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首页> 外文期刊>Plant Physiology and Biochemistry >Proteomic study participating the enhancement of growth and salt tolerance of bottle gourd rootstock-grafted watermelon seedlings
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Proteomic study participating the enhancement of growth and salt tolerance of bottle gourd rootstock-grafted watermelon seedlings

机译:蛋白质组学研究参与葫芦砧木嫁接西瓜幼苗的生长和耐盐性的提高

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摘要

An insertion grafting technique to do research on salt tolerance was applied using watermelon (. Citrullus lanatus [Thunb.] Mansf. cv. Xiuli) as a scion and bottle gourd (. Lagenaria siceraria Standl. cv. Chaofeng Kangshengwang) as a rootstock. Rootstock-grafting significantly relieved the inhibition of growth and photosynthesis induced by salt stress in watermelon plants. Proteomic analysis revealed 40 different expressed proteins in response to rootstock-grafting and/or salt stress. These proteins were involved in Calvin cycle, amino acids biosynthesis, carbohydrate and energy metabolism, ROS defense, hormonal biosynthesis and signal transduction. Most of these proteins were up-regulated by rootstock-grafting and/or susceptible to salt stress. The enhancement of the metabolic activities of Calvin cycle, biosynthesis of amino acids, carotenoids and peroxisomes, glycolytic pathway and tricarboxylic acid cycle will probably contribute to intensify the biomass and photosynthetic capacity in rootstock-grafted seedlings under condition without salt. The accumulation of key enzymes included in these biological processes described above seems to play an important role in the enhancement of salt tolerance of rootstock-grafted seedlings. Furthermore, leucine-rich repeat transmembrane protein kinase and phospholipase may be involved in transmitting the internal and external stimuli induced by grafting and/or salt stress.
机译:以西瓜(。Citrullus lanatus [Thunb。] Mansf。cv。Xiuli)为接穗和葫芦(。Lagenaria siceraria Standl。cv。Chaofeng Kangshengwang)为砧木,采用插入嫁接技术进行耐盐性研究。砧木嫁接显着缓解了盐胁迫对西瓜植物生长和光合作用的抑制作用。蛋白质组学分析揭示了响应砧木嫁接和/或盐胁迫的40种不同表达的蛋白质。这些蛋白质参与卡尔文循环,氨基酸生物合成,碳水化合物和能量代谢,ROS防御,激素生物合成和信号转导。这些蛋白质大多数通过砧木嫁接而上调和/或易受盐胁迫的影响。在没有盐分的条件下,卡尔文循环代谢活性的增强,氨基酸,类胡萝卜素和过氧化物酶体的生物合成,糖酵解途径和三羧酸循环的增强可能有助于增强砧木嫁接幼苗的生物量和光合能力。上述生物过程中所包含的关键酶的积累似乎在增强砧木嫁接幼苗的耐盐性中起着重要作用。此外,富含亮氨酸的重复跨膜蛋白激酶和磷脂酶可能参与传递由嫁接和/或盐胁迫诱导的内部和外部刺激。

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