Scientia Silvae Sinicae ›› 2026, Vol. 62 ›› Issue (7): 140-151.doi: 10.11707/j.1001-7488.LYKX20250753
• Research papers • Previous Articles Next Articles
Kexin Sun1,Chenjie Zhang1,Tongfei Niu1,Huili Ma2,Zuqi Zhang1,Lili Guo1,Xiaogai Hou1,*(
)
Received:2025-12-16
Online:2026-07-10
Published:2026-07-14
Contact:
Xiaogai Hou
E-mail:hxg382@126.com
CLC Number:
Kexin Sun,Chenjie Zhang,Tongfei Niu,Huili Ma,Zuqi Zhang,Lili Guo,Xiaogai Hou. Effects of Two Cultivation Methods on Volatile Aroma Components Release and Related Genes Expression in Paeonia suffruticosa ‘Luoyang Hong’[J]. Scientia Silvae Sinicae, 2026, 62(7): 140-151.
Fig.2
Total content and classification distribution of volatile compounds in Paeonia suffruticosa‘Luoyang Hong’across different flower developmental stages under two cultivation methods A difference analysis was performed on the total content of volatile compounds across 14 groups, including potted and field-grown plants at different flower developmental stages. Different lowercase letters indicate significant differences at the level of 0.05."
Table 2
Types and contents of volatile components in Paeonia suffruticosa ‘Luoyang Hong’ at different flower developmental stages μg·g?1"
| 分类 Classification | 化合物Compounds | 盆栽Potted | 地栽Field-grown | |||||||||||||
| CE | BS | IF | HO | FB | ID | DE | CE | BS | IF | HO | FB | ID | DE | |||
| 苯环类 Benzenes | 1,3,5-三甲氧基苯 1,3,5-trimethoxy-benzene | — | — | — | — | — | 1.721 | 0.096 | — | — | — | — | — | — | — | |
| 7-甲基腺嘌呤 6-amino-7-methylpurine | — | — | — | — | — | 0.145 | — | — | — | — | — | — | — | — | ||
| 对苯二甲醚 1,4-dimethoxybenzene | — | 0.073 | 0.202 | 0.318 | 2.521 | — | — | — | — | 0.121 | 0.261 | 0.328 | — | — | ||
| 对二甲苯 m-xylene | 0.149 | 0.145 | 0.111 | 0.120 | 0.116 | 0.131 | 0.114 | — | — | — | — | — | — | — | ||
| 间二甲苯 1,3-dimethylbenzene | 0.062 | 0.051 | 0.110 | 0.059 | 0.036 | 0.072 | 0.048 | — | — | — | 0.079 | — | — | — | ||
| 乙苯ethylbenzene | 0.053 | 0.045 | 0.067 | 0.040 | 0.049 | 0.060 | 0.049 | — | — | — | — | — | — | — | ||
| 吲哚Indole | — | — | — | — | — | — | — | — | — | 0.270 | 0.126 | — | — | — | ||
| 邻二甲苯 o-xylene | — | — | — | — | — | — | — | — | — | — | — | — | — | 0.083 | ||
| 合计Total | 0.264cd | 0.314cd | 0.491c | 0.537c | 2.722a | 2.130b | 0.307cd | — | — | 0.392cd | 0.467c | 0.328cd | — | 0.083d | ||
| 醇类 Alcohols | 2-乙基己醇2-ethylhexanol | — | — | 0.080 | — | — | — | — | — | — | — | — | — | — | — | |
| 橙花醇Nerol | — | — | 1.003 | 2.546 | — | — | — | — | — | — | — | — | — | — | ||
| 苯乙醇Phenethyl alcohol | — | — | — | — | — | — | — | — | — | — | 0.075 | 0.424 | 0.138 | — | ||
| 合计Total | — | — | 1.083b | 2.546a | — | — | — | — | — | — | 0.075c | 0.424c | 0.138c | — | ||
| 酚类 Phenols | 2,4-二叔丁基苯酚 2,4-di-tert-butylphenol | — | 0.709 | 0.317 | 0.469 | 0.205 | 0.342 | 0.526 | — | — | — | — | 0.281 | 0.093 | — | |
| 合计Total | — | 0.709a | 0.317bc | 0.469ab | 0.205cd | 0.342bc | 0.526ab | — | — | — | — | 0.281bc | 0.093cd | — | ||
| 醛类 Aldehydes | 苯甲醛Benzaldehyde | — | — | 0.112 | — | — | — | — | — | — | — | — | — | — | — | |
| 癸醛Decanal | — | — | 0.035 | — | — | — | — | — | — | — | — | — | — | — | ||
| 壬醛Nonanal | — | 0.148 | 0.220 | — | — | — | — | — | — | — | — | 0.116 | — | — | ||
| 合计Total | — | 0.148b | 0.367a | — | — | — | — | — | — | — | — | 0.116b | — | — | ||
| 萜烯类 Terpenes | α-法呢烯α-farnesene | — | — | — | 0.104 | — | — | — | — | — | — | — | 0.223 | 0.191 | 0.537 | |
| β-罗勒烯β-ocimene | — | — | — | — | — | — | 0.072 | — | — | — | — | — | — | — | ||
| 合计Total | — | — | — | 0.104cd | — | — | 0.072d | — | — | — | — | 0.223b | 0.191bc | 0.537a | ||
| 酯类 Esters | 茉莉酸甲酯 Methyl jasmonate | — | — | — | — | 0.484 | 0.356 | 0.526 | — | — | — | — | — | — | — | |
| 肉豆蔻酸异丙酯 Isopropyl myristate | — | 0.081 | — | 0.171 | — | — | — | — | — | — | — | — | — | — | ||
| 顺-7-十四碳乙酸酯 (Z)-7-tetradecen-1-yl acetate | — | — | 0.464 | 1.167 | 1.191 | 0.241 | 0.171 | — | — | — | — | — | — | — | ||
| 乙酸十八酯 Acetic acid n-octadecyl ester | — | — | 0.166 | — | — | — | — | — | — | — | — | — | — | — | ||
| 正戊酸己酯Hexyl n-valerate | 0.067 | — | — | — | — | — | — | — | — | — | — | — | — | — | ||
| 合计Total | 0.067c | 0.081c | 0.630bc | 1.338a | 1.675a | 0.597bc | 0.727b | — | — | — | — | — | — | — | ||
| 烃类 Hydrocarbons | 奥苷菊环Azulene | — | — | 0.039 | — | — | — | — | — | — | — | — | — | — | — | |
| (E)-5-十四碳烯 (E)-5-Tetradecen-1-ol | — | — | — | 0.217 | — | — | — | — | — | — | — | — | — | — | ||
| 1-十八烷烯1-Octadecene | — | — | — | 0.187 | — | 0.186 | — | — | — | — | — | — | 0.055 | — | ||
| 1-十九碳烯1-Nonadecene | — | — | — | — | — | 0.459 | 0.150 | — | — | — | — | — | — | — | ||
| 2-甲基十六烷 2-Methylhexadecane | — | 0.169 | 0.152 | 0.366 | 0.322 | — | — | — | — | 0.182 | - | 2.287 | — | — | ||
| 3-甲基十七烷 3-Methylheptadecane | — | 0.219 | 0.102 | 0.196 | 0.160 | — | 0.113 | — | — | — | — | — | — | — | ||
| 8-十七烷烯8-Heptadecene | — | — | — | 0.411 | 0.479 | 0.196 | 0.117 | — | — | — | — | — | — | — | ||
| 癸烷Decane | — | — | 0.060 | — | — | — | — | — | — | — | — | — | — | — | ||
| 角鲨烷Squalane | — | — | 0.164 | 0.319 | — | 0.184 | — | — | — | — | — | — | — | — | ||
| 姥鲛烷Pristane | — | — | — | — | — | — | 0.199 | — | — | — | — | — | — | — | ||
| 十二烷Dodecane | 0.126 | 0.196 | 0.202 | 0.385 | 0.168 | 0.082 | 0.110 | 0.096 | — | 0.312 | 0.132 | 0.347 | — | — | ||
| 十六烷Hexadecane | — | 1.143 | 0.804 | 1.221 | 0.615 | 0.632 | 0.878 | 0.417 | 0.858 | 0.361 | 0.512 | 0.277 | 0.882 | 0.827 | ||
| 十七烷Heptadecane | — | 0.927 | 0.849 | 2.364 | 3.639 | 0.783 | 0.732 | 0.191 | 0.529 | 1.731 | 0.657 | 3.055 | 0.633 | 0.694 | ||
| 十三烷Tridecane | 0.074 | 0.232 | 0.171 | 0.379 | 0.339 | 0.275 | 0.327 | 0.075 | — | 0.424 | 0.388 | 1.855 | 0.091 | 0.061 | ||
| 十四烷Tetradecane | 0.085 | 0.350 | 0.331 | 0.556 | 0.419 | 0.247 | 0.312 | 0.264 | 0.433 | 0.377 | 0.483 | 1.047 | 0.545 | 0.535 | ||
| 十五烷Pentadecane | — | 0.853 | 1.470 | 3.916 | 3.223 | 0.713 | 0.638 | 0.292 | 0.582 | 1.511 | 1.337 | 3.550 | 1.488 | 1.320 | ||
| 十一烷Hendecane | 0.090 | 0.178 | 0.153 | 0.592 | 0.316 | 0.125 | 0.062 | — | — | 0.170 | 0.216 | 1.489 | 0.065 | — | ||
| 十八烷Octadecane | — | 0.530 | 0.268 | 0.489 | 0.213 | 0.259 | 0.440 | 0.199 | — | — | 0.239 | — | — | 0.148 | ||
| 植烷Phytane | — | — | — | 0.262 | — | — | 0.150 | — | — | — | — | — | — | — | ||
| 二十烷Eicosane | — | — | — | — | — | — | — | — | 0.503 | 0.185 | 0.128 | — | 0.202 | 0.198 | ||
| 6,9-十七碳二烯 6,9-Heptadecadiene | — | — | — | — | — | — | — | — | — | 0.985 | — | — | — | — | ||
| 2,2,4,6,6-五甲基庚烷 2,2,4,6,6-Pentamethylheptane | — | — | — | — | — | — | — | — | — | — | — | 0.230 | — | — | ||
| 3,3-二甲基己烷 3,3-Dimethylhexane | — | — | — | — | — | — | — | — | — | — | — | 0.129 | — | — | ||
| 二十一烷Heneicosane | — | — | — | — | — | — | — | — | — | — | — | 1.924 | — | — | ||
| 合计Total | 0.375f | 4.797cd | 4.766cd | 11.861b | 9.895b | 4.142cd | 4.228cd | 1.533ef | 2.905de | 6.238c | 4.091cd | 16.189a | 3.963cd | 3.784cd | ||
Fig.3
Total content and classification distribution of volatile compounds in Paeonia suffruticosa ‘Luoyang Hong’ at different time periods throughout a day under two cultivation methods A difference analysis was conducted on the total content of volatile compounds across 8 groups, which included potted and field-grown plants at different time periods throughout a day. Different lowercase letters indicate significant differences at the level of 0.05."
Table 3
Types and contents of volatile components in Paeonia suffruticosa ‘Luoyang Hong’ at different time of periods in a day μg·g?1"
| 分类 Classification | 化合物 Compounds | 盆栽Potted | 地栽Field-grown | |||||||
| 06:00—09:00 | 09:00—12:00 | 12:00—15:00 | 15:00—18:00 | 06:00—09:00 | 09:00—12:00 | 12:00—15:00 | 15:00—18:00 | |||
| 苯环类 Benzenes | 乙苯Ethylbenzene | 0.048 | 0.049 | 0.050 | — | — | — | — | — | |
| 对二甲苯p-Xylene | 0.103 | 0.116 | 0.096 | 0.148 | — | — | 0.046 | — | ||
| 间二甲苯m-Xylene | 0.044 | 0.036 | — | — | 0.067 | — | — | 0.078 | ||
| 对苯二甲醚1,4-Dimethoxybenzene | 0.612 | 2.521 | 0.195 | 4.096 | — | 0.328 | 0.972 | 1.015 | ||
| 吲哚Indole | — | — | — | — | — | — | — | 0.154 | ||
| 合计Total | 0.807c | 2.722b | 0.341d | 4.244a | 0.067d | 0.328d | 1.019c | 1.247c | ||
| 醇类 Alcohols | 叶醇Cis-3-hexen-1-ol | — | — | 0.106 | 0.176 | — | — | — | — | |
| 苯乙醇Phenylethyl alcohol | — | — | 0.784 | — | — | 0.424 | 0.459 | 0.153 | ||
| 2-己基-1-癸醇2-Hexyl-1-decanol | — | — | — | — | 0.164 | — | — | — | ||
| 合计Total | — | — | 0.890a | 0.176c | 0.164c | 0.424b | 0.459b | 0.153c | ||
| 酚类 Phenols | 2,4-二叔丁基苯酚2,4-Di-tert-butylphenol | 0.375 | 0.205 | 0.265 | 0.256 | 0.257 | 0.281 | 0.072 | — | |
| 合计Total | 0.375a | 0.205b | 0.265b | 0.256b | 0.257b | 0.281ab | 0.072c | — | ||
| 醛类 Aldehydes | 壬醛Nonanal | — | — | — | — | 0.077 | 0.116 | — | 0.025 | |
| 癸醛Decanal | — | — | — | — | 0.085 | — | — | 0.088 | ||
| 合计Total | — | — | — | — | 0.162a | 0.116b | — | 0.114b | ||
| 萜烯类 Terpenes | α-法呢烯α-Farnesene | — | — | 0.432 | — | — | 0.223 | 0.272 | 0.220 | |
| 合计Total | — | — | 0.432a | — | — | 0.223b | 0.272b | 0.220b | ||
| 酯类 Esters | 顺-7-十四碳乙酸酯(Z)-7-Tetradecen-1-yl acetate | 0.504 | 1.191 | 0.991 | 1.027 | — | — | — | — | |
| 茉莉酸甲酯Methyl jasmonate | — | 0.484 | 0.492 | 0.434 | — | — | — | — | ||
| 乙酸叶醇酯Cis-3-hexenyl-1-acetate | — | — | 0.054 | — | — | — | — | — | ||
| 合计Total | 0.504b | 1.675a | 1.537a | 1.460a | — | — | — | — | ||
| 烃类 Hydrocarbons | 十一烷Hendecane | 0.277 | 0.316 | 0.378 | 0.200 | 0.326 | 1.489 | 0.298 | 1.374 | |
| 十二烷Dodecane | 0.200 | 0.168 | 0.133 | 0.243 | 0.203 | 0.347 | 0.031 | 0.434 | ||
| 十三烷Tridecane | 0.268 | 0.339 | 0.281 | 0.252 | 0.436 | 1.855 | 0.072 | 0.124 | ||
| 十四烷Tetradecane | 0.540 | 0.419 | 0.636 | 0.476 | 0.381 | 1.047 | 0.436 | 0.275 | ||
| 十五烷Pentadecane | 2.609 | 3.223 | 4.857 | 2.643 | 2.985 | 3.550 | 3.837 | 3.087 | ||
| 十六烷Hexadecane | 1.181 | 0.615 | 0.686 | 0.999 | 0.260 | 0.277 | 0.732 | 0.362 | ||
| 2-甲基十六烷 2-Methylhexadecane | 0.231 | 0.322 | — | — | 0.254 | 2.287 | — | 0.350 | ||
| 十七烷Heptadecane | 1.672 | 3.639 | 2.917 | 3.280 | 1.968 | 3.055 | 1.628 | 1.428 | ||
| 角鲨烷Squalane | 0.290 | — | — | 0.213 | — | — | — | — | ||
| 3-甲基十七烷3-Methylheptadecan | 0.146 | 0.160 | 0.136 | 0.244 | 0.160 | — | — | — | ||
| 1-十八烷烯1-Octadecene | 0.142 | — | — | — | 0.318 | — | — | — | ||
| 十八烷Octadecane | 0.392 | 0.213 | 0.202 | 0.435 | 0.378 | — | 0.153 | 0.200 | ||
| 植烷Phytane | 0.111 | — | — | — | — | — | — | — | ||
| 1-十九碳烯1-Nonadecene | — | 0.322 | 0.321 | 0.346 | — | — | — | — | ||
| (E)-2-十四烯(2E)-Tetradec-2-ene | — | — | 0.128 | — | — | — | — | — | ||
| 8-十七烷烯8-Heptadecene | — | — | — | 0.146 | 0.294 | — | — | 0.568 | ||
| 2,2,4,6,6-五甲基庚烷 2,2,4,6,6-Pentamethylheptane | — | 0.479 | — | 0.294 | 0.154 | 0.230 | — | 0.209 | ||
| 3,3-二甲基己烷 3,3-Dimethylhexane | — | — | — | — | — | 0.129 | — | — | ||
| 二十一烷Heneicosane | — | — | — | — | — | 1.924 | — | — | ||
| 1,7-十六烷二烯 1,7-Hexadecadiene | — | — | — | — | — | — | 0.450 | — | ||
| 3-甲基十五烷 3-Methylpentadecane, | — | — | — | — | — | — | — | 0.113 | ||
| 6,9-十七碳二烯 6,9-Heptadecadiene | — | — | — | — | — | — | — | 1.498 | ||
| 合计Total | 8.059c | 10.217bc | 10.676b | 9.771bc | 8.116c | 16.189a | 7.637c | 10.022bc | ||
|
陈 晨, 袁 刚. 植物花香合成与调控机制研究进展. 江苏农业科学, 2025, 53 (22): 31- 38.
doi: 10.15889/j.issn.1002-1302.2025.22.004 |
|
|
Chen C, Yuan G. Research progress on synthesis and regulation mechanism of plant floral scent. Jiangsu Agricultural Sciences, 2025, 53 (22): 31- 38.
doi: 10.15889/j.issn.1002-1302.2025.22.004 |
|
|
丁星文, 王珍珍, 王其刚, 等. 不同花色滇牡丹花香成分分析. 南方园艺, 2022, 33 (3): 25- 30.
doi: 10.3969/j.issn.1674-5868.2022.03.005 |
|
|
Ding X W, Wang Z Z, Wang Q G, et al. Analysis of floral volatile components of in Paeonia delavayi with differrent colors. Southern Horticulture, 2022, 33 (3): 25- 30.
doi: 10.3969/j.issn.1674-5868.2022.03.005 |
|
| 窦雅君, 翟 娟, 侯芳梅, 等. 不同光照强度对‘金盏银台’水仙花香释放的影响. 西北农业学报, 2014, (4): 85- 91. | |
| Dou Y J, Zhai J, Hou F M, et al. Effect of different light intensities on the floral aroma emitted from Chinese daffodil (Narcissus tazetta L. var. chinensis Roem). Acta Agriculturae Boreali-occidentalis Sinica, 2014, (4): 85- 91. | |
| 黄昕蕾, 郑宝强, 王 雁. 鼓槌石斛不同花期香气成分及盛花期香气日变化规律研究. 林业科学研究, 2018, 31 (4): 142- 149. | |
| Huang X L, Zheng B Q, Wang Y. Study of aroma compounds in flowers of Dendrobium chrysotoxum in different florescence stages and diurnal variation of full blooming stage. Forest Research, 2018, 31 (4): 142- 149. | |
|
李瑞雅, 宋程威, 牛童非, 等. ‘海黄’牡丹花挥发性物质释放规律及PsGDS的克隆与表达分析. 园艺学报, 2023, 50 (2): 331- 344.
doi: 10.16420/j.issn.0513-353x.2021-0870 |
|
|
Li R Y, Song C W, Niu T F, et al. The emitted pattern analysis of flower volatiles and cloning of PsGDS gene in tree peony cultivar ‘High Noon’. Acta Horticulturae Sinica, 2023, 50 (2): 331- 344.
doi: 10.16420/j.issn.0513-353x.2021-0870 |
|
| 牛童非, 薛 娴, 郭丽丽, 等. 外源茉莉酸甲酯对温室牡丹‘洛阳红’挥发性成分及含量的影响. 林业科学, 2023, 59 (5): 53- 60. | |
| Niu T F, Xue X, Guo L L, et al. Effects of exogenous methyl jasmonate on volatile components and content of Paeonia suffruticosa ‘Luoyanghong’ in greenhouse. Scientia Silvae Sinicae, 2023, 59 (5): 53- 60. | |
| 牛童非, 杨 迪, 马慧丽, 等. 牡丹花香的生物合成及调控研究进展. 园艺学报, 2026, 53 (2): 447- 466. | |
| Niu T F, Yang D, Ma H L, et al. Advances in floral aroma biosynthesis and regulation in tree peony. Acta Horticulturae Sinica, 2026, 53 (2): 447- 466. | |
| 吴 静, 邹吉睿, 汪进萱, 等. 紫丁香花香成分鉴定及关键TPS基因的功能分析. 植物遗传资源学报, 2024, 25 (5): 824- 833. | |
| Wu J, Zou J R, Wang J X, et al. Identification of floral components and functional analysis of key TPS genes in Syringa oblata. Journal of Plant Genetic Resources, 2024, 25 (5): 824- 833. | |
|
肖文芳, 李 佐, 陈和明, 等. 大叶蝴蝶兰花朵挥发性成分测定. 热带农业科学, 2020, 40 (4): 82- 87.
doi: 10.12008/j.issn.1009-2196.2020.04.014 |
|
|
Xiao W F, Li Z, Chen H M, et al. Determination of volatile components in flowers of Phalaenopsis violacea. Chinese Journal of Tropical Agriculture, 2020, 40 (4): 82- 87.
doi: 10.12008/j.issn.1009-2196.2020.04.014 |
|
| 许弘朋, 陆锦萍, 蒋晓楠, 等. 植物激素与环境因子调控园艺作物香气合成的研究进展. 园艺学报, 2026, 53 (2): 331- 358. | |
| Xu H P, Lu J P, Jiang X N, et al. Research advances in the regulation of aroma biosynthesis in horticultural crops by plant hormones and environmental factors. Acta Horticulturae Sinica, 2026, 53 (2): 331- 358. | |
| 颜沛沛, 叶 炜, 江金兰, 等. 金钗石斛花香气日变化规律. 亚热带农业研究, 2021, 17 (3): 179- 183. | |
| Yan P P, Ye W, Jiang J L, et al. Diurnal variation of floral scents emitted from Dendrobium nobile Lindl. Subtropical Agriculture Research, 2021, 17 (3): 179- 183. | |
| 张红磊. 2011. 牡丹花期、花色及花香的变异研究. 泰安: 山东农业大学. | |
| Zhang H L. 2011. The researches on variation of florescence、color and aromatic components in Paeonia suffruticosa. Tai’an: Shandong Agricultural University. [in Chinese] | |
|
张辉秀, 冷平生, 胡增辉, 等. ‘西伯利亚’百合花香随开花进程变化及日变化规律. 园艺学报, 2013, 40 (4): 693- 702.
doi: 10.16420/j.issn.0513-353x.2013.04.012 |
|
|
Zhang H X, Leng P S, Hu Z H, et al. The floral scent emitted from Lilium ‘Siberia’ at different flowering stages and diurnal variation. Acta Horticulturae Sinica, 2013, 40 (4): 693- 702.
doi: 10.16420/j.issn.0513-353x.2013.04.012 |
|
|
张 颖. 春季催花牡丹观赏价值综合评价. 现代园艺, 2023, 46 (13): 78- 81,85.
doi: 10.14051/j.cnki.xdyy.2023.13.041 |
|
|
Zhang Y. Comprehensive evaluation of the ornamental value of forced-flowering tree peonies in spring. Contemporary Horticulture, 2023, 46 (13): 78- 81,85.
doi: 10.14051/j.cnki.xdyy.2023.13.041 |
|
| 张宇航, 谷梦雅, 洪雅萍, 等. 茉莉花PAL基因家族的多基因组鉴定与表达分析. 江苏农业学报, 2024, 40 (3): 403- 414. | |
| Zhang Y H, Gu M Y, Hong Y P, et al. Multi-genomic identification and expressional analysis of PAL gene family in Jasminum sambac. Jiangsu Journal of Agricultural Sciences, 2024, 40 (3): 403- 414. | |
|
Barman M, Mitra A. Floral maturation and changing air temperatures influence scent volatiles biosynthesis and emission in Jasminum auriculatum Vahl. Environmental and Experimental Botany, 2021, 181, 104296.
doi: 10.1016/j.envexpbot.2020.104296 |
|
|
Delle-Vedove R, Schatz B, Dufay M. Understanding intraspecific variation of floral scent in light of evolutionary ecology. Annals of Botany, 2017, 120 (1): 1- 20.
doi: 10.1093/aob/mcx055 |
|
|
Farré-Armengol G, Fernández-Martínez M, Filella I, et al. Deciphering the biotic and climatic factors that influence floral scents: a systematic review of floral volatile emissions. Frontiers in Plant Science, 2020, 11, 1154.
doi: 10.3389/fpls.2020.01154 |
|
|
Hermann G, Bek R, Steeb S. Aroma evolution during flower opening in Rosa damascena Mill. Zeitschrift Für Naturforschung C, 1999, 54 (11): 889- 895.
doi: 10.1515/znc-1999-1106 |
|
|
Kong J Q. Phenylalanine ammonia-lyase, a key component used for phenylpropanoids production by metabolic engineering. Cheminform, 2015, 5 (77): 62587- 62603.
doi: 10.1039/c5ra08196c |
|
|
Li S S, Chen L G, Xu Y J, et al. Identification of floral fragrances in tree peony cultivars by gas chromatography–mass spectrometry. Scientia Horticulturae, 2012, 142, 158- 165.
doi: 10.1016/j.scienta.2012.05.015 |
|
|
Li S S, Zhang L, Sun M, et al. Biogenesis of flavor-related linalool is diverged and genetically conserved in tree peony (Paeonia × suffruticosa). Horticulture Research, 2022, 10 (2): uhac253.
doi: 10.1093/hr/uhac253 |
|
|
Luo J, Zhong W T, Xiong Y Y, et al. Analysis of non-polar low-molecular metabolites in Citron (Citrus medica L. ) peel essential oil at different developmental stages and a combined study of transcriptomics revealed genes related to the synthesis regulation of the monoterpenoid compound nerol. International Journal of Molecular Sciences, 2025, 26 (18): 9034.
doi: 10.3390/ijms26189034 |
|
|
Lü M W, Zhang L, Wang Y Z, et al. Floral volatile benzenoids/phenylpropanoids: biosynthetic pathway, regulation and ecological value. Horticulture Research, 2024, 11 (10): uhae220.
doi: 10.1093/hr/uhae220 |
|
|
Ma H L, Zhang C J, Niu T F, et al. Identification of floral volatile components and expression analysis of controlling gene in Paeonia ostii ‘Fengdan’ under different cultivation conditions. Plants, 2023, 12 (13): 2453.
doi: 10.3390/plants12132453 |
|
|
Magnard J L, Bony A R, Bettini F, et al. Linalool and linalool nerolidol synthases in roses, several genes for little scent. Plant Physiology and Biochemistry, 2018, 127, 74- 87.
doi: 10.1016/j.plaphy.2018.03.009 |
|
|
Sagae M, Oyama-Okubo N, Ando T, et al. Effect of temperature on the floral scent emission and endogenous volatile profile of Petunia axillaris. Bioscience Biotechnology & Biochemistry, 2008, 72 (1): 110- 115.
doi: 10.1271/bbb.70490 |
|
|
Shalit M, Guterman I, Volpin H, et al. Volatile ester formation in roses. identification of an acetyl-coenzyme A. geraniol/citronellol acetyltransferase in developing rose petals. Plant Physiology, 2003, 131 (4): 1868- 1876.
doi: 10.1104/pp.102.018572 |
|
|
Weng Y Y, Wang S T, Niu T F, et al. Effect of spermidine on the quality of vase-inserted Paeonia suffruticosa ‘Luoyang Hong’. Postharvest Biology and Technology, 2025, 223, 113445.
doi: 10.1016/j.postharvbio.2025.113445 |
|
|
Yin H N, Wang L, Su H M, et al. Effects of ultraviolet and infrared radiation absence or presence on the aroma volatile compounds in winegrape during veraison. Food Research International, 2023, 167, 112662.
doi: 10.1016/j.foodres.2023.112662 |
|
|
Yu Y, Lü S H, Chen D, et al. Volatiles emitted at different flowering stages of Jasminum sambac and expression of genes related to α-farnesene biosynthesis. Molecules, 2017, 22 (4): 546.
doi: 10.3390/molecules22040546 |
|
|
Zhang T, Yuan Y C, Zhan Y, et al. Metabolomics analysis reveals Embden Meyerhof Parnas pathway activation and flavonoids accumulation during dormancy transition in tree peony. BMC Plant Biology, 2020, 20 (1): 484.
doi: 10.1186/s12870-020-02692-x |
|
|
Zhao Q, Gu L N, Li Y Q, et al. Volatile composition and classification of Paeonia lactiflora flower aroma types and identification of the fragrance-related genes. International Journal of Molecular Sciences, 2023, 24 (11): 9410.
doi: 10.3390/ijms24119410 |
| [1] | Yanping Zhou,Hanyu Li,Zhengqiang Huang,Nan Wang,Qingfen Li. Changes in Endogenous Hormone Content and Gene Expression during Long-Term Subculture of Picea abies Embryogenic Callus [J]. Scientia Silvae Sinicae, 2026, 62(7): 113-125. |
| [2] | Jin Huang,Junhong Zhang,Zaikang Tong,Qi Yang. Effects of Artificial Dehydration on Germination Characteristics of Phoebe bournei Seeds [J]. Scientia Silvae Sinicae, 2025, 61(4): 249-256. |
| [3] | Zihao Zong,Ruiling Liu,Weijie Wu,Huizhi Chen,Chuan Tong,Shuren Han,Zhengshi Jin,Xianming Ye,Haiyan Gao. Effects of Anti-vibration Packaging on Shelf-life Quality and Malic Acid Metabolism of Kiwifruit under Simulated Transportation [J]. Scientia Silvae Sinicae, 2025, 61(2): 122-130. |
| [4] | Cuiping Wu,Caoliang Jin,Jianping Ying,Jinwei Suo,Jiasheng Wu,Yuanyuan Hu. Effects of Quota Water Addition on Anatomical Changes and Gene Expression in Aril Cracking of Torreya grandis cv. ‘Merrilii’ During Near Maturity Stage [J]. Scientia Silvae Sinicae, 2025, 61(1): 115-125. |
| [5] | Tongfei Niu,Xian Xue,Lili Guo,Min Yu,Chenjie Zhang,Xinao Xu,Ruiya Li,Xiaogai Hou. Effects of Exogenous Methyl Jasmonate on Volatile Components and Content of Paeonia suffruticosa ‘Luoyanghong’ in Greenhouse [J]. Scientia Silvae Sinicae, 2023, 59(5): 53-60. |
| [6] | Miao Zhang,Shengcai Zhou,Mengjie Wu,Zaikang Tong,Xiao Han,Junhong Zhang,Longjun Cheng. Identification of the PbWRKY Gene Family and Its Expression Analysis under Deficiency of Phosphorus in Phoebe bournei [J]. Scientia Silvae Sinicae, 2022, 58(2): 133-147. |
| [7] | Liuhui Zheng,Yu Hou,Xinfeng Zhang,Weiwu Yu,Yanru Zeng,Wensheng Dai. Changes of Volatile Oil Composition in Aril during the Growth and Development of Torreya grandis 'Merrillii' Seeds [J]. Scientia Silvae Sinicae, 2022, 58(11): 127-136. |
| [8] | Fang Tang,Shutang Zhao,Lijuan Wang,Xueqin Song,Mengzhu Lu. Gene Expression of Secondary Vascular System Regeneration in Populus tomentosa [J]. Scientia Silvae Sinicae, 2021, 57(9): 52-65. |
| [9] | Zhen Li,Tingting Yuan,Chenglei Zhu,Kebin Yang,Xinzhang Song,Zhimin Gao. Molecular Characteristics and Patterns of Gene Expression of Ammonium Transporter in Moso Bamboo [J]. Scientia Silvae Sinicae, 2021, 57(7): 70-79. |
| [10] | Xiaotong Kang,Hui Chen. Cloning and Expression of alpha-pinene synthase and (-)-limonene synthase Genes in Pinus armandi [J]. Scientia Silvae Sinicae, 2021, 57(6): 180-188. |
| [11] | Yahui Miao,Dan Ju,Kehao Liang,Aibin Wang,Junling Liu,Lingyun Zhang. Cloning and Functional Analysis of Transcription Factor Gene PwNF-YB8 from Picea wilsonii [J]. Scientia Silvae Sinicae, 2021, 57(5): 77-92. |
| [12] | Xinyi Zhou,Liqiong Yan,Yuntong Lü,Lili Sun,Jingwen Zhu,Chuanwang Cao. Activities and Gene Expressions of Phenylpropane Metabolic Enzymes in Populus simonii×P. nigra by Herbivore Induction of Lymantria dispar (Lepidoptera: Lymantriidae) [J]. Scientia Silvae Sinicae, 2021, 57(3): 108-116. |
| [13] | Minhao Liu,Long Li,Jing Ye,Xuanyuan Zhou,Zhouqi Li,Ruishen Fan,Junlei Xu. Genome-Wide Identification and Expression Analysis of the ARF Gene Family in Eucommia ulmoides [J]. Scientia Silvae Sinicae, 2021, 57(3): 170-180. |
| [14] | Kunjin Han,Juanjuan Guo,Ziqing Lü,Yuyan Li,Shijie Wang,Minsheng Yang,Jinmao Wang. Detection of Resistance of Multi-Gene Transgenic Populus×euramericana 'Neva' to Target Pests [J]. Scientia Silvae Sinicae, 2021, 57(11): 85-93. |
| [15] | Limin Wang,Yahui Chen,Qingshan Yang,Ritao Qu,Jiang Jiang,Jinchi Zhang,Hongxia Zhang,Zhizhong Song. Cloning and Functional Analysis of Potassium Channel Gene PdbSKOR in Populus davidiana×P. bolleana [J]. Scientia Silvae Sinicae, 2021, 57(1): 53-63. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||