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A cold-induced pectin methyl-esterase inhibitor gene contributes negatively to freezing tolerance but positively to salt tolerance in Arabidopsis

机译:冷诱导的果胶甲基 - 酯酶抑制基因对冷冻耐受性产生负面影响,但拟南芥中的耐盐耐受性

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摘要

Plant pectin methyl-esterase (PME) and PME inhibitor (PMEI) belong to large gene families whose members are proposed to be widely involved in growth, development, and stress responses; however, the biological functions of most PMEs and PMEIs have not been characterized. In this study, we studied the roles of CbPMEI1, a cold-induced pectin methyl-esterase inhibitor (PMEI) gene from Chorispora bungeana, under freezing and salt stress. The putative CbPMEI1 peptide shares highest similarity (83%) with AT5G62360 (PMEI13) of Arabidopsis. Overexpression of either CbPMEI1 or PMEI13 in Arabidopsis decreased tissue PME activity and enhanced the degree of methoxylation of cell wall pectins, indicating that both genes encode functional PMEIs. CbPMEI1 and PMEI13 were induced by cold but repressed by salt stress and abscisic acid, suggesting distinct roles of the genes in freezing and salt stress tolerance. Interestingly, transgenic Arabidopsis plants overexpressing CbPMEI1 or PMEI13 showed decreased freezing tolerance, as indicated by survival and electrolyte leakage assays. On the other hand, the salt tolerance of transgenic plants was increased, showing higher rates of germination, root growth, and survival under salinity conditions as compared with non-transgenic wild-type plants. Although the transgenic plants were freezing-sensitive, they showed longer roots than wild-type plants under cold conditions, suggesting a role of PMEs in balancing the trade-off between freezing tolerance and growth. Thus, our study indicates that CbPMEI1 and PMEI13 are involved in root growth regulation under cold and salt stresses, and suggests that PMEIs may be potential targets for genetic engineering aimed to improve fitness of plants under stress conditions.
机译:植物果胶甲基 - 酯酶(PME)和PME抑制剂(PMEI)属于大型基因家族,其成员被广泛参与生长,发育和应力反应;然而,尚未表征大多数PME和PMEIS的生物学功能。在这项研究中,我们研究了CBPMEI1,冷诱导的果胶甲基 - 酯酶抑制剂(PMEI)基因从Chorispora Bungeana的作用,在冷冻和盐胁迫下。推定的CBPMEI1肽与AT5G62360(PMEI13)的拟南芥(83%)共用了最高的相似性(83%)。拟南芥中CBPMEI1或PMEI13的过度表达降低了组织PME活性,并提高了细胞壁果胶的甲氧基化程度,表明这两个基因都编码功能性PMEIS。 CBPMEI1和PMEI13通过冷诱导但受盐胁迫和脱钙酸抑制,表明基因在冷冻和盐胁迫耐受性的不同作用。有趣的是,过表达CBPMEI1或PMEI13的转基因拟南芥植物显示出冷冻耐受性降低,如存活和电解质泄漏测定所示。另一方面,与非转基因野生型植物相比,转基因植物的耐盐性,显示出盐度条件下的萌发,根生长和存活率较高。虽然转基因植物冻结敏感,但它们在寒冷条件下显示出比野生型植物更长的根,表明PME在平衡避免耐受性和生长之间的折衷方面的作用。因此,我们的研究表明,CBPMEI1和PMEI13涉及冷和盐胁迫下的根生长调节,并表明PMEIS可能是遗传工程的潜在目标,其旨在在压力条件下提高植物的适应性。

著录项

  • 来源
    《Journal of Plant Physiology》 |2018年第2018期|共12页
  • 作者单位

    Lanzhou Univ Sch Life Sci Key Lab Cell Act &

    Stress Adaptat Minist Educ Lanzhou 730000 Gansu Peoples R China;

    Lanzhou Univ Sch Life Sci Key Lab Cell Act &

    Stress Adaptat Minist Educ Lanzhou 730000 Gansu Peoples R China;

    Lanzhou Univ Sch Life Sci Key Lab Cell Act &

    Stress Adaptat Minist Educ Lanzhou 730000 Gansu Peoples R China;

    Lanzhou Univ Sch Life Sci Key Lab Cell Act &

    Stress Adaptat Minist Educ Lanzhou 730000 Gansu Peoples R China;

    Lanzhou Univ Sch Life Sci Key Lab Cell Act &

    Stress Adaptat Minist Educ Lanzhou 730000 Gansu Peoples R China;

    Lanzhou Univ Sch Life Sci Key Lab Cell Act &

    Stress Adaptat Minist Educ Lanzhou 730000 Gansu Peoples R China;

    Lanzhou Univ Sch Life Sci Key Lab Cell Act &

    Stress Adaptat Minist Educ Lanzhou 730000 Gansu Peoples R China;

    Lanzhou Univ Sch Life Sci Key Lab Cell Act &

    Stress Adaptat Minist Educ Lanzhou 730000 Gansu Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 植物学;
  • 关键词

    Pectin methyl-esterase inhibitor; Freezing tolerance; Salt stress tolerance; Trade-off; Chorispora bungeana; Arabidopsis;

    机译:果胶甲基酯酶抑制剂;凝固耐受性;盐胁迫耐受性;折磨;Chorispora Bungeana;Arabidopsis;

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