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Insertion of a Specific Fungal 3′-phosphoadenosine-5′-phosphatase Motif into a Plant Homologue Improves Halotolerance and Drought Tolerance of Plants

机译:将特定的真菌3-磷酸腺苷-5-磷酸酶基序插入植物同源物中可提高植物的耐盐性和耐旱性

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摘要

Soil salinity and drought are among the most serious agricultural and environmental problems of today. Therefore, investigations of plant resistance to abiotic stress have received a lot of attention in recent years. In this study, we identified the complete coding sequence of a 3′-phosphoadenosine-5′-phosphatase protein, ApHal2, from the halotolerant yeast Aureobasidium pullulans. Expression of the ApHAL2 gene in a Saccharomyces cerevisiae hal2 mutant complemented the mutant auxotrophy for methionine, and rescued the growth of the hal2 mutant in media with high NaCl concentrations. A 21-amino-acids-long region of the ApHal2 enzyme was inserted into the Arabidopsis thaliana homologue of Hal2, the SAL1 phosphatase. The inserted sequence included the META motif, which has previously been implicated in increased sodium tolerance of the Hal2 homologue from a related fungal species. Transgenic Arabidopsis plants overexpressing this modified SAL1 (mSAL1) showed improved halotolerance and drought tolerance. In a medium with an elevated salt concentration, mSAL1-expressing plants were twice as likely to have roots in a higher length category in comparison with the wild-type Arabidopsis and with plants overexpressing the native SAL1, and had 5% to 10% larger leaf surface area under moderate and severe salt stress, respectively. Similarly, after moderate drought exposure, the mSAL1-expressing plants showed 14% increased dry weight after revitalisation, with no increase in dry weight of the wild-type plants. With severe drought, plants overexpressing native SAL1 had the worst rehydration success, consistent with the recently proposed role of SAL1 in severe drought. This was not observed for plants expressing mSAL1. Therefore, the presence of this fungal META motif sequence is beneficial under conditions of increased salinity and moderate drought, and shows no drawbacks for plant survival under severe drought. This demonstrates that adaptations of extremotolerant fungi should be considered as a valuable resource for improving stress-tolerance in plant breeding in the future.
机译:土壤盐分和干旱是当今最严重的农业和环境问题。因此,近年来植物对非生物胁迫的抗性研究受到了广泛的关注。在这项研究中,我们从卤代酵母Aureobasidium pullulans中鉴定了3'-磷酸腺苷-5'-磷酸酶蛋白ApHal2的完整编码序列。 ApHAL2基因在酿酒酵母hal2突变体中的表达补充了蛋氨酸的突变体营养缺陷型,并在高NaCl浓度的培养基中拯救了hal2突变体的生长。将ApHal2酶的21个氨基酸长的区域插入Sal1磷酸酶Hal2的拟南芥同源物中。插入的序列包括META基序,该基序先前与来自相关真菌物种的Hal2同系物的钠耐受性增加有关。过表达这种修饰的SAL1(mSAL1)的转基因拟南芥植物显示出更好的耐盐性和耐旱性。在盐浓度升高的培养基中,与野生型拟南芥和过表达天然SAL1的植物相比,表达mSAL1的植物的根在较高长度类别中的可能性是其两倍,并且叶长5%至10%分别在中度和重度盐胁迫下的表面积。同样,经过适度的干旱暴露后,表达mSAL1的植物恢复活力后干重增加了14%,而野生型植物的干重却没有增加。在严重干旱下,过表达天然SAL1的植物补液成功最差,这与最近提出的SAL1在严重干旱中的作用一致。对于表达mSAL1的植物没有观察到。因此,该真菌META基序序列的存在在盐度增加和中度干旱的条件下是有益的,并且在严重干旱下没有显示出植物存活的缺点。这表明适应性极强的真菌的适应性应该被认为是将来在植物育种中提高胁迫耐受性的宝贵资源。

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