Expression of an osmotin-like protein from Solanum nigrum confers drought tolerance in transgenic soybean

被引:40
作者
Mayer Weber, Ricardo Luis [1 ]
Wiebke-Strohm, Beatriz [1 ]
Bredemeier, Christian [1 ]
Margis-Pinheiro, Macia [1 ]
de Brito, Giovani Greigh [2 ]
Rechenmacher, Ciliana [1 ]
Bertagnolli, Paulo Fernando [3 ]
Lisei de Sa, Maria Eugenia [4 ,5 ]
Campos, Magnolia de Arajo [6 ]
Santos de Amorim, Regina Maria [5 ]
Beneventi, Magda Aparecida [5 ]
Margis, Rogerio [1 ]
Grossi-de-Sa, Maria Fatima [1 ,5 ]
Bodanese-Zanettini, Maria Helena [1 ,7 ]
机构
[1] Univ Fed Rio Grande do Sul, BR-91501970 Porto Alegre, RS, Brazil
[2] Embrapa Clima Temperado, BR-96010971 Pelotas, RS, Brazil
[3] Embrapa Trigo, BR-99001970 Passo Fundo, RS, Brazil
[4] Empresa Pesquisa Agr Minas Gerais, BR-38001970 Uberaba, MG, Brazil
[5] Embrapa Recursos Genet & Biotecnol, BR-70770917 Brasilia, DF, Brazil
[6] Univ Fed Campina Grande, BR-58175000 Cuite, PB, Brazil
[7] Inst Biociencias, Dept Genet, BR-91501970 Porto Alegre, RS, Brazil
关键词
Abiotic stress; Bombardment; Drought tolerance; Genetic transformation; Glycine max; Osmotin; Water deficit; TOBACCO OSMOTIN; WATER RELATIONS; PR-5; PROTEIN; GENE; STRESS; PLANTS; SALT; SOIL; TRANSFORMATION; ADAPTATION;
D O I
10.1186/s12870-014-0343-y
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Background: Drought is by far the most important environmental factor contributing to yield losses in crops, including soybeans [Glycine max (L.) Merr.]. To address this problem, a gene that encodes an osmotin-like protein isolated from Solanum nigrum var. americanum (SnOLP) driven by the UBQ3 promoter from Arabidopsis thaliana was transferred into the soybean genome by particle bombardment. Results: Two independently transformed soybean lines expressing SnOLP were produced. Segregation analyses indicated single-locus insertions for both lines. qPCR analysis suggested a single insertion of SnOLP in the genomes of both transgenic lines, but one copy of the hpt gene was inserted in the first line and two in the second line. Transgenic plants exhibited no remarkable phenotypic alterations in the seven analyzed generations. When subjected to water deficit, transgenic plants performed better than the control ones. Leaf physiological measurements revealed that transgenic soybean plants maintained higher leaf water potential at predawn, higher net CO2 assimilation rate, higher stomatal conductance and higher transpiration rate than non-transgenic plants. Grain production and 100-grain weight were affected by water supply. Decrease in grain productivity and 100-grain weight were observed for both transgenic and non-transgenic plants under water deficit; however, it was more pronounced for non-transgenic plants. Moreover, transgenic lines showed significantly higher 100-grain weight than non-transgenic plants under water shortage. Conclusions: This is the first report showing that expression of SnOLP in transgenic soybeans improved physiological responses and yield components of plants when subjected to water deficit, highlighting the potential of this gene for biotechnological applications.
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页数:9
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