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首页> 外文期刊>Plant physiology >Seed storage oil mobilization is important but not essential for germination or seedling establishment in Arabidopsis
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Seed storage oil mobilization is important but not essential for germination or seedling establishment in Arabidopsis

机译:种子贮藏油的动员很重要,但对于拟南芥的发芽或幼苗的建立不是必需的

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Triacylglycerol (TAG) is a major storage reserve in many plant seeds. We previously identified a TAG lipase mutant called sugar-dependent1 (sdp1) that is impaired in TAG hydrolysis following Arabidopsis (Arabidopsis thaliana) seed germination (Eastmond, 2006). The aim of this study was to identify additional lipases that account for the residual TAG hydrolysis observed in sdp1. Mutants were isolated in three candidate genes (SDP1-LIKE [SDP1L], ADIPOSE TRIGLYCERIDE LIPASELIKE, and COMPARATIVE GENE IDENTIFIER-58-LIKE). Analysis of double, triple, and quadruple mutants showed that SDP1L is responsible for virtually all of the residual TAG hydrolysis present in sdp1 seedlings. Oil body membranes purified from sdp1 sdp1L seedlings were deficient in TAG lipase activity but could still hydrolyze di-and monoacylglycerol. SDP1L is expressed less strongly than SDP1 in seedlings. However, SDP1L could partially rescue TAG breakdown in sdp1 seedlings when expressed under the control of the SDP1 or 35S promoters and in vitro assays showed that both SDP1 and SDP1L can hydrolyze TAG, in preference to diacylglycerol or monoacylglycerol. Seed germination was slowed in sdp1 sdp1L and postgerminative seedling growth was severely retarded. The frequency of seedling establishment was also reduced, but sdp1 sdp1L was not seedling lethal under normal laboratory growth conditions. Our data show that together SDP1 and SDP1L account for at least 95% of the rate of TAG hydrolysis in Arabidopsis seeds, and that this hydrolysis is important but not essential for seed germination or seedling establishment.
机译:三酰甘油(TAG)是许多植物种子中的主要储存储备。我们之前确定了一种称为糖依赖性1(sdp1)的TAG脂肪酶突变体,该突变体在拟南芥(Arabidopsis thaliana)种子萌发后的TAG水解中受损(Eastmond,2006)。这项研究的目的是确定其他脂肪酶,这些脂肪酶解释了在sdp1中观察到的残留TAG水解。在三个候选基因(SDP1-LIKE [SDP1L],ADIPOSE TRIGLYCERIDE LIPASELIKE和比较基因识别器-58-LIKE)中分离了突变体。对双突变,三突变和四突变的分析表明,SDP1L实际上负责sdp1幼苗中存在的所有残留TAG水解。从sdp1 sdp1L幼苗纯化的油体膜缺乏TAG脂肪酶活性,但仍可以水解二和单酰基甘油。 SDP1L在幼苗中的表达不如SDP1强。但是,当在SDP1或35S启动子的控制下表达时,SDP1L可以部分挽救sdp1幼苗中的TAG降解,体外试验表明SDP1和SDP1L都可以水解TAG,而不是二酰基甘油或单酰基甘油。 sdp1 sdp1L的种子发芽减慢,发芽后的幼苗生长严重受阻。幼苗建立的频率也降低了,但是在正常实验室生长条件下,sdp1 sdp1L不会使幼苗致命。我们的数据表明,SDP1和SDP1L共同占拟南芥种子中TAG水解率的至少95%,并且这种水解作用对种子发芽或幼苗生长很重要,但不是必需的。

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