渗吸
胚根
发芽
脱落酸
生物
番茄
干燥耐受性
休眠
赤霉素
苗木
干燥
植物
顽性种子
棉子糖
种子休眠
园艺
生物化学
基因
蔗糖
作者
Bruce Downie,Sunitha Gurusinghe,Petambar Dahal,Richard R. Thacker,John Snyder,Hiroyuki Nonogaki,Kyu‐Ock Yim,Keith Fukanaga,Veria Y. Alvarado,Kent J. Bradford
出处
期刊:Plant Physiology
[Oxford University Press]
日期:2003-03-01
卷期号:131 (3): 1347-1359
被引量:149
摘要
Abstract Raffinose family oligosaccharides (RFOs) have been implicated in mitigating the effects of environmental stresses on plants. In seeds, proposed roles for RFOs include protecting cellular integrity during desiccation and/or imbibition, extending longevity in the dehydrated state, and providing substrates for energy generation during germination. A gene encoding galactinol synthase (GOLS), the first committed enzyme in the biosynthesis of RFOs, was cloned from tomato (Lycopersicon esculentum Mill. cv Moneymaker) seeds, and its expression was characterized in tomato seeds and seedlings. GOLS (LeGOLS-1) mRNA accumulated in developing tomato seeds concomitant with maximum dry weight deposition and the acquisition of desiccation tolerance.LeGOLS-1 mRNA was present in mature, desiccated seeds but declined within 8 h of imbibition in wild-type seeds. However, LeGOLS-1 mRNA accumulated again in imbibed seeds prevented from completing germination by dormancy or water deficit. Gibberellin-deficient (gib-1) seeds maintainedLeGOLS-1 mRNA amounts after imbibition unless supplied with gibberellin, whereas abscisic acid (ABA) did not prevent the loss of LeGOLS-1 mRNA from wild-type seeds. The presence of LeGOLS-1mRNA in ABA-deficient (sitiens) tomato seeds indicated that wild-type amounts of ABA are not necessary for its accumulation during seed development. In all cases,LeGOLS-1 mRNA was most prevalent in the radicle tip. LeGOLS-1 mRNA accumulation was induced by dehydration but not by cold in germinating seeds, whereas both stresses induced LeGOLS-1mRNA accumulation in seedling leaves. The physiological implications ofLeGOLS-1 expression patterns in seeds and leaves are discussed in light of the hypothesized role of RFOs in plant stress tolerance.
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