Antisense expression of the peptide transport gene AtPTR2-B delays flowering and arrests seed development in transgenic Arabidopsis plants

被引:60
作者
Song, W
Koh, S
Czako, M
Marton, L
Drenkard, E
Becker, JM
Stacey, G
机构
[1] UNIV TENNESSEE, CTR LEGUME RES, KNOXVILLE, TN 37996 USA
[2] UNIV TENNESSEE, DEPT MICROBIOL, KNOXVILLE, TN 37996 USA
[3] UNIV S CAROLINA, DEPT BIOL SCI, COLUMBIA, SC 29208 USA
[4] HARVARD UNIV, SCH MED, DEPT GENET, BOSTON, MA 02114 USA
[5] MASSACHUSETTS GEN HOSP, DEPT MOL BIOL, BOSTON, MA 02114 USA
关键词
D O I
10.1104/pp.114.3.927
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Previously, we identified a peptide transport gene, AtPTR2-B, from Arabidopsis thaliana that was constitutively expressed in all plant organs, suggesting an important physiological role in plant growth and development. To evaluate the function of this transporter, transgenic Arabidopsis plants were constructed expressing antisense or sense AtPTR2-B. Genomic Southern analysis indicated that four independent antisense and three independent sense AtPTR2-B transgenic lines were obtained, which was confirmed by analysis of the segregation of the kanamycin resistance gene carried on the T-DNA. RNA blot data showed that the endogenous AtPTR2-B mRNA levels were significantly reduced in transgenic leaves and Glowers, but not in transgenic roots. Consistent with this reduction in endogenous AtPTR2-B mRNA levels, all four antisense lines and one sense line exhibited significant phenotypic changes, including late flowering and arrested seed development. These phenotypic changes could be explained by a defect in nitrogen nutrition due to the reduced peptide transport activity conferred by AtPTR2-B. These results suggest that AtPTR2-B may play a general role in plant nutrition. The AtPTR2-B gene was mapped to chromosome 2, which is closely linked to the restriction fragment length polymorphism marker m246.
引用
收藏
页码:927 / 935
页数:9
相关论文
共 53 条
[1]  
ALTMANN T, 1994, PLANT CELL REP, V13, P652, DOI 10.1007/BF00232939
[2]  
An G., 1988, Plant Molecular Biology Manual, P1, DOI DOI 10.1007/978-94-009-0951-9
[3]   THE FORMATION OF INDOLEACETYLASPARTIC ACID IN PEA SEEDLINGS [J].
ANDREAE, WA ;
GOOD, NE .
PLANT PHYSIOLOGY, 1955, 30 (04) :380-382
[4]  
Ausubel FA, 1995, CURRENT PROTOCOLS MO
[5]  
Becker J. M., 1980, MICROORGANISMS NITRO, P257
[6]  
BECKER JM, 1995, PEPTIDE BASED DRUG D, P369
[7]  
BERLYN GP, 1976, BOTANICAL MICROTECHN, P304
[8]  
Bewley J.D., 1986, SEEDS PHYSL DEV GERM
[9]  
Bowman J., 1994, ARABIDOPSIS ATLAS MO
[10]   EXPRESSION AND PROTEIN-KINASE C-DEPENDENT REGULATION OF PEPTIDE/H+ COTRANSPORT SYSTEM IN THE CACO-2 HUMAN COLON-CARCINOMA CELL-LINE [J].
BRANDSCH, M ;
MIYAMOTO, Y ;
GANAPATHY, V ;
LEIBACH, FH .
BIOCHEMICAL JOURNAL, 1994, 299 :253-260