Department of Botany and Center for Molecular Biosciences Innsbruck (CMBI), University of Innsbruck, Innsbruck, Austria.
Department of Botany and Center for Molecular Biosciences Innsbruck (CMBI), University of Innsbruck, Innsbruck, Austria
Biochem J. 2019 Mar 22;476(6):965-974. doi: 10.1042/BCJ20180903.
High seed quality is a key trait to achieve successful crop establishment required for optimum yield and sustainable production. Seed storage conditions greatly impact two key seed quality traits; seed viability (ability to germinate and produce normal seedlings) and vigour (germination performance). Accumulated oxidative damage accompanies the loss of seed vigour and viability during ageing, indicating that redox control is key to longevity. Here, we studied the effects of controlled deterioration at 40°C and 75% relative humidity (RH) ('ageing') under two different O concentrations (21 and 78% O) in Two genotypes with allelic differences at two QTLs that result in differences in abscisic acid (ABA) signalling and seed vigour were compared. Ageing led to a similar loss in germination speed in both genotypes that was lost faster under elevated O In both genotypes, an equal oxidative shift in the glutathione redox state and a minor loss of α-tocopherol progressively occurred before seed viability was lost. In contrast, ABA levels were not affected by ageing. In conclusion, both ABA signalling and seed ageing impact seed vigour but not necessarily through the same biochemical mechanisms.
高种子质量是实现最佳产量和可持续生产所必需的成功作物建立的关键特征。种子储存条件极大地影响两个关键的种子质量特征;种子活力(发芽和产生正常幼苗的能力)和活力(发芽性能)。在老化过程中,伴随着种子活力和活力的丧失,氧化损伤会累积,这表明氧化还原控制是长寿的关键。在这里,我们研究了在 40°C 和 75%相对湿度(RH)下(“老化”),在两种不同的 O 浓度(21%和 78%)下,两个等位基因差异的基因型在两个导致脱落酸(ABA)信号和种子活力差异的 QTL 下的控制恶化的影响。老化导致两个基因型的发芽速度都相似地下降,而在高 O 浓度下,这种下降速度更快。在两个基因型中,谷胱甘肽氧化还原状态的氧化偏移和α-生育酚的少量损失逐渐发生,然后才丧失种子活力。相比之下,ABA 水平不受老化的影响。总之,ABA 信号和种子老化都会影响种子活力,但不一定通过相同的生化机制。