Acta Prataculturae Sinica ›› 2024, Vol. 33 ›› Issue (9): 51-59.DOI: 10.11686/cyxb2023420
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Chun-jiao MI(), Liu HONG, Wen MA, Pei-sheng MAO()
Received:
2023-11-14
Revised:
2023-12-22
Online:
2024-09-20
Published:
2024-06-20
Contact:
Pei-sheng MAO
Chun-jiao MI, Liu HONG, Wen MA, Pei-sheng MAO. Effects of glutathione priming on the mitochondrial antioxidant characteristics of aged oat seed embryos[J]. Acta Prataculturae Sinica, 2024, 33(9): 51-59.
1 | Murthy U M N, Kumar P P, Sun W Q. Mechanisms of seed ageing under different storage conditions for Vigna radiata (L.) Wilczek: lipid peroxidation, sugar hydrolysis, Maillard reactions and their relationship to glass state transition. Journal of Experimental Botany, 2003, 54(384): 1057-1067. |
2 | Xia F S, Chen L L, Sun Y, et al. Relationships between ultrastructure of embryo cells and biochemical variations during ageing of oat (Avena sativa L.) seeds with different moisture content. Acta Physiologiae Plantarum, 2015, 37(4): 89. |
3 | McDonald M B. Seed deterioration: physiology, repair and assessment. Seed Science and Technology, 1999, 27(1): 177-237. |
4 | Cheng H, Ma X Q, Jia S G, et al. Transcriptomic analysis reveals the changes of energy production and AsA-GSH cycle in oat embryos during seed ageing. Plant Physiology and Biochemistry, 2020, 153: 40-52. |
5 | Gill S S, Anjum N A, Hasanuzzaman M, et al. Glutathione and glutathione reductase: a boon in disguise for plant abiotic stress defense operations. Plant Physiology and Biochemistry, 2013, 70(1): 204-212. |
6 | Shan C J, Zhang S L, Ou X Q. The roles of H2S and H2O2 in regulating AsA-GSH cycle in the leaves of wheat seedlings under drought stress. Protoplasma, 2018, 255(4): 1257-1262. |
7 | Jia T, Zhao G, Peng L X, et al. Effect of PEG-6000 priming on seed germination and seedling growth of tartary buckwheat. Journal of Chengdu University (Natural Science Edition), 2012, 31(1): 1-3. |
贾婷, 赵钢, 彭镰心, 等. PEG-6000引发对苦荞种子萌发及幼苗生长的影响. 成都大学学报(自然科学版), 2012, 31(1): 1-3. | |
8 | Jisha K C, Vijayakumari K, Puthur J T. Seed priming for abiotic stress tolerance: an overview. Acta Physiologiae Plantarum, 2013, 35(5): 1381-1396. |
9 | Wang W Q. Mechanisms underlying the effect of seed priming on the establishment of direct-seeded early season rice under chilling stress. Wuhan: Huazhong Agricultural University, 2020. |
王慰亲. 种子引发促进直播早稻低温胁迫下萌发出苗的机理研究. 武汉: 华中农业大学, 2020. | |
10 | Rouhier N, Cerveau D, Couturier J, et al. Involvement of thiol-based mechanisms in plant development. Biochimica et Biophysica Acta-General Subjects, 2015, 1850(8): 1479-1496. |
11 | Ding S H, Lei M, Lu Q T, et al. Enhanced sensitivity and characterization of photosystem Ⅱ in transgenic tobacco plants with decreased chloroplast glutathione reductase under chilling stress. Biochimica et Biophysica Acta-Bioenergetics, 2012, 1817(11): 1979-1991. |
12 | Zhou Y, Liu H Y, Wang S, et al. Effects of exogenous GSH on tomato seedlings growth and physiological indexes of resistance stress under salt stress. Acta Botanica Boreali-Occidentalia Sinica, 2016, 36(3): 515-520. |
周艳, 刘慧英, 王松, 等. 外源GSH对盐胁迫下番茄幼苗生长及抗逆生理指标的影响. 西北植物学报, 2016, 36(3): 515-520. | |
13 | Niu X G, Song L C, Xiao Y N, et al. Drought-tolerant plant growth-promoting rhizobacteria associated with foxtail millet in a semi-arid agroecosystem and their potential in alleviating drought stress. Frontiers in Microbiology, 2018, 8(1): 2580. |
14 | Nakamura S, Wongkaew A, Nakai Y, et al. Foliar-applied glutathione activates zinc transport from roots to shoots in oilseed rape. Plant Science, 2019, 283: 424-434. |
15 | Yan H F, Mao C L, Zhu Y Q, et al. Exogenous glutathione pre-treatment improves germination and resistance Elymus sibiricus seeds subjected to different ageing conditions. Seed Science and Technology, 2017, 45(3): 607-621. |
16 | Sun M, Wang S Q, Aierken·Dawuti, et al. Effects of antioxidant priming on germination and seedling growth of aged seeds of smooth bromegrass. Acta Prataculturae Sinica, 2019, 28(11): 105-113. |
孙铭, 王思琪, 艾尔肯·达吾提, 等. 抗氧化剂引发对无芒雀麦老化种子发芽及幼苗生长的影响. 草业学报, 2019, 28(11): 105-113. | |
17 | Kaya C, Ugular F, Ashraf M, et al. Nitric oxide and hydrogen sulfide work together to improve tolerance to salinity stress in wheat plants by upraising the AsA-GSH cycle. Plant Physiology and Biochemistry, 2023, 194: 651-663. |
18 | Li J, Lei B, Zhai M H, et al. Study on the response mechanism of the AsA-GSH cycle in cotton seedling under low temperature stress. Journal of Nuclear Agricultural Sciences, 2021, 35(1): 221-228. |
李进, 雷斌, 翟梦华, 等. 棉花幼苗AsA-GSH循环对低温胁迫的响应机制研究. 核农学报, 2021, 35(1): 221-228. | |
19 | Chen F, Yang S L, Zhang L, et al. Effects of exogenous methyl jasmonate on ascorbate-glutathione cycle in Zea mays seedlings under salt stress. Bulletin of Biology, 2021, 56(11): 44-48. |
陈芳, 杨双龙, 张莉, 等. 外源茉莉酸甲酯对盐胁迫下玉米幼苗AsA-GSH循环的影响. 生物学通报, 2021, 56(11): 44-48. | |
20 | Wang Z Y, Luo J K. Exploring the nutritional function and special industry development of oats in Huining county, Gansu province. China Seed Industry, 2023(7): 11-15, 19. |
王泽宇, 罗健科. 甘肃会宁县燕麦营养功能及特色产业发展探索. 中国种业, 2023(7): 11-15, 19. | |
21 | Welch R W. Oats: chemistry and technology. Saint Paul: American Association of Cereal Chemists, 2011. |
22 | Qi X Y, Cao S Q, Liu H S, et al. Studies on the lipid composition of different oat varieties and its relationship with the other nutrients. Journal of Chinese Institute of Food Science and Technology, 2014, 14(5): 63-71. |
戚向阳, 曹少谦, 刘合生, 等. 不同品种燕麦的油脂组成及与其它营养物质相关性研究. 中国食品学报, 2014, 14(5): 63-71. | |
23 | Lehtinen P, Kiiliainen K, Lehtomaki I, et al. Effect of heat treatment on lipid stability in processed oats. Journal of Cereal Science, 2003, 37(2): 215-221. |
24 | Liu B, Song Y M, Sun M, et al. Physiological responses of mitochondrial AsA-GSH cycle to imbibition of deteriorated oat seeds. Acta Agrestia Sinica, 2021, 29(2): 211-219. |
刘备, 宋玉梅, 孙铭, 等. 燕麦劣变种子吸胀过程中线粒体AsA-GSH循环的生理响应. 草地学报, 2021, 29(2): 211-219. | |
25 | Delouche J C, Baskin C C. Accelerated aging techniques for predicting the relative storability of seed lots. Seed Science and Technology, 1973, 1(2): 427-452. |
26 | Mao C L, Zhu Y Q, Cheng H, et al. Nitric oxide regulates seedling growth and mitochondrial responses in aged oat seeds. International Journal of Molecular Sciences, 2018, 19(4): 1052. |
27 | Nakano Y, Asada K. Hydrogen peroxide is scavenged by ascorbate-specific peroxidase in spinach chloroplasts. Plant and Cell Physiology, 1981, 22(5): 867-880. |
28 | Cakmak I, Marschner H. Magnesium deficiency and high light intensity enhance activities of superoxide dismutase, ascorbate peroxidase, and glutathione reductase in bean leaves. Plant Physiology, 1992, 98(4): 1222-1227. |
29 | Kar M, Mishra D. Catalase, peroxidase, and polyphenoloxidase activities during rice leaf senescence. Plant Physiology, 1976, 57(2): 315-319. |
30 | Wang Z, Zhang Y X, Huang Z B, et al. Antioxidative response of metal-accumulator and non-accumulator plants under cadmium stress. Plant and Soil, 2008, 310(1/2): 137-149. |
31 | Arrigoni O, Dipierro S, Borraccino G. Ascorbate free radical reductase, a key enzyme of the ascorbic acid system. FEBS Letters, 1981, 125(2): 242-244. |
32 | Madamanchi N R, Alscher R G. Metabolic bases for differences in sensitivity of two pea cultivars to sulfur dioxide. Plant Physiology, 1991, 97(1): 88-93. |
33 | Gomes M P, Cruz F V D, Bicalho E M, et al. Effects of glyphosate acid and the glyphosate-commercial formulation (Roundup) on Dimorphandra wilsonii seed germination: Interference of seed respiratory metabolism. Environmental Pollution, 2017, 220: 452-459. |
34 | Rajjou L, Debeaujon I. Seed longevity: survival and maintenance of high germination ability of dry seeds. Comptes Rendus Biologies, 2008, 331(10): 796-805. |
35 | McDonald A E. Alternative oxidase: an inter-kingdom perspective on the function and regulation of this broadly distributed ‘cyanide-resistant’ terminal oxidase. Functional Plant Biology, 2008, 35(7): 535-552. |
36 | Xia F S, Cheng H, Chen L L, et al. Influence of exogenous ascorbic acid and glutathione priming on mitochondrial structural and functional systems to alleviate aging damage in oat seeds. BMC Plant Biology, 2020, 20(1): 104. |
37 | Wang W Q, Xu D Y, Sui Y P, et al. A multiomic study uncovers a bZIP23-PER1A-mediated detoxification pathway to enhance seed vigor in rice. Proceedings of the National Academy of Sciences, 2022, 119(9): e2026355119. |
38 | Xin X, Tian Q, Yin G K, et al. Reduced mitochondrial and ascorbate-glutathione activity after artificial ageing in soybean seed. Journal of Plant Physiology, 2014, 171(2): 140-147. |
39 | Sun S J, Mao P S, Dou L R, et al. Studies on the regulation of seed aging by reactive oxygen species and telomeres. Acta Prataculturae Sinica, 2023, 32(8): 202-213. |
孙守江, 毛培胜, 豆丽茹, 等. 活性氧及染色体端粒调控种子老化研究. 草业学报, 2023, 32(8): 202-213. | |
40 | Zhang R D, Liang X H, Liu J, et al. Effects of seed priming on germination and physiological characteristics of sorghum seeds under drought stress. Crops, 2022, 138(6): 234-240. |
张瑞栋, 梁晓红, 刘静, 等. 种子引发对干旱胁迫下高粱种子发芽及生理特性的影响. 作物杂志, 2022, 138(6): 234-240. | |
41 | Paparella S, Araujo S S, Rossi G, et al. Seed priming: state of the art and new perspectives. Plant Cell Reports, 2015, 34(8): 1281-1293. |
42 | Zeng F R, Qiu B Y, Wu X J, et al. Glutathione-mediated alleviation of chromium toxicity in rice plants. Biological Trace Element Research, 2012, 148(2): 255-263. |
43 | Sun S J, Tang Y H, Ma W, et al. Response of the mitochondrial AsA-GSH cycle during alfalfa seed germination under low temperature stress. Acta Prataculturae Sinica, 2023, 32(3): 152-162. |
孙守江, 唐艺涵, 马馼, 等. 紫花苜蓿种子吸胀期胚根线粒体AsA-GSH循环对低温胁迫的响应. 草业学报, 2023, 32(3): 152-162. |
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