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Enhanced Stomatal Conductance by a Spontaneous Arabidopsis Tetraploid Me-0 Results from Increased Stomatal Size and Greater Stomatal Aperture

机译:自发拟南芥四倍体Me-0增强气孔导度其原因是气孔大小增加和气孔孔径增大

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摘要

The rate of gas exchange in plants is regulated mainly by stomatal size and density. Generally, higher densities of smaller stomata are advantageous for gas exchange; however, it is unclear what the effect of an extraordinary change in stomatal size might have on a plant’s gas-exchange capacity. We investigated the stomatal responses to CO2 concentration changes among 374 Arabidopsis (Arabidopsis thaliana) ecotypes and discovered that Mechtshausen (), a natural tetraploid ecotype, has significantly larger stomata and can achieve a high stomatal conductance. We surmised that the cause of the increased stomatal conductance is tetraploidization; however, the stomatal conductance of another tetraploid accession, tetraploid Columbia (), was not as high as that in . One difference between these two accessions was the size of their stomatal apertures. Analyses of abscisic acid sensitivity, ion balance, and gene expression profiles suggested that physiological or genetic factors restrict the stomatal opening in tetraploid but not in . Our results show that overcomes the handicap of stomatal opening that is typical for tetraploids and achieves higher stomatal conductance compared with the closely related tetraploid on account of larger stomatal apertures. This study provides evidence for whether larger stomatal size in tetraploids of higher plants can improve stomatal conductance.
机译:植物中气体交换的速率主要受气孔大小和密度调节。通常,较高的较小气孔密度有利于气体交换。但是,目前尚不清楚气孔大小发生巨大变化会对工厂的气体交换能力产生什么影响。我们调查了374种拟南芥(Arabidopsis thaliana)生态型中气孔对CO2浓度变化的响应,并发现Mechtshausen()是天然的四倍体生态型,气孔明显更大,可以实现较高的气孔导度。我们推测气孔导度增加的原因是四倍体化。但是,另一个四倍体种质的四倍体Columbia()的气孔导度不如。这两个种之间的一个区别是它们的气孔孔径的大小。对脱落酸敏感性,离子平衡和基因表达谱的分析表明,生理或遗传因素限制了四倍体中的气孔开放,而没有限制。我们的结果表明,由于气孔孔径较大,与紧密相关的四倍体相比,它克服了四倍体典型的气孔开放障碍,并实现了更高的气孔导度。该研究为高等植物四倍体中较大的气孔大小是否可以改善气孔导度提供了证据。

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