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DOI | 10.1007/s12298-019-00643-x |
Mechanism of the drought tolerance of a transgenic soybean overexpressing the molecular chaperone BiP | |
Coutinho, Flaviane Silva1,2; dos Santos, Danilo Silva1; Lima, Lucas Leal1,2; Vital, Camilo Elber2; Santos, Lazaro Aleixo2; Pimenta, Maiana Reis1; da Silva, Joao Carlos1; Lopes Soares Ramos, Juliana Rocha1; Mehta, Angela3; Batista Fontes, Elizabeth Pacheco1; de Oliveira Ramos, Humberto Josue1,2 | |
发表日期 | 2019 |
ISSN | 0971-5894 |
EISSN | 0974-0430 |
卷号 | 25期号:2页码:457-472 |
英文摘要 | Drought is one of major constraints thatlimits agricultural productivity. Some factors, including climate changes andacreage expansion, indicates towards the need for developing drought tolerant genotypes. In addition to its protective role against endoplasmic reticulum (ER) stress, we have previously shown that the molecular chaperone binding protein (BiP) is involved in the response to osmotic stress and promotes drought tolerance. Here, we analyzed the proteomic and metabolic profiles of BiP-overexpressing transgenic soybean plants and the corresponding untransformed line under drought conditions by 2DE-MS and GC/MS. The transgenic plant showed lower levels of the abscisic acid and jasmonic acid as compared to untransformed plants both in irrigated and non-irrigated conditions. In contrast, the level of salicylic acid was higher in transgenic lines than in untransformed line, which was consistent with the antagonistic responses mediated by these phytohormones. The transgenic plants displayed a higher abundance of photosynthesis-related proteins, which gave credence to the hypothesis that these transgenic plants could survive under drought conditions due to their genetic modification and alteredphysiology.The proteins involved in pathways related to respiration, glycolysis and oxidative stress were not signifcantly changed in transgenic plants as compared tountransformed genotype, which indicate a lower metabolic perturbation under drought of the engineered genotype. Thetransgenic plants may have adopted a mechanism of drought tolerance by accumulating osmotically active solutes in the cell. As evidenced by the metabolic profiles, the accumulation of nine primary amino acids by protein degradation maintained the cellular turgor in the transgenic genotype under drought conditions. Thus, this mechanism of protection may cause the physiological activities including photosynthesis to be active underdrought conditions. |
WOS研究方向 | Plant Sciences |
来源期刊 | PHYSIOLOGY AND MOLECULAR BIOLOGY OF PLANTS |
文献类型 | 期刊论文 |
条目标识符 | http://gcip.llas.ac.cn/handle/2XKMVOVA/94274 |
作者单位 | 1.Univ Fed Vicosa, Dept Biochem & Mol Biol, Lab Plant Mol Biol, BIOAGRO INCT IPP, Vicosa, MG, Brazil; 2.Univ Fed Vicosa, NuBioMol, Ctr Anal Biomol, Vicosa, MG, Brazil; 3.Embrapa Recursos Genet & Biotecnol, Brasilia, DF, Brazil |
推荐引用方式 GB/T 7714 | Coutinho, Flaviane Silva,dos Santos, Danilo Silva,Lima, Lucas Leal,et al. Mechanism of the drought tolerance of a transgenic soybean overexpressing the molecular chaperone BiP[J],2019,25(2):457-472. |
APA | Coutinho, Flaviane Silva.,dos Santos, Danilo Silva.,Lima, Lucas Leal.,Vital, Camilo Elber.,Santos, Lazaro Aleixo.,...&de Oliveira Ramos, Humberto Josue.(2019).Mechanism of the drought tolerance of a transgenic soybean overexpressing the molecular chaperone BiP.PHYSIOLOGY AND MOLECULAR BIOLOGY OF PLANTS,25(2),457-472. |
MLA | Coutinho, Flaviane Silva,et al."Mechanism of the drought tolerance of a transgenic soybean overexpressing the molecular chaperone BiP".PHYSIOLOGY AND MOLECULAR BIOLOGY OF PLANTS 25.2(2019):457-472. |
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