草业学报 ›› 2022, Vol. 31 ›› Issue (4): 93-101.DOI: 10.11686/cyxb2021018
收稿日期:
2021-01-20
修回日期:
2021-04-21
出版日期:
2022-04-20
发布日期:
2022-01-25
通讯作者:
毛培胜
作者简介:
Corresponding author. E-mail: maops@cau.edu.cn基金资助:
Cheng-ming OU(), Mei-qi ZHAO, Ming SUN, Pei-sheng MAO()
Received:
2021-01-20
Revised:
2021-04-21
Online:
2022-04-20
Published:
2022-01-25
Contact:
Pei-sheng MAO
摘要:
为探究抗坏血酸(AsA)和水杨酸(SA)丸衣对NaCl胁迫下紫花苜蓿种子萌发的缓解效应,以紫花苜蓿种子为试验材料,采用不同浓度的AsA(1、2、4、8 mmol·L-1)和SA(1、5、10、20 mmol·L-1)对紫花苜蓿种子拌种后进行丸衣处理(未丸衣种子为CK1,不做拌种处理的丸衣种子记为CK2),分析丸衣种子在NaCl胁迫下发芽特性的变化,以期获得能有效缓解紫花苜蓿种子盐胁迫效应的种子丸衣配方。结果表明,1.25%和1.50%的NaCl胁迫显著(P<0.05)降低了紫花苜蓿未丸衣种子的发芽率、发芽势、种苗长和种苗重,延长了平均发芽时间。AsA在1.25%NaCl胁迫下缓解效果不明显,4 mmol·L-1AsA拌种后丸衣处理,能提高1.50%NaCl胁迫下紫花苜蓿种子的发芽率、种苗长。1 mmol·L-1SA拌种后丸衣处理,能提高1.50%NaCl胁迫下紫花苜蓿种子的发芽势、发芽率和种苗长,而20 mmol·L-1SA拌种后丸衣处理降低了紫花苜蓿种子的发芽率。说明AsA和SA丸衣对NaCl胁迫的缓解作用与其拌种浓度和NaCl胁迫浓度有关。本试验筛选出4 mmol·L-1AsA和1 mmol·L-1SA拌种丸衣配方对NaCl胁迫的缓解作用最优,该结果为AsA和SA丸衣应用于紫花苜蓿种子缓解NaCl胁迫提供依据。
欧成明, 赵美琦, 孙铭, 毛培胜. 抗坏血酸和水杨酸丸衣对NaCl胁迫下紫花苜蓿种子发芽特性的影响[J]. 草业学报, 2022, 31(4): 93-101.
Cheng-ming OU, Mei-qi ZHAO, Ming SUN, Pei-sheng MAO. Effects of ascorbic acid and salicylic acid pelleting on germination characteristics in alfalfa seeds under NaCl stress[J]. Acta Prataculturae Sinica, 2022, 31(4): 93-101.
NaCl浓度 NaCl concentration (CK1,%) | 发芽势 Germination potential (%) | 发芽率 Germination percentage (%) | 平均发芽时间 Mean germination time (d) | 种苗长 Seedling length (cm) | 种苗重 Seedling weight (g·10 plant-1) |
---|---|---|---|---|---|
0 | 96±1.1a | 96±1.1a | 1.1±0.03e | 7.8±0.33a | 0.239±0.005a |
0.50 | 96±0.4a | 96±0.5a | 1.9±0.06d | 6.9±0.49b | 0.215±0.013a |
1.00 | 63±4.4b | 87±2.9b | 3.5±0.11c | 4.8±0.25c | 0.187±0.007b |
1.25 | 14±2.1c | 56±3.9c | 4.8±0.24b | 2.8±0.12d | 0.165±0.007b |
1.50 | 2±0.7d | 24±3.6d | 5.5±0.29a | 1.5±0.08e | 0.116±0.004c |
表1 NaCl胁迫对紫花苜蓿种子发芽的影响
Table 1 Effects of NaCl stress on alfalfa seed germination
NaCl浓度 NaCl concentration (CK1,%) | 发芽势 Germination potential (%) | 发芽率 Germination percentage (%) | 平均发芽时间 Mean germination time (d) | 种苗长 Seedling length (cm) | 种苗重 Seedling weight (g·10 plant-1) |
---|---|---|---|---|---|
0 | 96±1.1a | 96±1.1a | 1.1±0.03e | 7.8±0.33a | 0.239±0.005a |
0.50 | 96±0.4a | 96±0.5a | 1.9±0.06d | 6.9±0.49b | 0.215±0.013a |
1.00 | 63±4.4b | 87±2.9b | 3.5±0.11c | 4.8±0.25c | 0.187±0.007b |
1.25 | 14±2.1c | 56±3.9c | 4.8±0.24b | 2.8±0.12d | 0.165±0.007b |
1.50 | 2±0.7d | 24±3.6d | 5.5±0.29a | 1.5±0.08e | 0.116±0.004c |
NaCl浓度 NaCl concentration (%) | 处理 Treatment | 发芽势 Germination potential (%) | 发芽率 Germination percentage (%) | 平均发芽时间 Mean germination time (d) | 种苗长 Seedling length (cm) | 种苗重 Seedling weight (g·10 plant-1) |
---|---|---|---|---|---|---|
0 | CK2 | 83±2.3b | 92±1.5ab | 2.4±0.06a | 7.7±0.06a | 0.278±0.004ab |
PAA1 | 92±0.9a | 94±0.5ab | 2.2±0.03ab | 7.8±0.20a | 0.264±0.013b | |
PAA2 | 92±1.2a | 95±1.2a | 2.2±0.05ab | 7.5±0.25ab | 0.277±0.015ab | |
PAA4 | 85±0.9b | 92±0.9ab | 2.4±0.05a | 7.7±0.13a | 0.299±0.004a | |
PAA8 | 90±0.9a | 95±0.9a | 2.3±0.02ab | 7.3±0.12ab | 0.275±0.005ab | |
PAS1 | 92±1.8a | 93±1.7ab | 2.1±0.03b | 7.3±0.34ab | 0.267±0.007b | |
PAS5 | 93±0.8a | 95±0.4a | 2.1±0.05b | 7.1±0.21b | 0.262±0.015b | |
PAS10 | 90±0.5a | 91±0.6b | 2.2±0.00ab | 7.8±0.09a | 0.268±0.010b | |
PAS20 | 91±0.3a | 93±0.4ab | 2.1±0.03b | 7.5±0.21ab | 0.251±0.002b | |
1.25 | CK2 | 8±0.9de | 66±6.0a | 4.7±0.08d | 2.7±0.06ab | 0.166±0.009a |
PAA1 | 20±2.3a | 69±1.6a | 5.5±0.23abc | 2.9±0.06ab | 0.165±0.004a | |
PAA2 | 13±1.3bc | 63±3.1a | 5.4±0.23bc | 2.6±0.11b | 0.154±0.004ab | |
PAA4 | 7±1.4de | 69±1.2a | 5.1±0.04cd | 3.0±0.14a | 0.175±0.008a | |
PAA8 | 7±0.5de | 67±4.0a | 5.1±0.10cd | 2.7±0.11ab | 0.173±0.006a | |
PAS1 | 17±2.4ab | 72±1.0a | 5.9±0.27ab | 2.8±0.13ab | 0.165±0.006a | |
PAS5 | 11±1.7cd | 66±1.7a | 6.0±0.18a | 3.0±0.05a | 0.169±0.003a | |
PAS10 | 9±0.6de | 62±4.8b | 5.7±0.12ab | 2.9±0.13ab | 0.141±0.011b | |
PAS20 | 5±0.9e | 50±5.2c | 5.8±0.14ab | 2.9±0.12ab | 0.140±0.005b | |
1.50 | CK2 | 0±0.0c | 30±4.0cd | 6.0±0.18cd | 1.5±0.03c | 0.111±0.004abc |
PAA1 | 3±0.4a | 34±2.3bc | 6.5±0.10abc | 1.7±.011bc | 0.118±0.007ab | |
PAA2 | 2±0.6b | 25±0.8d | 6.9±0.22a | 1.5±0.07c | 0.100±0.003bc | |
PAA4 | 1±0.4bc | 46±4.8a | 5.9±0.20cd | 2.0±0.04a | 0.130±0.005a | |
PAA8 | 0±0.0c | 43±2.3ab | 5.8±0.23d | 1.7±0.15bc | 0.111±0.009abc | |
PAS1 | 3±0.8a | 42±3.2ab | 6.5±0.24abc | 1.8±0.07ab | 0.111±0.003abc | |
PAS5 | 1±0.3bc | 32±3.1cd | 6.7±0.16ab | 1.7±0.08bc | 0.118±0.010ab | |
PAS10 | 0±0.3c | 28±2.2cd | 6.3±0.29bcd | 1.7±0.11bc | 0.096±0.009c | |
PAS20 | 0±0.0c | 15±0.5e | 6.1±0.15bcd | 1.5±0.03c | 0.094±0.001c |
表2 不同含量AsA或SA对紫花苜蓿丸衣种子发芽的影响
Table 2 Effects of different contents of AsA or SA on germination in alfalfa pelleted seeds
NaCl浓度 NaCl concentration (%) | 处理 Treatment | 发芽势 Germination potential (%) | 发芽率 Germination percentage (%) | 平均发芽时间 Mean germination time (d) | 种苗长 Seedling length (cm) | 种苗重 Seedling weight (g·10 plant-1) |
---|---|---|---|---|---|---|
0 | CK2 | 83±2.3b | 92±1.5ab | 2.4±0.06a | 7.7±0.06a | 0.278±0.004ab |
PAA1 | 92±0.9a | 94±0.5ab | 2.2±0.03ab | 7.8±0.20a | 0.264±0.013b | |
PAA2 | 92±1.2a | 95±1.2a | 2.2±0.05ab | 7.5±0.25ab | 0.277±0.015ab | |
PAA4 | 85±0.9b | 92±0.9ab | 2.4±0.05a | 7.7±0.13a | 0.299±0.004a | |
PAA8 | 90±0.9a | 95±0.9a | 2.3±0.02ab | 7.3±0.12ab | 0.275±0.005ab | |
PAS1 | 92±1.8a | 93±1.7ab | 2.1±0.03b | 7.3±0.34ab | 0.267±0.007b | |
PAS5 | 93±0.8a | 95±0.4a | 2.1±0.05b | 7.1±0.21b | 0.262±0.015b | |
PAS10 | 90±0.5a | 91±0.6b | 2.2±0.00ab | 7.8±0.09a | 0.268±0.010b | |
PAS20 | 91±0.3a | 93±0.4ab | 2.1±0.03b | 7.5±0.21ab | 0.251±0.002b | |
1.25 | CK2 | 8±0.9de | 66±6.0a | 4.7±0.08d | 2.7±0.06ab | 0.166±0.009a |
PAA1 | 20±2.3a | 69±1.6a | 5.5±0.23abc | 2.9±0.06ab | 0.165±0.004a | |
PAA2 | 13±1.3bc | 63±3.1a | 5.4±0.23bc | 2.6±0.11b | 0.154±0.004ab | |
PAA4 | 7±1.4de | 69±1.2a | 5.1±0.04cd | 3.0±0.14a | 0.175±0.008a | |
PAA8 | 7±0.5de | 67±4.0a | 5.1±0.10cd | 2.7±0.11ab | 0.173±0.006a | |
PAS1 | 17±2.4ab | 72±1.0a | 5.9±0.27ab | 2.8±0.13ab | 0.165±0.006a | |
PAS5 | 11±1.7cd | 66±1.7a | 6.0±0.18a | 3.0±0.05a | 0.169±0.003a | |
PAS10 | 9±0.6de | 62±4.8b | 5.7±0.12ab | 2.9±0.13ab | 0.141±0.011b | |
PAS20 | 5±0.9e | 50±5.2c | 5.8±0.14ab | 2.9±0.12ab | 0.140±0.005b | |
1.50 | CK2 | 0±0.0c | 30±4.0cd | 6.0±0.18cd | 1.5±0.03c | 0.111±0.004abc |
PAA1 | 3±0.4a | 34±2.3bc | 6.5±0.10abc | 1.7±.011bc | 0.118±0.007ab | |
PAA2 | 2±0.6b | 25±0.8d | 6.9±0.22a | 1.5±0.07c | 0.100±0.003bc | |
PAA4 | 1±0.4bc | 46±4.8a | 5.9±0.20cd | 2.0±0.04a | 0.130±0.005a | |
PAA8 | 0±0.0c | 43±2.3ab | 5.8±0.23d | 1.7±0.15bc | 0.111±0.009abc | |
PAS1 | 3±0.8a | 42±3.2ab | 6.5±0.24abc | 1.8±0.07ab | 0.111±0.003abc | |
PAS5 | 1±0.3bc | 32±3.1cd | 6.7±0.16ab | 1.7±0.08bc | 0.118±0.010ab | |
PAS10 | 0±0.3c | 28±2.2cd | 6.3±0.29bcd | 1.7±0.11bc | 0.096±0.009c | |
PAS20 | 0±0.0c | 15±0.5e | 6.1±0.15bcd | 1.5±0.03c | 0.094±0.001c |
变异 Variation | 发芽势 Germination potential | 发芽率 Germination percentage | 平均发芽时间 Mean germination time | 种苗长 Seedling length | 种苗重 Seedling weight |
---|---|---|---|---|---|
NaCl | ** | ** | ** | ** | ** |
AsA | ** | ** | ** | ** | ** |
SA | ** | ** | ** | NS | ** |
NaCl×AsA | ** | ** | ** | NS | * |
NaCl×SA | ** | ** | ** | ** | NS |
表3 NaCl和丸衣对紫花苜蓿种子发芽影响方差分析
Table 3 Analysis of variance of NaCl and pelleting on germination characters in alfalfa seed
变异 Variation | 发芽势 Germination potential | 发芽率 Germination percentage | 平均发芽时间 Mean germination time | 种苗长 Seedling length | 种苗重 Seedling weight |
---|---|---|---|---|---|
NaCl | ** | ** | ** | ** | ** |
AsA | ** | ** | ** | ** | ** |
SA | ** | ** | ** | NS | ** |
NaCl×AsA | ** | ** | ** | NS | * |
NaCl×SA | ** | ** | ** | ** | NS |
1 | Yang Q C. Alfalfa production and management guide. Beijing: China Forestry Press, 2003. |
杨青川. 苜蓿生产与管理指南. 北京: 中国林业出版社, 2003. | |
2 | Sun Q Z, Gui R, Na R S. Superiority and countermeasure to developing alfalfa seed industry in the northwest of China. Pratacultural Science, 2000, 17(2): 65-69. |
孙启忠, 桂荣, 那日苏. 我国西北地区苜蓿种子产业化发展优势与对策. 草业科学, 2000, 17(2): 65-69. | |
3 | Wang C Z, Tian W, Yang Y X. Introducing research on ten alfalfa varieties home and abroad. Journal of Northwest Agriculture and Forest University (Natural Science Edition), 2004, 32(3): 28-32. |
王成章, 田玮, 杨雨鑫. 国内外种紫花苜蓿引种试验研究. 西北农林科技大学学报(自然科学版), 2004, 32(3): 28-32. | |
4 | Parihar P, Singh S, Singh R, et al. Effect of salinity stress on plants and its tolerance strategies: A review. Environmental Science and Pollution Research International, 2015, 22: 4056-4075. |
5 | Khodarahmpour Z, Ifar M, Motamedi M. Effects of NaCl salinity on maize (Zea mays L.) at germination and early seedling stage. African Journal of Biotechnology, 2012, 11: 298-304. |
6 | Barbagallo A, Nicola A D, Missikoff M. The influence of salt stress on seed germination, growth and yield of canola cultivars. Notulae Botanicae Horti Agrobotanici Cluj-Napoca, 2010, 38: 128-133. |
7 | Gao Z W. Research on the salt-alkali resistance mechanism of alfalfa and oat. Changchun: Northeast Normal University, 2011. |
高占武. 紫花苜蓿和燕麦抗盐碱机制研究. 长春: 东北师范大学, 2011. | |
8 | Guo X, Guo Y F, Huang S Y, et al. Effects of drought and salt stress on seed germination characteristics of 14 Medicago sativa varieties. Pratacultural Science, 2019, 36(9): 2292-2303. |
郭湘, 郭一帆, 黄思怡, 等. 干旱和盐胁迫对14个紫花苜蓿品种种子萌发特性的影响. 草业科学, 2019, 36(9): 2292-2303. | |
9 | Kou J T. Physiological responses of Medicago sativa seed germination induced by exogenous 2, 4-epibrassinolide under salt stress. Grassland and Turf, 2020, 40(5): 8-14. |
寇江涛. 盐胁迫下紫花苜蓿种子萌发对外源2,4-表油菜素内酯诱导的生理响应. 草原与草坪, 2020, 40(5): 8-14. | |
10 | Lu Y, Ji G, Wang X G, et al. Alfalfa seed coating formula with diethyl aminoethyl hexanoate, fulvic acid, and microelement fertilizer. Pratacultural Science, 2019, 36(8): 2168-2176. |
陆艳, 吉高, 王显国, 等. 以胺鲜酯、黄腐酸、微肥为主要成分的苜蓿种衣剂配方的研究. 草业科学, 2019, 36(8): 2168-2176. | |
11 | Lu G X, Li X L, Qiao Y M, et al. Effects of seed pelleting on seed germination and physiological indexes of forages. Acta Agrestia Sinica, 2011, 19(3): 451-457. |
芦光新, 李希来, 乔有明, 等. 丸衣处理对几种牧草种子萌发及生理特性的影响. 草地学报, 2011, 19(3): 451-457. | |
12 | Su Y X, Wang S J, Li C G. The invention discloses a recipe for saline-alkali soil greening grass seed pelleting. China Patent, 103444308, 2013. |
苏亚勋, 王素君, 李春光. 一种盐碱土绿化草种丸衣的配方. 中国专利, 103444308, 2013. | |
13 | Ahmad P, Jaleel C A, Salem M A, et al. Roles of enzymatic and nonenzymatic antioxidants in plants during abiotic stress. Critical Reviews in Biotechnology, 2010, 30: 161-175. |
14 | Davey M W, Montagu M V, Inze D, et al. Plant L-ascorbic acid: Chemistry, function, metabolism, biovailability and effects of processing. Journal of the Science of Food and Agriculture, 2000, 80(7): 825-860. |
15 | Athar H U R, Khan A, Ashraf M. Exogenously applied ascorbic acid alleviates salt-induced oxidative stress in wheat. Environmental and Experimental Botany, 2008, 63: 224-231. |
16 | Li Y, Wang M Y, Mao P S. Effects of antioxidants on the physiological characteristics of Leymus chinensis seed with different deteriorated levels. Acta Agrestia Sinica, 2013, 21(5): 945-949. |
李颖, 王明亚, 毛培胜. 抗氧化剂处理对不同劣变程度的羊草种子生理特性的影响. 草地学报, 2013, 21(5): 945-949. | |
17 | Cindy F, Mario S, Eliane A M, et al. Salicylic acid and its location in response to biotic and abiotic stress. FEBS Letters, 2011, 585(12): 1847-1852. |
18 | Wang Y P, Dong W, Zhang X, et al. Effects of salicylic acid on seed germination and physiological characters of cauliflower seedlings under salt stress. Acta Prataculturae Sinica, 2012, 21(1): 213-219. |
王玉萍, 董雯, 张鑫, 等. 水杨酸对盐胁迫下花椰菜种子萌发及幼苗生理特性的影响. 草业学报, 2012, 21(1): 213-219. | |
19 | Wang L, Li S. Salicylic acid-induced heat or cold tolerance in relation to Ca2+ homeostasis and antioxidant systems in young grape plants. Plant Science, 2006, 70(4): 685-694. |
20 | Zhang Q. Comparative study on the addition of antioxidant AsA and GSH in herbage seed coating. Beijng: China Agricultural University, 2017. |
张强. 牧草种子包衣中添加抗氧化剂AsA和GSH的比较研究. 北京: 中国农业大学, 2017. | |
21 | Gill P K, Sharma A D, Singh P, et al. Changes in germination, growth and soluble sugar contents of Sorghum bicolor (L.) Moench seeds under various abiotic stresses. Plant Growth Regulation, 2003, 40: 157-162. |
22 | Chang C, Wang B, Shi L, et al. Alleviation of salt stress-induced inhibition of seed germination in cucumber (Cucumis sativus L.) by ethylene and glutamate. Plant Physiology, 2010, 167: 1152-1156. |
23 | Akbarimoghaddam H, Galavi M, Ghanbari A, et al. Salinity effects on seed germination and seedling growth of bread wheat cultivars. Trakia Journal of Sciences, 2011, 9: 43-50. |
24 | Xu S, Hu B, He Z, et al. Enhancement of salinity tolerance during rice seed germination by presoaking with hemoglobin. International Journal of Molecular Sciences, 2011, 12: 2488-2501. |
25 | Patterson B D, Macrae E A, Ferguson I B. Estimation of hydrogen peroxide in plant extracts using titanium (Ⅳ). Analytical Biochemistry, 1984, 139: 487-492. |
26 | Burguieres E, McCue P, Kwon Y I, et al. Effect of vitamin C and folic acid on seed vigour response and phenolic-linked antioxidant activity. Bioresource Technology, 2007, 98(7): 1393-1404. |
27 | Dong Q L, Xia F S, Li X Y, et al. Effect of ascorbic acid priming on the vigor of oat seeds under NaCl stress. Acta Prataculturae Sinica, 2018, 27(4): 202-208. |
董秋丽, 夏方山, 李晓禹, 等. 抗坏血酸引发对NaCl胁迫燕麦种子活力的影响. 草业学报, 2018, 27(4): 202-208. | |
28 | Tang R, Wu Y. Effects of wheat seedlings’ growth by soaking seeds with different vitamins on different salinity. Seed, 2007, 26(5): 44-47. |
唐瑞, 吴瑜. 维生素浸种对盐胁迫下小麦发芽及幼苗生长的影响. 种子, 2007, 26(5): 44-47. | |
29 | Shi Y C, Yang Y Y, Xue R L. Research advance of biological function of ascorbic acid in plants. Plant Physiology Journal, 2015, 51(1): 1-8. |
30 | Wang Y Z, Ren W, Xu A K, et al. Physiological responses to exogenous SA and ABA in alfalfa varieties under chilling stress. Acta Agriculture Boreali-Sinica, 2012, 27(5): 144-149. |
王英哲, 任伟, 徐安凯, 等. 低温胁迫下紫花苜蓿对外源SA和ABA的生理响应. 华北农学报, 2012, 27(5): 144-149. | |
31 | Zhou W H, Shi S L, Kou J T. Exogenous salicylic acid on alleviating salt stress in alfalfa seedlings. Acta Prataculturae Sinica, 2012, 21(3): 171-176. |
周万海, 师尚礼, 寇江涛. 外源水杨酸对苜蓿幼苗盐胁迫的缓解效应. 草业学报, 2012, 21(3): 171-176. | |
32 | Liu Y L, Mi F G, Te M, et al. Relationship between alfalfa salicylic acid content and its thrips resistance. Acta Botanica Boreali-Occidentalia Sinica, 2011, 31(3): 588-594. |
刘玉良, 米福贵, 特木尔布和, 等. 苜蓿叶片水杨酸含量与其蓟马抗性的关系. 西北植物学报, 2011, 31(3): 588-594. | |
33 | Dong J, Xing J C, Wang M W, et al. Effects of three exogenous substances on seed germination of purslane under NaCl stress. Jiangsu Agricultural Sciences, 2017, 45(14): 103-106. |
董静, 邢锦城, 王茂文, 等. 3种外源物质浸种对NaCl胁迫下马齿苋种子萌发的影响. 江苏农业科学, 2017, 45(14): 103-106. | |
34 | Yu L L, Cao R Z, Zhang X F, et al. Effect of exogenous salicylic acid on seed germination and seedling physiological characteristics of Silybum marianum under salt stress. Molecular Plant Breeding, 2019, 17(23): 7909-7917. |
于丽丽, 曹瑞珍, 张学富, 等. 外源水杨酸对盐胁迫下水飞蓟种子萌发及幼苗生理特性的影响. 分子植物育种, 2019, 17(23): 7909-7917. | |
35 | Li F Z, Xin H H, Zhou G W, et al. Effects of the seed film coating salicylic acid on the chilling tolerance of cotton seedlings. Cotton Science, 2015, 27(6): 589-594. |
李防洲, 辛慧慧, 周广威, 等. 水杨酸包衣剂包衣棉种对棉花幼苗抗寒性的影响. 棉花学报, 2015, 27(6): 589-594. | |
36 | Yang X J, Zhang H W. Protection of salicylic acid on Neo-Taraxacum siphonanthum in salt stress. Bulletin of Botanical Research, 2006, 26(2): 2222-2224. |
杨晓杰, 张洪伟. 水杨酸对盐胁迫下管花蒲公英的保护作用. 植物研究, 2006, 26(2): 2222-2224. | |
37 | Jiang X M, Bo X Y, Zhao J P, et al. Effect of salicylic acid on seed germination and seedling growth of Atriplex triangularis under salt stress. China Seed Industry, 2007(3): 39-40. |
蒋小满, 柏新富, 赵建萍, 等. 水杨酸对盐胁迫下三角滨藜种子萌发及幼苗生长的影响. 中国种业, 2007(3): 39-40. |
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