叶绿体玉米NADP-苹果酸酶(ZmNADP-ME)的过表达赋予拟南芥对盐胁迫的耐受性。

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2023-10-01 Epub Date: 2023-08-10 DOI:10.1007/s11120-023-01041-x
Deepika Kandoi, Baishnab C Tripathy
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引用次数: 1

摘要

C4植物光合作用优于C3植物,尤其是在干旱环境中。作为将C3植物遗传转化为C4的尝试,来自玉米的脱羧C4型NADP苹果酸酶(ZmNADP-ME)的cDNA在35S启动子的控制下在拟南芥中过表达,该酶对苹果酸和NADP的Km低于其C3异构体。由于转基因中NADP-ME的活性增加,苹果酸脱羧作用增加,导致氨基酸和蛋白质合成所需的碳骨架损失。因此,转基因的氨基酸和蛋白质含量下降。因此,转基因植物的叶绿素含量、光合效率(Fv/Fm)、电子传输速率(ETR)、光合CO2同化的量子产量、玫瑰花结直径和生物量较低。然而,在盐胁迫(150mM NaCl)中,过表达者比载体对照具有更高的Chl、蛋白质含量、Fv/Fm、ETR和生物量。由于苹果酸脱羧作用的增加,转基因中产生的NADPH有助于脯氨酸的合成增加,脯氨酸是缓解活性氧介导的膜损伤和氧化应激所需的渗透保护剂。因此,盐胁迫转基因中谷胱甘肽过氧化物酶活性增加,H2O2含量降低。在生理盐水环境下,转基因细胞膜脂质过氧化减少,丙二醛产生减少,从而使类囊体完整性和膜结构得到更好的保存。我们的结果清楚地表明,C4叶绿体ZmNADP-ME在C3拟南芥中的过表达虽然降低了它们的光合效率,但可以保护转基因免受盐度胁迫。
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Overexpression of chloroplastic Zea mays NADP-malic enzyme (ZmNADP-ME) confers tolerance to salt stress in Arabidopsis thaliana.

The C4 plants photosynthesize better than C3 plants especially in arid environment. As an attempt to genetically convert C3 plant to C4, the cDNA of decarboxylating C4 type NADP-malic enzyme from Zea mays (ZmNADP-ME) that has lower Km for malate and NADP than its C3 isoforms, was overexpressed in Arabidopsis thaliana under the control of 35S promoter. Due to increased activity of NADP-ME in the transgenics the malate decarboxylation increased that resulted in loss of carbon skeletons needed for amino acid and protein synthesis. Consequently, amino acid and protein content of the transgenics declined. Therefore, the Chl content, photosynthetic efficiency (Fv/Fm), electron transport rate (ETR), the quantum yield of photosynthetic CO2 assimilation, rosette diameter, and biomass were lower in the transgenics. However, in salt stress (150 mM NaCl), the overexpressers had higher Chl, protein content, Fv/Fm, ETR, and biomass than the vector control. NADPH generated in the transgenics due to increased malate decarboxylation, contributed to augmented synthesis of proline, the osmoprotectant required to alleviate the reactive oxygen species-mediated membrane damage and oxidative stress. Consequently, the glutathione peroxidase activity increased and H2O2 content decreased in the salt-stressed transgenics. The reduced membrane lipid peroxidation and lower malondialdehyde production resulted in better preservation, of thylakoid integrity and membrane architecture in the transgenics under saline environment. Our results clearly demonstrate that overexpression of C4 chloroplastic ZmNADP-ME in the C3 Arabidopsis thaliana, although decrease their photosynthetic efficiency, protects the transgenics from salinity stress.

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ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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