong Moyu grape using WGCNA and the exploration of the key genes[J]. Acta Agriculturae Zhejiangensis, 2025, 37(2): 311-320.
基因 Gene | 上游引物序列 Forward primer sequence(5'-3') | 下游引物序列 Reverse primer sequence(5'-3') |
---|---|---|
VvHMGR1 | CGACTTCGTTCAGGGGTTTA | GACTCCAGCGAGTACGAAGG |
VvHMGR2 | AAGGCCATTTTCACTTGTGG | TTGCAAATCTGCTTGACCTG |
VvHMGR3 | TAGGGCAGTGCTGTGAGATG | TCAATTCTGCAGCCCTCTTT |
VvAACT1 | GGATCTCGATTAGGGCATGA | GTGCAGAAATACCACGCTCA |
VvAACT2 | GTGATGGTGCTGCTGCTTTA | CTGATTTGCAAGAGCCACAA |
VvHMGS | ATGGGATTGACCCAAAACAA | CCACCCAGTTGACACAGTTG |
VvMVK | CTTGGGTTCATCTGCCTCAT | TCAATTCCAGATGGCTTTCC |
VvpMVK | CAACATCAGTGGTTGCTGCT | CCAACTTTCCCTTGTGCAAT |
VvMDC | CCCGAGCTAGCAAAATTGAG | ACAAGCACTGCCTGAACCTT |
VvFPS | CAGGCGAAAATTTGGACAAT | GCTGGATCTGCTTTCCCATA |
VvDXS1 | CCAGGTGGTGCATGATGTAG | AAACAACTGGGCCTGTCATC |
VvDXS2 | AGCAAGCAAGAAGGAATCCA | GCCCACCAGTTTTTGACACT |
VvDXS3 | CTGCCCATTTCCAAGAAAAA | CATAGGGCTTTCGACCATGT |
VvDXS4 | AGCAAGGAGGAATCCAAGGT | GCCCACCAGTTTTTGACACT |
VvDXS5 | CCCCCGAAGACAAGATCATA | CCCAATCACTGCAACAACAC |
VvDXS6 | GGACAGGCATATGAGGCAAT | GCCTCTTTAGGGCTTTGCTT |
VvDXR | GGGAAAAAGATCACGGTTGA | AGGATTGGCAAACGCATATC |
VvMCT | GGGAGAAGTGGATCATCGAA | TTCCTTCACTGCACTCATGC |
VvCMK | CAATTCTTCTGCGATCACCA | CTACCAGCAGAAGCCCTGAC |
VvHDS | GGCTCTTGGAAGTGAGCATC | CAATGCAACAGAAGGAGCAA |
VvHDR | ATTCCGATTTTGATGCGAAG | TCCATAGGCTTCTGCCAGTT |
VvIDI | TGCTGCACAGAGCTTTCAGT | TCAACAGGTGCATCTTCAGC |
VvUBI | GGTGGTATTATTGAGCCATCCTT | AACCTCCAATCCAGTCATCTACT |
表1 MVA和MEP路径关键基因引物序列
Table 1 Primer sequences for the key genes of MVA and MEP pathway
基因 Gene | 上游引物序列 Forward primer sequence(5'-3') | 下游引物序列 Reverse primer sequence(5'-3') |
---|---|---|
VvHMGR1 | CGACTTCGTTCAGGGGTTTA | GACTCCAGCGAGTACGAAGG |
VvHMGR2 | AAGGCCATTTTCACTTGTGG | TTGCAAATCTGCTTGACCTG |
VvHMGR3 | TAGGGCAGTGCTGTGAGATG | TCAATTCTGCAGCCCTCTTT |
VvAACT1 | GGATCTCGATTAGGGCATGA | GTGCAGAAATACCACGCTCA |
VvAACT2 | GTGATGGTGCTGCTGCTTTA | CTGATTTGCAAGAGCCACAA |
VvHMGS | ATGGGATTGACCCAAAACAA | CCACCCAGTTGACACAGTTG |
VvMVK | CTTGGGTTCATCTGCCTCAT | TCAATTCCAGATGGCTTTCC |
VvpMVK | CAACATCAGTGGTTGCTGCT | CCAACTTTCCCTTGTGCAAT |
VvMDC | CCCGAGCTAGCAAAATTGAG | ACAAGCACTGCCTGAACCTT |
VvFPS | CAGGCGAAAATTTGGACAAT | GCTGGATCTGCTTTCCCATA |
VvDXS1 | CCAGGTGGTGCATGATGTAG | AAACAACTGGGCCTGTCATC |
VvDXS2 | AGCAAGCAAGAAGGAATCCA | GCCCACCAGTTTTTGACACT |
VvDXS3 | CTGCCCATTTCCAAGAAAAA | CATAGGGCTTTCGACCATGT |
VvDXS4 | AGCAAGGAGGAATCCAAGGT | GCCCACCAGTTTTTGACACT |
VvDXS5 | CCCCCGAAGACAAGATCATA | CCCAATCACTGCAACAACAC |
VvDXS6 | GGACAGGCATATGAGGCAAT | GCCTCTTTAGGGCTTTGCTT |
VvDXR | GGGAAAAAGATCACGGTTGA | AGGATTGGCAAACGCATATC |
VvMCT | GGGAGAAGTGGATCATCGAA | TTCCTTCACTGCACTCATGC |
VvCMK | CAATTCTTCTGCGATCACCA | CTACCAGCAGAAGCCCTGAC |
VvHDS | GGCTCTTGGAAGTGAGCATC | CAATGCAACAGAAGGAGCAA |
VvHDR | ATTCCGATTTTGATGCGAAG | TCCATAGGCTTCTGCCAGTT |
VvIDI | TGCTGCACAGAGCTTTCAGT | TCAACAGGTGCATCTTCAGC |
VvUBI | GGTGGTATTATTGAGCCATCCTT | AACCTCCAATCCAGTCATCTACT |
类别 Types | 组分 Compound | T1 | T2 | T3 | T4 | T5 | ||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|
醛类 Aldehydes | 己醛 Hexanal | 1 098.71 ±93.94 a | 1 190.80 ±159.92 a | 1 273.72 ±315.18 a | 1 230.44 ±249.88 a | 854.03 ±88.46 a | ||||||
3-己烯醛 3-Hexenal | 75.56 ±2.89 a | 88.95 ±10.74 a | 102.72 ±11.32 a | 98.23 ±14.49 a | 98.85 ±4.56 a | |||||||
庚醛 Heptaldehyde | 29.90 ±0.69 ab | 23.75 ±2.68 b | 4.14 ±1.01 c | 35.06 ±3.98 a | 34.55 ±5.69 a | |||||||
2-己烯醛 2-Hexenal | 4 873.81 ±130.35 a | 5 426.69 ±394.66 a | 5 959.74 ±665.93 a | 6 269.82 ±708.49 a | 5 651.58 ±270.12 a | |||||||
壬醛 Nonanal | 43.97 ±4.08 b | 44.99 ±3.84 b | 96.08 ±2.99 a | 46.03 ±9.94 b | 59.61 ±7.51 b | |||||||
(E,E)-2,4-己二烯醛 2,4-Hexadienal,(E,E)- | 143.41 ±1.07 b | 163.60 ±19.08 ab | 170.19 ±18.03 ab | 183.49 ±6.20 a | 161.47 ±8.48 ab | |||||||
反式-2,4-庚二烯醛 2,4-Heptadienal,(E,E)- | 20.18 ±3.63 a | 25.42 ±3.75 a | 20.07 ±5.24 a | 33.81 ±5.45 a | 29.80 ±4.17 a | |||||||
苯甲醛 Benzaldehyde | 124.89 ±22.46 a | 120.34 ±29.71 a | 145.50 ±10.01 a | 138.06 ±25.73 a | 118.35 ±28.39 a | |||||||
反式-2-壬烯醛 2-nonenal, (E)- | 15.76 ±0.26 b | 13.51 ±0.84 b | 15.95 ±1.10 b | 39.41 ±0.13 a | 28.12 ±3.45 ab | |||||||
醇类 Alcohols | 己醇 Hexyl alcohol | 743.16 ±105.07 ab | 580.92 ±92.46 b | 744.75 ±24.25 ab | 866.29 ±9.02 a | 606.89 ±44.81 b | ||||||
1-辛烯-3-醇 1-Octen-3-ol | 44.15 ±4.09 a | 42.13 ±12.83 a | 33.33 ±10.35 a | 47.57 ±10.52 a | 44.37 ±11.25 a | |||||||
庚醇 1-Heptanol | 87.94 ±7.37 a | 80.21 ±9.85 a | 94.23 ±10.29 a | 97.20 ±11.85 a | 88.32 ±13.18 a | |||||||
4-萜烯醇 Terpinen-4-ol | 20.91 ±0.04 b | 29.03 ±1.80 b | 28.70 ±0.92 b | 74.57 ±0.63 a | 50.86 ±14.71 ab | |||||||
苄醇 Benzyl alcohol | 88.18 ±5.24 a | 41.42 ±6.25 a | 62.86 ±4.36 a | 114.47 ±14.03 a | 56.58 ±8.18 a | |||||||
苯乙醇 Phenylethyl alcohol | 368.96 ±10.39 a | 334.68 ±43.21 a | 361.86 ±33.24 a | 419.78 ±52.44 a | 286.58 ±58.09 a | |||||||
萜类 Terpenes | β-蒎烯 β-Pinene | 20.10 ±1.83 a | 23.38 ±4.19 a | 25.98 ±3.34 a | 27.25 ±5.82 a | 24.52 ±2.11 a | ||||||
D-柠檬烯 D-Limonene | 36.99 ±0.16 a | 30.85 ±8.85 a | 44.78 ±10.78 a | 39.65 ±4.58 a | 31.31 ±3.27 a | |||||||
萜品烯 Terpinene | 42.66 ±3.44 b | 80.90 ±9.56 ab | 113.02 ±26.72 a | 122.98 ±21.20 a | 55.30 ±10.64 b | |||||||
萜品油烯 Terpinolene | 9.51 ±0.27 a | 10.82 ±3.18 a | 11.15 ±1.92 a | 10.11 ±1.19 a | 10.59 ±0.24 a | |||||||
玫瑰醚 Rose oxide | 25.84 ±1.26 a | 31.74 ±6.73 a | 34.13 ±1.28 a | 34.36 ±1.56 a | 32.86 ±2.93 a | |||||||
芳樟醇 Linalol | 92.18 ±10.35 a | 57.27 ±0.99 b | 43.39 ±6.04 b | 77.92 ±2.09 ab | 68.58 ±9.97 ab | |||||||
α-松油醇 α-terpineol | 71.21 ±7.33 ab | 70.06 ±0.15 ab | 58.59 ±12.17 b | 122.34 ±0.86 a | 101.97 ±36.37 ab | |||||||
柠檬醛 Citral | 57.29 ±1.11 a | 37.62 ±3.64 a | 65.46 ±29.94 a | 88.31 ±31.68 a | 56.96 ±29.44 a | |||||||
β-香茅醇 β-Cephrol | 727.66 ±52.77 b | 539.71 ±51.99 c | 983.80 ±7.94 a | 692.33 ±52.82 b | 740.30 ±71.14 b | |||||||
橙花醇 Nerol | 782.80 ±34.43 a | 488.29 ±43.43 bc | 481.45 ±26.90 bc | 572.95 ±49.98 b | 371.46 ±60.45 c | |||||||
香叶醇 Lemonol | 1 154.37 ±84.05 a | 613.16 ±117.24 b | 618.15 ±39.42 b | 623.57 ±47.30 b | 463.94 ±82.80 b | |||||||
β-紫罗兰酮 β-Ionone | 4.15 ±0.06 a | 4.56 ±0.62 a | 4.91 ±0.41 a | 53.44 ±42.55 a | 35.10 ±53.35 a | |||||||
香叶酸 Geranic acid | 62.44 ±1.28 a | 47.20 ±5.52 a | 48.46 ±2.67 a | 251.47 ±170.87 a | 129.66 ±146.83 a | |||||||
酮类 Ketones | 2-辛酮 2-Octanone | 329.65 ±32.30 a | 380.26 ±28.15 a | 384.34 ±21.82 a | 326.14 ±45.51 a | 385.86 ±13.43 a | ||||||
酯类 Esters | 乙酸乙酯 Ethyl acetate | 389.73 ±21.81 bc | 316.85 ±48.11 c | 617.26 ±21.50 a | 600.96 ±33.92 a | 528.44 ±65.96 ab | ||||||
庚酸乙酯 Ethyl heptanoate | 44.94 ±1.41 c | 49.80 ±2.77 bc | 53.35 ±1.60 bc | 66.27 ±3.13 a | 57.47 ±4.49 b | |||||||
3-羟基扁桃酸乙酯 Ethyl 3-hydroxymandelate | 24.49 ±0.22 b | 25.72 ±0.03 b | 31.98 ±0.95 ab | 57.94 ±2.18 a | 31.46 ±7.94 ab | |||||||
苯甲酸乙酯 Ethyl benzoate | 45.92 ±9.97 a | 19.36 ±3.49 b | 15.65 ±0.27 b | 42.86 ±0.85 a | 19.36 ±5.60 b | |||||||
苯乙酸乙酯 Ethyl phenylacetate | 8.33 ±0.09 a | 7.90 ±0.88 a | 9.10 ±0.06 a | 49.14 ±4.06 a | 18.81 ±3.72 a | |||||||
丁酸丁酯 Butyl butyrate | 33.30 ±9.18 a | 4.70 ±0.79 a | 6.45 ±1.19 a | 37.74 ±0.07 a | 16.33 ±20.71 a |
表2 CPPU和TDZ处理对葡萄香气的影响
Table 2 Effects of CPPU and TDZ treatment on contents of aroma in grape μg·kg-1
类别 Types | 组分 Compound | T1 | T2 | T3 | T4 | T5 | ||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|
醛类 Aldehydes | 己醛 Hexanal | 1 098.71 ±93.94 a | 1 190.80 ±159.92 a | 1 273.72 ±315.18 a | 1 230.44 ±249.88 a | 854.03 ±88.46 a | ||||||
3-己烯醛 3-Hexenal | 75.56 ±2.89 a | 88.95 ±10.74 a | 102.72 ±11.32 a | 98.23 ±14.49 a | 98.85 ±4.56 a | |||||||
庚醛 Heptaldehyde | 29.90 ±0.69 ab | 23.75 ±2.68 b | 4.14 ±1.01 c | 35.06 ±3.98 a | 34.55 ±5.69 a | |||||||
2-己烯醛 2-Hexenal | 4 873.81 ±130.35 a | 5 426.69 ±394.66 a | 5 959.74 ±665.93 a | 6 269.82 ±708.49 a | 5 651.58 ±270.12 a | |||||||
壬醛 Nonanal | 43.97 ±4.08 b | 44.99 ±3.84 b | 96.08 ±2.99 a | 46.03 ±9.94 b | 59.61 ±7.51 b | |||||||
(E,E)-2,4-己二烯醛 2,4-Hexadienal,(E,E)- | 143.41 ±1.07 b | 163.60 ±19.08 ab | 170.19 ±18.03 ab | 183.49 ±6.20 a | 161.47 ±8.48 ab | |||||||
反式-2,4-庚二烯醛 2,4-Heptadienal,(E,E)- | 20.18 ±3.63 a | 25.42 ±3.75 a | 20.07 ±5.24 a | 33.81 ±5.45 a | 29.80 ±4.17 a | |||||||
苯甲醛 Benzaldehyde | 124.89 ±22.46 a | 120.34 ±29.71 a | 145.50 ±10.01 a | 138.06 ±25.73 a | 118.35 ±28.39 a | |||||||
反式-2-壬烯醛 2-nonenal, (E)- | 15.76 ±0.26 b | 13.51 ±0.84 b | 15.95 ±1.10 b | 39.41 ±0.13 a | 28.12 ±3.45 ab | |||||||
醇类 Alcohols | 己醇 Hexyl alcohol | 743.16 ±105.07 ab | 580.92 ±92.46 b | 744.75 ±24.25 ab | 866.29 ±9.02 a | 606.89 ±44.81 b | ||||||
1-辛烯-3-醇 1-Octen-3-ol | 44.15 ±4.09 a | 42.13 ±12.83 a | 33.33 ±10.35 a | 47.57 ±10.52 a | 44.37 ±11.25 a | |||||||
庚醇 1-Heptanol | 87.94 ±7.37 a | 80.21 ±9.85 a | 94.23 ±10.29 a | 97.20 ±11.85 a | 88.32 ±13.18 a | |||||||
4-萜烯醇 Terpinen-4-ol | 20.91 ±0.04 b | 29.03 ±1.80 b | 28.70 ±0.92 b | 74.57 ±0.63 a | 50.86 ±14.71 ab | |||||||
苄醇 Benzyl alcohol | 88.18 ±5.24 a | 41.42 ±6.25 a | 62.86 ±4.36 a | 114.47 ±14.03 a | 56.58 ±8.18 a | |||||||
苯乙醇 Phenylethyl alcohol | 368.96 ±10.39 a | 334.68 ±43.21 a | 361.86 ±33.24 a | 419.78 ±52.44 a | 286.58 ±58.09 a | |||||||
萜类 Terpenes | β-蒎烯 β-Pinene | 20.10 ±1.83 a | 23.38 ±4.19 a | 25.98 ±3.34 a | 27.25 ±5.82 a | 24.52 ±2.11 a | ||||||
D-柠檬烯 D-Limonene | 36.99 ±0.16 a | 30.85 ±8.85 a | 44.78 ±10.78 a | 39.65 ±4.58 a | 31.31 ±3.27 a | |||||||
萜品烯 Terpinene | 42.66 ±3.44 b | 80.90 ±9.56 ab | 113.02 ±26.72 a | 122.98 ±21.20 a | 55.30 ±10.64 b | |||||||
萜品油烯 Terpinolene | 9.51 ±0.27 a | 10.82 ±3.18 a | 11.15 ±1.92 a | 10.11 ±1.19 a | 10.59 ±0.24 a | |||||||
玫瑰醚 Rose oxide | 25.84 ±1.26 a | 31.74 ±6.73 a | 34.13 ±1.28 a | 34.36 ±1.56 a | 32.86 ±2.93 a | |||||||
芳樟醇 Linalol | 92.18 ±10.35 a | 57.27 ±0.99 b | 43.39 ±6.04 b | 77.92 ±2.09 ab | 68.58 ±9.97 ab | |||||||
α-松油醇 α-terpineol | 71.21 ±7.33 ab | 70.06 ±0.15 ab | 58.59 ±12.17 b | 122.34 ±0.86 a | 101.97 ±36.37 ab | |||||||
柠檬醛 Citral | 57.29 ±1.11 a | 37.62 ±3.64 a | 65.46 ±29.94 a | 88.31 ±31.68 a | 56.96 ±29.44 a | |||||||
β-香茅醇 β-Cephrol | 727.66 ±52.77 b | 539.71 ±51.99 c | 983.80 ±7.94 a | 692.33 ±52.82 b | 740.30 ±71.14 b | |||||||
橙花醇 Nerol | 782.80 ±34.43 a | 488.29 ±43.43 bc | 481.45 ±26.90 bc | 572.95 ±49.98 b | 371.46 ±60.45 c | |||||||
香叶醇 Lemonol | 1 154.37 ±84.05 a | 613.16 ±117.24 b | 618.15 ±39.42 b | 623.57 ±47.30 b | 463.94 ±82.80 b | |||||||
β-紫罗兰酮 β-Ionone | 4.15 ±0.06 a | 4.56 ±0.62 a | 4.91 ±0.41 a | 53.44 ±42.55 a | 35.10 ±53.35 a | |||||||
香叶酸 Geranic acid | 62.44 ±1.28 a | 47.20 ±5.52 a | 48.46 ±2.67 a | 251.47 ±170.87 a | 129.66 ±146.83 a | |||||||
酮类 Ketones | 2-辛酮 2-Octanone | 329.65 ±32.30 a | 380.26 ±28.15 a | 384.34 ±21.82 a | 326.14 ±45.51 a | 385.86 ±13.43 a | ||||||
酯类 Esters | 乙酸乙酯 Ethyl acetate | 389.73 ±21.81 bc | 316.85 ±48.11 c | 617.26 ±21.50 a | 600.96 ±33.92 a | 528.44 ±65.96 ab | ||||||
庚酸乙酯 Ethyl heptanoate | 44.94 ±1.41 c | 49.80 ±2.77 bc | 53.35 ±1.60 bc | 66.27 ±3.13 a | 57.47 ±4.49 b | |||||||
3-羟基扁桃酸乙酯 Ethyl 3-hydroxymandelate | 24.49 ±0.22 b | 25.72 ±0.03 b | 31.98 ±0.95 ab | 57.94 ±2.18 a | 31.46 ±7.94 ab | |||||||
苯甲酸乙酯 Ethyl benzoate | 45.92 ±9.97 a | 19.36 ±3.49 b | 15.65 ±0.27 b | 42.86 ±0.85 a | 19.36 ±5.60 b | |||||||
苯乙酸乙酯 Ethyl phenylacetate | 8.33 ±0.09 a | 7.90 ±0.88 a | 9.10 ±0.06 a | 49.14 ±4.06 a | 18.81 ±3.72 a | |||||||
丁酸丁酯 Butyl butyrate | 33.30 ±9.18 a | 4.70 ±0.79 a | 6.45 ±1.19 a | 37.74 ±0.07 a | 16.33 ±20.71 a |
图2 萜类香气组分与相关基因的WGCNA分析 A,基因聚类树与模块构建;B,性状与模块关联热图;C,样本与模块关联热图;D,基因调控网络图。
Fig.2 WGCNA analysis of terpenoid aroma components and related genes A, Gene clustering tree and module construction; B, Heat map of correlation between traits and modules; C, Heat map of correlation between samples and modules; D, Gene regulatory network diagram.
[1] | 郑婷, 魏灵珠, 周慧芬, 等. 浙江葡萄产业成就与可持续发展建议[J]. 中外葡萄与葡萄酒, 2023(3): 96-102. |
ZHENG T, WEI L Z, ZHOU H F, et al. Achievements and sustainable development suggestions of Zhejiang grape industry[J]. Sino-Overseas Grapevine & Wine, 2023(3): 96-102. (in Chinese with English abstract) | |
[2] | 崔梦杰, 王晨, 张文颖, 等. 无核葡萄研究进展[J]. 植物生理学报, 2017, 53(3): 317-330. |
CUI M J, WANG C, ZHANG W Y, et al. Research progress of seedless grape[J]. Plant Physiology Journal, 2017, 53(3): 317-330. (in Chinese with English abstract) | |
[3] | 徐海英. 中国鲜食葡萄育种研究进展[J]. 落叶果树, 2023, 55(3): 1-7, 108. |
XU H Y. Research progress in fresh grape breeding in China[J]. Deciduous Fruits, 2023, 55(3): 1-7, 108. (in Chinese with English abstract) | |
[4] | UGARE B, BANERJEE K, RAMTEKE S D, et al. Dissipation kinetics of forchlorfenuron, 6-benzyl aminopurine, gibberellic acid and ethephon residues in table grapes (Vitis vinifera)[J]. Food Chemistry, 2013, 141(4): 4208-4214. |
[5] | WANG W, KHALIL-UR-REHMAN M, FENG J, et al. RNA-seq based transcriptomic analysis of CPPU treated grape berries and emission of volatile compounds[J]. Journal of Plant Physiology, 2017, 218: 155-166. |
[6] | SHIN H W, KIM G H, CHOI C. Effects of plant growth regulators and floral cluster thinning on fruit quality of ‘Shine Muscat’ grape[J]. Horticultural Science and Technology, 2019, 37(6): 678-686. |
[7] | REYNOLDS A G, WARDLE D A, ZUROWSKI C, et al. Phenylureas CPPU and thidiazuron affect yield components, fruit composition, and storage potential of four seedless grape selections[J]. Journal of the American Society for Horticultural Science, 1992, 117(1): 85-89. |
[8] | REYNOLDS A G, WARDLE D A, ZUROWSKI C, et al. Phenylureas CPPU and thidiazuron affect yield components, fruit composition, and storage potential of four seedless grape selections[J]. Journal of the American Society for Horticultural Science, 1992, 117(1): 85-89. |
[9] | ZHANG J J, WANG X, YU O, et al. Metabolic profiling of strawberry (Fragaria×ananassa Duch.) during fruit development and maturation[J]. Journal of Experimental Botany, 2011, 62(3): 1103-1118. |
[10] | MURTHY B N S, MURCH S J, SAXENA P K. Thidiazuron: a potent regulator ofin vitro plant morphogenesis[J]. In Vitro Cellular & Developmental Biology-Plant, 1998, 34(4): 267-275. |
[11] | WANG W, KHALIL-UR-REHMAN M, WEI L L, et al. Effect of thidiazuron on terpene volatile constituents and terpenoid biosynthesis pathway gene expression of Shine Muscat (Vitis labrusca×V. vinifera) grape berries[J]. Molecules, 2020, 25(11): 2578. |
[12] | FASOLI M, DAL SANTO S, ZENONI S, et al. The grapevine expression atlas reveals a deep transcriptome shift driving the entire plant into a maturation program[J]. The Plant Cell, 2012, 24(9): 3489-3505. |
[13] | 徐红霞, 李晓颖, 葛航, 等. 基于转录组分析内源激素在调控枇杷花发育进程中的作用[J]. 浙江农业学报, 2023, 35(7): 1648-1661. |
XU H X, LI X Y, GE H, et al. Transcriptome-based analysis of the role of endogenous hormones in regulating flower development in loquat (Eriobotrya japonica Lindl.)[J]. Acta Agriculturae Zhejiangensis, 2023, 35(7): 1648-1661. (in Chinese with English abstract) | |
[14] | ZHAO F G, ZHENG T, LIU Z J, et al. Transcriptomic analysis elaborates the resistance mechanism of grapevine rootstocks against salt stress[J]. Plants, 2022, 11(9): 1167. |
[15] | LENG F, CAO J P, GE Z W, et al. Transcriptomic analysis of root restriction effects on phenolic metabolites during grape berry development and ripening[J]. Journal of Agricultural and Food Chemistry, 2020, 68(34): 9090-9099. |
[16] | ZHENG T, GUAN L B, YU K, et al. Expressional diversity of grapevine 3-Hydroxy-3-methylglutaryl-CoA reductase (VvHMGR) in different grapes genotypes[J]. BMC Plant Biology, 2021, 21(1): 279. |
[17] | MATEO J J, JIMÉNEZ M. Monoterpenes in grape juice and wines[J]. Journal of Chromatography A, 2000, 881(1/2): 557-567. |
[18] | WEI L Z, CAO Y H, CHENG J H, et al. Comparative transcriptome analyses of a table grape ‘Summer Black’ and its early-ripening mutant ‘Tiangong Moyu’ identify candidate genes potentially involved in berry development and ripening[J]. Journal of Plant Interactions, 2020, 15(1): 213-222. |
[19] | ZHANG P Z, FUENTES S, SIEBERT T, et al. Terpene evolution during the development of Vitis vinifera L. cv. Shiraz grapes[J]. Food Chemistry, 2016, 204: 463-474. |
[20] | 郑婷, 魏灵珠, 程建徽, 等. 植物3-羟基-3-甲基戊二酰辅酶A还原酶(HMGR)研究进展[J]. 植物生理学报, 2022, 58(6): 1037-1044. |
ZHENG T, WEI L Z, CHENG J H, et al. Research progress of 3-hydroxy-3-methylglutaryl-CoA reductase in plants[J]. Plant Physiology Journal, 2022, 58(6): 1037-1044. (in Chinese with English abstract) | |
[21] | KIM Y J, LEE O R, OH J Y, et al. Functional analysis of 3-hydroxy-3-methylglutaryl coenzyme a reductase encoding genes in triterpene saponin-producing ginseng[J]. Plant Physiology, 2014, 165(1): 373-387. |
[22] | ZHENG T, DONG T Y, HAIDER M S, et al. Brassinosteroid regulates 3-hydroxy-3-methylglutaryl CoA reductase to promote grape fruit development[J]. Journal of Agricultural and Food Chemistry, 2020, 68(43): 11987-11996. |
[23] | 张丽平, 卢晓明, 陆玫丹, 等. “亚历山大” 葡萄疏果省力化关键技术[J]. 浙江大学学报(农业与生命科学版), 2016, 42(3): 327-332. |
ZHANG L P, LU X M, LU M D, et al. Key techniques of simplification of fruit thinning in the grape cultivar “Muscat of Alexandria”[J]. Journal of Zhejiang University(Agriculture and Life Sciences), 2016, 42(3): 327-332. (in Chinese with English abstract) | |
[24] | 李海燕. ‘阳光玫瑰’葡萄香气物质积累规律及其调控研究[D]. 杭州: 浙江大学, 2017. |
LI H Y. Study on the accumulation law and regulation of aroma substances in ‘Sunshine Rose’ grape[D]. Hangzhou: Zhejiang University, 2017. (in Chinese with English abstract) | |
[25] | 王继源, 冯娇, 侯旭东, 等. CPPU对‘阳光玫瑰’葡萄品质及香气合成相关基因表达的影响[J]. 南京农业大学学报, 2016, 39(6): 915-923. |
WANG J Y, FENG J, HOU X D, et al. Effects of CPPU on aroma components and biosynthetic genes expression in‘Shine Muscat’ grapes[J]. Journal of Nanjing Agricultural University, 2016, 39(6): 915-923. (in Chinese with English abstract) | |
[26] | 魏玲玲. TDZ和留果量对‘阳光玫瑰’葡萄果实香气物质组分及含量的影响及DXS基因的功能分析[D]. 南京: 南京农业大学, 2019. |
WEI L L. Effects of TDZ and fruit retention on aroma components and contents of ‘Sunshine Rose’ grape fruit and functional analysis of DXS gene[D]. Nanjing: Nanjing Agricultural University, 2019. (in Chinese with English abstract) | |
[27] | LIU Y H, KUI L W, ESPLEY R V, et al. StMYB44 negatively regulates anthocyanin biosynthesis at high temperatures in tuber flesh of potato[J]. Journal of Experimental Botany, 2019, 70(15): 3809-3824. |
[28] | LI L X, WEI Z, ZHOU Z L, et al. A single amino acid mutant in the EAR motif of lbMYB44.2 reduced the inhibition of anthocyanin accumulation in the purple-fleshed sweet potato[J]. Plant Physiology and Biochemistry, 202l, 167: 410-419. |
[29] | HAO Y L, WANG J J, HU C M, et al. Regulation of BcMYB44 on anthocyanin synthesis and drought tolerance in non-heading Chinese cabbage (Brassica campestris ssp. chinensis Makino)[J]. Horticulturae, 2022, 8(5): 351. |
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