草业学报 ›› 2026, Vol. 35 ›› Issue (10): 180-191.DOI: 10.11686/cyxb2025426
• 研究论文 • 上一篇
刘新颖1(
), 鉴晶晶1, 赵琬璐1, 崔灿1, 杨帆1, 严俊鑫1(
), 何睦2(
)
收稿日期:2025-10-18
修回日期:2025-12-01
出版日期:2026-10-20
发布日期:2026-09-09
通讯作者:
严俊鑫,何睦
作者简介:hemu@sdu.edu.cn基金资助:
Xin-ying LIU1(
), Jing-jing JIAN1, Wan-lu ZHAO1, Can CUI1, Fan YANG1, Jun-xin YAN1(
), Mu HE2(
)
Received:2025-10-18
Revised:2025-12-01
Online:2026-10-20
Published:2026-09-09
Contact:
Jun-xin YAN,Mu HE
摘要:
为探究水杨酸与复合甲壳素单独及联合施用对留兰香生长和营养品质的影响,采用叶面喷施方式设置5个处理(对照组、乙醇溶剂组、300 mg·L-1水杨酸、0.4%复合甲壳素、联合处理组),处理60 d后测定植株生长、光合特性及营养品质相关指标。结果表明:与对照组相比,水杨酸和复合甲壳素单独处理均能显著促进留兰香的生长并改善营养品质,而联合处理组的促进作用最为突出,显著提高了留兰香生物量、根系指标和光合参数,增强了氮、磷、钾养分的吸收效率,同时提升了总糖、粗蛋白、粗脂肪、粗纤维基础营养成分以及总酚、总黄酮、抗坏血酸抗氧化物质的含量,其中总糖、粗蛋白、粗脂肪和粗纤维含量较对照组分别提高了56.78%、26.77%、26.58%和38.24%。隶属函数分析显示,各处理营养品质的综合评价排序为联合处理组>复合甲壳素处理组>水杨酸处理组>对照组>乙醇溶剂组。本研究可为利用水杨酸与复合甲壳素协同提升留兰香营养品质提供参考。
刘新颖, 鉴晶晶, 赵琬璐, 崔灿, 杨帆, 严俊鑫, 何睦. 水杨酸和复合甲壳素对留兰香生长与营养品质的影响[J]. 草业学报, 2026, 35(10): 180-191.
Xin-ying LIU, Jing-jing JIAN, Wan-lu ZHAO, Can CUI, Fan YANG, Jun-xin YAN, Mu HE. Effects of salicylic acid and complex chitin on the growth and nutritional quality of spearmint[J]. Acta Prataculturae Sinica, 2026, 35(10): 180-191.
处理 Treatment | 叶鲜重 Leaf fresh weight | 叶干重 Leaf dry weight | 茎鲜重 Stem fresh weight | 茎干重 Stem dry weight | 根鲜重 Root fresh weight | 根干重 Root dry weight |
|---|---|---|---|---|---|---|
| 对照Control | 11.29±1.85b | 1.87±0.34c | 8.49±1.09c | 2.17±0.32b | 4.72±0.37d | 1.56±0.18d |
| ETH | 10.60±1.69b | 1.73±0.31c | 8.53±1.60c | 2.15±0.42b | 4.43±0.35d | 1.43±0.17d |
| SA | 15.40±0.71a | 3.18±0.22b | 13.96±1.02ab | 3.36±0.29a | 6.50±0.63c | 2.05±0.22c |
| CC | 15.60±1.77a | 3.13±0.38b | 12.31±0.57b | 3.05±0.19a | 7.54±0.45b | 2.36±0.09b |
| SACC | 17.69±2.00a | 3.85±0.43a | 14.18±0.79a | 3.54±0.16a | 10.17±0.78a | 3.04±0.16a |
表1 水杨酸和复合甲壳素对留兰香生物量的影响
Table 1 Effects of salicylic acid and complex chitin on the biomass of M. spicata (g·株plant?1)
处理 Treatment | 叶鲜重 Leaf fresh weight | 叶干重 Leaf dry weight | 茎鲜重 Stem fresh weight | 茎干重 Stem dry weight | 根鲜重 Root fresh weight | 根干重 Root dry weight |
|---|---|---|---|---|---|---|
| 对照Control | 11.29±1.85b | 1.87±0.34c | 8.49±1.09c | 2.17±0.32b | 4.72±0.37d | 1.56±0.18d |
| ETH | 10.60±1.69b | 1.73±0.31c | 8.53±1.60c | 2.15±0.42b | 4.43±0.35d | 1.43±0.17d |
| SA | 15.40±0.71a | 3.18±0.22b | 13.96±1.02ab | 3.36±0.29a | 6.50±0.63c | 2.05±0.22c |
| CC | 15.60±1.77a | 3.13±0.38b | 12.31±0.57b | 3.05±0.19a | 7.54±0.45b | 2.36±0.09b |
| SACC | 17.69±2.00a | 3.85±0.43a | 14.18±0.79a | 3.54±0.16a | 10.17±0.78a | 3.04±0.16a |
处理 Treatment | 根系总长 Total length of root system (cm) | 根系总面积 Total area of root system (cm2) | 根系总体积 Total volume of root system (cm3) | 根系分叉数 Number of root forks | 根系平均直径 Roots average diameter (mm) | 株高 Plant height (cm) |
|---|---|---|---|---|---|---|
| 对照Control | 327.17±11.32d | 90.50±3.62d | 6.00±0.30c | 161.17±14.50c | 0.43±0.03d | 44.23±3.96c |
| ETH | 308.17±10.50d | 83.17±3.19e | 5.35±0.39d | 211.50±22.72b | 0.51±0.05c | 46.90±3.22c |
| SA | 466.33±18.14c | 111.34±4.72c | 7.52±0.37b | 258.00±12.76a | 0.60±0.05b | 53.70±0.84ab |
| CC | 512.33±22.22b | 122.00±3.85b | 8.03±0.31b | 248.67±18.89a | 0.66±0.02b | 49.47±5.08bc |
| SACC | 568.50±15.63a | 143.83±4.67a | 8.75±0.33a | 279.83±21.50a | 0.73±0.02a | 56.13±4.98a |
表2 水杨酸和复合甲壳素对留兰香根系形态和株高的影响
Table 2 Effects of salicylic acid and complex chitin on the root morphology and plant height of M. spicata
处理 Treatment | 根系总长 Total length of root system (cm) | 根系总面积 Total area of root system (cm2) | 根系总体积 Total volume of root system (cm3) | 根系分叉数 Number of root forks | 根系平均直径 Roots average diameter (mm) | 株高 Plant height (cm) |
|---|---|---|---|---|---|---|
| 对照Control | 327.17±11.32d | 90.50±3.62d | 6.00±0.30c | 161.17±14.50c | 0.43±0.03d | 44.23±3.96c |
| ETH | 308.17±10.50d | 83.17±3.19e | 5.35±0.39d | 211.50±22.72b | 0.51±0.05c | 46.90±3.22c |
| SA | 466.33±18.14c | 111.34±4.72c | 7.52±0.37b | 258.00±12.76a | 0.60±0.05b | 53.70±0.84ab |
| CC | 512.33±22.22b | 122.00±3.85b | 8.03±0.31b | 248.67±18.89a | 0.66±0.02b | 49.47±5.08bc |
| SACC | 568.50±15.63a | 143.83±4.67a | 8.75±0.33a | 279.83±21.50a | 0.73±0.02a | 56.13±4.98a |
处理 Treatment | 净光合速率 Net photosynthetic rate (μmol·m-2·s-1) | 胞间二氧化碳浓度 Intercellular carbon dioxide concentration (μmol·mol-1) | 气孔导度 Stomatal conductance (mol·m-2·s-1) | 蒸腾速率 Transpiration rate (mmol·m-2·s-1) |
|---|---|---|---|---|
| 对照Control | 10.03±1.72c | 276.00±10.68ab | 0.32±0.04b | 2.83±0.07d |
| ETH | 10.79±1.33bc | 274.67±8.40ab | 0.33±0.02b | 2.99±0.18cd |
| SA | 12.80±1.55ab | 289.33±5.01a | 0.28±0.02b | 3.12±0.23bc |
| CC | 11.61±1.50bc | 262.83±8.13b | 0.39±0.01a | 3.32±0.11ab |
| SACC | 14.53±0.99a | 290.50±13.28a | 0.42±0.02a | 3.41±0.16a |
表3 水杨酸与复合甲壳素对留兰香气体交换参数的影响
Table 3 Effects of salicylic acid and complex chitin on gas exchange parameters of M. spicata
处理 Treatment | 净光合速率 Net photosynthetic rate (μmol·m-2·s-1) | 胞间二氧化碳浓度 Intercellular carbon dioxide concentration (μmol·mol-1) | 气孔导度 Stomatal conductance (mol·m-2·s-1) | 蒸腾速率 Transpiration rate (mmol·m-2·s-1) |
|---|---|---|---|---|
| 对照Control | 10.03±1.72c | 276.00±10.68ab | 0.32±0.04b | 2.83±0.07d |
| ETH | 10.79±1.33bc | 274.67±8.40ab | 0.33±0.02b | 2.99±0.18cd |
| SA | 12.80±1.55ab | 289.33±5.01a | 0.28±0.02b | 3.12±0.23bc |
| CC | 11.61±1.50bc | 262.83±8.13b | 0.39±0.01a | 3.32±0.11ab |
| SACC | 14.53±0.99a | 290.50±13.28a | 0.42±0.02a | 3.41±0.16a |
图1 水杨酸与复合甲壳素对留兰香叶绿素a、叶绿素b含量及叶绿素a/b的影响对照Control: 蒸馏水 Distilled water; ETH: 0.1%乙醇水溶液 0.1% ethanol aqueous solution; SA: 300 mg·L?1水杨酸溶液 300 mg·L?1 salicylic acid solution; CC: 0.4%复合甲壳素溶液 0.4% complex chitin solution; SACC: 300 mg·L?1水杨酸与0.4%复合甲壳素复配溶液 Combined solution of 300 mg·L?1 salicylic acid and 0.4% complex chitin; FW: 鲜重 Fresh weight. 不同小写字母表示各处理间差异显著(P<0.05)。下同。The different lowercase letters indicate significant differences among treatments at P<0.05. The same below.
Fig.1 Effects of salicylic acid and complex chitin on chlorophyll a, chlorophyll b contents, and chlorophyll a/b in M. spicata
图2 水杨酸与复合甲壳素对留兰香总酚、总黄酮、抗坏血酸含量的影响
Fig.2 Effects of salicylic acid and complex chitin on the contents of total phenols, total flavonoids, and ascorbic acid in M. spicata
图3 水杨酸与复合甲壳素对留兰香氮、磷、钾含量的影响DW:干重Dry weight. 下同The same below.
Fig.3 Effects of salicylic acid and complex chitin on the contents of nitrogen, phosphorus, and potassium in M. spicata
处理 Treatment | 总酚 Total phenols | 总黄酮 Total flavonoids | 抗坏血酸 Ascorbic acid | 氮 Nitrogen | 磷 Phosphorus | 钾 Potassium | 总糖 Total sugars | 粗蛋白 Crude protein | 粗脂肪Crude fat | 粗纤维 Crude fiber | 隶属函数值 Membership function value | 排序 Sort |
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 对照Control | 0.000 | 0.092 | 0.270 | 0.000 | 0.043 | 0.113 | 0.000 | 0.000 | 0.065 | 0.029 | 0.065 | 4 |
| ETH | 0.009 | 0.000 | 0.000 | 0.232 | 0.000 | 0.000 | 0.123 | 0.157 | 0.000 | 0.000 | 0.058 | 5 |
| SA | 0.659 | 0.610 | 0.670 | 0.556 | 0.734 | 0.575 | 0.765 | 0.559 | 0.250 | 0.536 | 0.598 | 3 |
| CC | 0.523 | 0.432 | 0.511 | 0.734 | 0.807 | 0.750 | 0.916 | 0.736 | 0.755 | 0.827 | 0.685 | 2 |
| SACC | 1.000 | 1.000 | 1.000 | 1.000 | 1.000 | 1.000 | 1.000 | 1.000 | 1.000 | 1.000 | 1.000 | 1 |
表4 留兰香营养品质综合评价(隶属函数值)
Table 4 Comprehensive evaluation of nutritional quality of M. spicata (membership function value)
处理 Treatment | 总酚 Total phenols | 总黄酮 Total flavonoids | 抗坏血酸 Ascorbic acid | 氮 Nitrogen | 磷 Phosphorus | 钾 Potassium | 总糖 Total sugars | 粗蛋白 Crude protein | 粗脂肪Crude fat | 粗纤维 Crude fiber | 隶属函数值 Membership function value | 排序 Sort |
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 对照Control | 0.000 | 0.092 | 0.270 | 0.000 | 0.043 | 0.113 | 0.000 | 0.000 | 0.065 | 0.029 | 0.065 | 4 |
| ETH | 0.009 | 0.000 | 0.000 | 0.232 | 0.000 | 0.000 | 0.123 | 0.157 | 0.000 | 0.000 | 0.058 | 5 |
| SA | 0.659 | 0.610 | 0.670 | 0.556 | 0.734 | 0.575 | 0.765 | 0.559 | 0.250 | 0.536 | 0.598 | 3 |
| CC | 0.523 | 0.432 | 0.511 | 0.734 | 0.807 | 0.750 | 0.916 | 0.736 | 0.755 | 0.827 | 0.685 | 2 |
| SACC | 1.000 | 1.000 | 1.000 | 1.000 | 1.000 | 1.000 | 1.000 | 1.000 | 1.000 | 1.000 | 1.000 | 1 |
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