首页 分享 花生种子休眠解除过程中相关基因的表达分析

花生种子休眠解除过程中相关基因的表达分析

来源:花匠小妙招 时间:2024-12-22 09:46
[1]Bewley J D, Bradford K J, Hilhorst H W M, Nonogaki H. Seed Physiology of Development, Germination and Dormancy (3rd edn). London: Springer, 2013, pp 247-295[本文引用:1][2]曹雅君, 江玲, 罗林广, 翟虎渠, 志村英二, 杨世湖, 万建民. 水稻品种休眠特性的研究. 南京农业大学学报, 2001, 24(2): 1-5
Cao Y J, Jiang L, Luo LG, Zhai H Q, Shimura E, Yang S H, Wan J M. A study on seed dormancy in rice (Oryza sativa L. ). J Nanjing Agric Univ, 2001, 24(2): 1-5 (in Chinese with English abstract)[本文引用:1][CJCR: 0.916][3]徐恒恒, 黎妮, 刘树君, 王伟青, 王伟平, 张红, 程红焱, 宋松泉. 种子萌发及其调控的研究进展. 作物学报, 2014, 40: 1141-1156
Xu H H, Li N, Liu S J, Wang W Q, Wang W P, Zhang H, Cheng H Y, Song S Q. Research progress in seed germination and its control. Acta Agron Sin, 2014, 40: 1141-1156 (in Chinese with English abstract)[本文引用:1][CJCR: 1.667][4]Erwann A, Julien S, Francoise C, Loic R, Marion-poll A. ABA crosstalk with ethylene and nitric oxide in seed dormancy and germination. Plant Cell Biol, 2013, 4: 1-19[本文引用:1][5]Ali-Rachedi S, Bouinot D, Wagner M H, Bonnet M, Sotta B, Grappin P, Jullien M. Changes in endogenous abscisic acid levels during dormancy release and maintenance of mature seeds: studies with the Cape Verde Island s ecotype, the dormant model of Arabidopsis thaliana. Planta, 2004, 219: 479-488[本文引用:1][JCR: 3.347][6]Cadman C S, Toorop P E, Hilhorst H W, Finch-Savage W E. Gene expression profiles of Arabidopsis Cvi seeds during dormancy cycling indicate a common underlying dormancy control mechanism. Plant J, 2006, 46: 805-822[本文引用:1][JCR: 6.582][7]Nambara E, Okamoto M, Tatematsu K, Yano R, Seo M, Kamiya Y. Abscisic acid and the control of seed dormancy and germination. Seed Sci Res, 2010, 20: 55-67[本文引用:1][JCR: 1.931][8]Matakiadis T, Alboresi A, Jikumaru Y, Tatematsu K, Pichon O, Renou J P, Kamiya Y J, Nambar E, Truong H N. The Arabidopsis abscisic acid catabolic gene CYP707A2 plays a key role in nitrate control of seed dormancy. Plant Physiol, 2009, 149: 949-960[本文引用:2][JCR: 6.555][9]Okamoto M, Kuwahara A, Seo M, Kushiro T, Asami T, Hirai N, Kamiya Y, Koshiba T, Nambara E. CYP707A1 and CYP707A2, which encode abscisic acid 8’-hydroxylases, are indispensable for proper control of seed dormancy and germination in Arabidopsis. Plant Physiol, 2006, 141: 97-107[本文引用:2][JCR: 6.555][10]Penfield S, Li Y, Gilday A D, Graham S, Graham I A. Arabidopsis ABA INSENSITIVE4 regulates lipid mobilization in the embryo and reveals repression of seed germination by the endosperm. Plant Cell, 2006, 18: 1887-1899[本文引用:1][JCR: 9.251][11]Matilla A J. Ethylene in seed formation and germination. Seed Sci Res, 2000, 10: 111-126[本文引用:1][JCR: 1.931][12]Siriwitayawan G, Geneve R L, Downie A B. Seed germination of ethylene perception mutants of tomato and Arabidopsis. Seed Sci Res, 2003, 13: 303-314[本文引用:2][JCR: 1.931][13]Chiwocha S D S, Cutler A J, Abrams S R, Ambrose S J, Yang J, Ross A R S, Kermode A R The etr1-2 mutation in Arabidopsis thaliana affects the abscisic acid, auxin, cytokinin and gibberellin metabolic pathways during maintenance of seed dormancy, moist-chilling and germination. Plant J, 2005, 42: 35-48[本文引用:1][JCR: 6.582][14]Karssen C M, Zagorski S, Kepczynski J, Groot S P C. Key role for endogenous gibberellins in the control of seed germination. Ann Bot (London), 1989, 63: 71-80[本文引用:2][JCR: 3.449][15]Koornneef M, Karssen C M. Seed dormancy and germination. In: Meyerowitz E M, Sommerville C R, eds. Arabidopsis. New York: Cold Spring Harbor Laboratory, 1994. pp 313-334[本文引用:1][16]禹山林.

中国花生遗传育种学. 上海:

上海科学技术出版社, 2011
Yu S L. Genetics and Breeding of China peanut.

Shanghai:

Shanghai Science and Technology Press, 2011 (in Chinese)[本文引用:1][17]周桂元, 梁炫强. 花生种子休眠性的研究进展. 江西农业学报, 2011, 23(11): 61-63
Zhou G Y, Liang X Q. Research advance in seed dormancy of peanut. Acta Agric Jiangxi, 2011, 23: 61-63 (in Chinese with English abstract)[本文引用:1][CJCR: 0.9866][18]Kumarl S S, Patel S A. Seed dormancy in groundnut (Arachis hypogaea L. ): II. Estimation of gene effects in six crosses. Trop Agric (Trinidad), 1999, 76: 188-192[本文引用:1][19]Upadhyaya H D, Nigam S N. Inheritance of fresh seed dormancy in peanut. Crop Sci, 1999, 39: 98-101[本文引用:1][JCR: 1.513][20]胡晓辉, 苗华荣, 杨伟强, 张建成, 陈静. 花生种子休眠性的遗传分析及其影响因素的研究. 核农学报, 2013, 27: 1449-1455
Hu X H, Miao H R, Yang W Q, Zhang J C, Chen J. Genetic analysis and factors influencing peanut (Arachis hypogaea L. ) seed dormancy. J Nucl Agric Sci, 2013, 27: 1449-1455 (in Chinese with English abstract)[本文引用:1][CJCR: 1.237][21]Toole V K, Bailey W K, Toole E H. Factors influencing dormancy of peanut seeds. Plant Physiol, 1964, 39: 823-832[本文引用:1][JCR: 6.555][22]Ketring D L, Morgan P W. P hysiology of Oil Seeds I. Regulation of dormancy in Virginia-type peanut seed. Plant Physiol, 1970, 45: 268-273[本文引用:1][JCR: 6.555][23]Ketring D L, Morgan P W. Physiology of oil seeds: II. Dormancy release in Virginia-type peanut seeds by plant growth regulators. Plant Physiol, 1971, 47: 488-492[本文引用:1][JCR: 6.555][24]Ketring D L, Morgan P W. Ethylene as a component of the emanations from germinating peanut seeds and its effect on dormant Virginia-type seeds. Plant Physiol, 1969, 44: 326-330[本文引用:1][JCR: 6.555][25]Wang M L, Chen C Y, Pinnow D L, Barkley N A, Pittman R N, Lamb M, Pederson G C. Seed dormancy variability in the US peanut Mini-core collection. Res J Seed Sci, 2012, 5: 84-95[本文引用:1][26]Issa F, Danièl F, Jean-François R, Hodo-Abolo T, Mbaye-Ndoye S, Tahir D A, Ousmane N. Inheritance of fresh seed dormancy in Spanish-type peanut (Arachis hypogaea L. ): bias introduced by inadvertent selfed flowers as revealed by microsatellite markers control. Afr J Biotechnol, 2010, 9: 1905-1910[本文引用:1][JCR: 0.573][27]Asibuo J Y, Akromah R, Safo-Kantanka O, Adu-Dupaah H, Seth K O, Agyemen A. Inheritance of fresh seed dormancy in groundnut. Afr J Biotechnol, 2008, 7: 421-424[本文引用:1][JCR: 0.573][28]Sun T P, Gubler F. Molecular mechanism of gibberellin signaling in plants. Annu Rev Plant Biol, 2004, 55: 197-223[本文引用:2][JCR: 25.962][29]Yang S F, Hoffman N E. Ethylene biosynthesis and its regulation in higher plants. Annu Rev Plant Physiol Plant Mol Biol, 1984, 35: 155-189[本文引用:2][30]Lin Z, Zhong S, Grierson D. Recent advances in ethylene research. J Exp Bot, 2009, 60: 3311-3336[本文引用:2][JCR: 5.242][31]Gonzalez-Guzman M, Abia D, Salina J, Serrano R, Rodriguez P. Two new alleles of the abscisic aldehyde oxidase 3 gene reveal its role in abscisic acid biosynthesis in seeds. Plant Physiol, 2004, 135: 325-333[本文引用:1][JCR: 6.555][32]Kushiro T, Okamoto M, Nakabayashi K, Yamagishi K, Kitamura S, Asami T, Hirai N, Koshiba T, Kamiya Y, Nambara E. The Arabidopsis cytochrome P450 CYP707A encodes ABA 8’-hydroxylases: key enzymes in ABA catabolism. EMBO J, 2004, 23: 1647-1656[本文引用:1][JCR: 9.822][33]Chono M, Honda I, Shinoda S, Kushiro T, Kamiya Y, Nambara E, Kawakami N, Kaneko S, Watanabe Y. Field studies on the regulation of abscisic acid content and germinability during grain development of barley: molecular and chemical analysis of pre-harvest sprouting. J Exp Bot, 2006, 57: 2421-2434[本文引用:1][JCR: 5.242][34]Millar A A, Jacobsen J V, Ross J J, Helliwell C A, Poole A T, Scofield G, Reid J B, Gubler F. Seed dormancy and ABA metabolism in Arabidopsis and barley: the role of ABA 8’-hydroxylase. Plant J, 2006, 45: 942-954[本文引用:1][JCR: 6.582][35]Thompson A J, Jackson A C, Parker R A, Morpeth D R, Burbidge A, Taylor I B. Abscisic acid biosynthesis in tomato: regulation of zeaxanthin epoxidase and 9-cis-epoxycarotenoid dioxygenase mRNAs by light/dark cyeles, water stress and abscisic acid. Plant Mol Biol, 2000, 42: 833-845[本文引用:1][JCR: 3.518][36]White C N, Proebsting W M, Hedden P, White C N, Rivin C J. Gibberellins and seed development in maize: I. Evidence that gibberelllin/abscisic acid balance governs germination versus maturation pathways. Plant Physiol, 2000, 122: 1081-1088[本文引用:1][JCR: 6.555][37]Calvo A P, Nicola S C, Nicolas G, Rodriguez D. Evidence of a cross-talk regulation of a GA 20-oxidase (FsGA20ox1) by gibberellins and ethylene during the breaking of dormancy in Fagus sylvatica seeds. Physiol Plant, 2004, 120: 623-6301[本文引用:1][JCR: 6.555][38]Hermann K, Meinhard J, Dobrew P, Linkies A, Pesek B, Hess B, Machackova I, Fischer U, Leubner-Metzger G. 1-aminocyclopropane-1-carboxylic acid and abscisic acid during the germination of sugar beet (Beta vulgaris L. ): a comparative study of fruits and seeds. J Exp Bot, 2007, 58: 3047-3060[本文引用:2][JCR: 5.242][39]Leubner-Metzger G, Petruzzelli L, Waldvogel R, Vogeli-Lange R, Meins E. Ethylene-responsive element binding protein (EREBP) expression and the transcriptional regulation of class I beta-1, 3-glucanase during tobacco seed germination. Plant Mol Biol, 1998, 38: 785-795[本文引用:2][JCR: 3.518][40]Petruzzelli L, Coraggio L, Leubner-Metzger G. Ethylene promotes ethylene biosynthesis during pea seed germination by positive feedback regulation of 1-aminocyclo-propane-1-carboxylic acid oxidase. Planta, 2000, 211: 144-149[本文引用:2][JCR: 3.347][41]Linkies A, Müller K, Morris K, Tureckova V, Wenk M, Cadman C S C, Corbineau F, Stmad M, Lynn J R, Finch-Savage W E, Leubner-Metzger G. Ethylene interacts with abscisic acid to regulate endosperm rupture during germination: a comparative approach using Lepidium sativum and Arabidopsis thaliana. Plant Cell, 2009, 21: 3803-3822[本文引用:2][42]Petruzzelli L, Sturaro M, Mainieri D, Leubner-Metzger G. Calcium requirement for ethylene-dependent responses involving 1-aminocyclopropane-1-carboxylic acid oxidase in radical tissues of germinated pea seeds. Plant Cell Environ, 2003, 26: 661-671[本文引用:1][JCR: 5.135][43]Teale W D, Paponov I A, Palme K. Auxin in action: signalling transport and the control of plant growth and development. Nat Rev Mol Cell Biol, 2006, 7: 847-859[本文引用:1][44]Leyser O. Dynamic integration of auxin transport and signalling. Curr Biol, 2006, 16: 424-433[本文引用:1][JCR: 9.494][45]Quint M, Gray W M. Auxin signalling. Curr Opin Plant Biol, 2006, 9: 448-453[本文引用:1][JCR: 8.455][46]Liu X D, Zhang H, Zhao Y, Feng Z, Li Q, Yang H Q, Luan S, Li J, He Z H. Auxin controls seed dormancy through stimulation of abscisic acid signaling by inducing ARF-mediated ABI3 activation in Arabidopsis. Proc Natl Acd Sci USA, 2013, 110: 15485-15490[本文引用:1][47]Matilla A J, Matilla-Vazquez M A. Involvement of ethylene in seed physiology. Plant Sci, 2008, 175: 87-97[本文引用:1][JCR: 2.922][48]Ghassemian M, Nambara E, Cutler S, Kawaide H, Kamiya Y, McCourt P. Regulation of abscisic acid signaling by the ethylene response pathway in Arabidopsis. Plant Cell, 2000, 12: 1117-1126[本文引用:1][JCR: 9.251][49]Kende H, Van der Knaap E, Cho H T. Deepwater rice: a model plant to study stem elongation. Plant Physiol, 1998, 118: 1105-1110[本文引用:2][JCR: 6.555][50]Beaudoin N, Serizet C, Gosti F, Giraudat J. Interactions between abscisic acid and ethylene signaling cascades. Plant Cell, 2000, 12: 1103-1116[本文引用:1][JCR: 9.251][51]Wang Y, Liu C, Li K, Sun F, Hu H, Li X, Zhao Y, Han C, Zhang W, Duan Y, Liu M. Arabidopsis EIN2 modulates stress response through abscisic acid response pathway. Plant Mol Biol, 2007, 64: 633-644[本文引用:1][JCR: 3.518][52]Gazzarrini S, McCourt P. Genetic interactions between ABA, ethylene and sugar signaling pathways. Curr Opin Plant Biol, 2001, 4: 387-391[本文引用:1][JCR: 8.455][53]Kucera B, Cohn M A, Leubner-Metzger G. Plant hormone interactions during seed dormancy release and germination. Seed Sci Res, 2005, 15: 281-307[本文引用:1][JCR: 1.931][54]Liu S, Lv Y, Wan X R, Li LM, Hu B, Li L. Cloning and expression analysis of cDNAs encoding ABA 8’-hydroxylase in peanut plants in response to osmotic stress. PLoS One, 2014, 5: e97025[本文引用:1][JCR: 3.73]

相关知识

青花菜衰老过程中叶绿素降解相关基因的表达分析
花生种子休眠有什么特点?
杜鹃花种子休眠打破技术的研究
不同植物生长调节剂打破多花黄精种子休眠试验
牡丹PsWRKY基因的克隆和表达特性分析
大豆种子休眠是大豆驯化过程中的一个关键性状
花生响应青枯菌侵染的转录组分析和抗病相关基因挖掘
赤霉素解除木本植物季节性休眠机制的研究进展
‘凤丹’牡丹花色变化过程中花瓣色素组成及相关基因表达分析
光周期途径菊花成花相关基因的筛选及其表达分析

网址: 花生种子休眠解除过程中相关基因的表达分析 https://www.huajiangbk.com/newsview1231195.html

所属分类:花卉
上一篇: 第七篇 种子植物.ppt
下一篇: 药用植物种子休眠研究概述

推荐分享