Reversible male sterility in transgenic tobacco carrying a dominant-negative mutated glutamine synthetase gene under the control of microspore-specific promoter

被引:1
作者
Mamun, A. N. K. [1 ]
机构
[1] Univ Vienna, Vienna Bioctr, Inst Microbiol & Genet, A-1030 Vienna, Austria
关键词
glutamine synthetase; microspore specific promoter; reversible male sterility; tobacco;
D O I
暂无
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Metabolic engineering was used to disrupt glutamine metabolism in microspores in order to block pollen development. We used a dominant-negative mutant (DNM) approach of cytosolic glutamine synthetase (GS1) gene under the microspore-specific promoter NTM19 to block glutamine synthesis in developing pollen grains. We observed partial male sterility in primary transgenic plants by using light microscopy, FDA, DAPI and in vitro pollen germination test. Microspores started to die in the early unicellular microspore stage, pollen viability in all primary transgenic lines ranged from 40-50%. All primary transgenics produced seeds like control plants, hence the inserted gene did not affect the sporophyte and was inherited through the female germline. We regenerated plants by in vitro microspore embryogenesis from 4 individual lines, pollen viability of progeny ranged from 12 to 20%, but some of them also showed 100% male sterility. After foliage spray with glutamine, 100% male-sterile plants were produced viable pollen and seed set was also observed. These results suggested that mutated GS1 activity on microspores had a significant effect on normal pollen development. Back-cross progenies (T2) of DH 100% male-sterile plants showed normal seed set like primary transgenics and control plants.
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页码:1022 / 1030
页数:9
相关论文
共 27 条
[1]  
[Anonymous], 1965, BROOKHAVEN SYM BIOL
[2]   NUCLEOTIDE-SEQUENCE OF A TOBACCO CDNA-ENCODING PLASTIDIC GLUTAMINE-SYNTHETASE AND LIGHT INDUCIBILITY, ORGAN SPECIFICITY AND DIURNAL RHYTHMICITY IN THE EXPRESSION OF THE CORRESPONDING GENES OF TOBACCO AND TOMATO [J].
BECKER, TW ;
CABOCHE, M ;
CARRAYOL, E ;
HIREL, B .
PLANT MOLECULAR BIOLOGY, 1992, 19 (03) :367-379
[3]   MOLECULAR CHARACTERIZATION OF A CDNA CLONE ENCODING GLUTAMINE-SYNTHETASE FROM A GYMNOSPERM, PINUS-SYLVESTRIS [J].
CANTON, FR ;
GARCIAGUTIERREZ, A ;
GALLARDO, F ;
DEVICENTE, A ;
CANOVAS, FM .
PLANT MOLECULAR BIOLOGY, 1993, 22 (05) :819-828
[4]   When negative is positive in functional genomics [J].
Chandler, JW ;
Werr, W .
TRENDS IN PLANT SCIENCE, 2003, 8 (06) :279-285
[5]   Functional importance of Asp56 from the α-polypeptide of Phaseolus vulgaris glutamine synthetase -: An essential residue for transferase but not for biosynthetic enzyme activity [J].
Clemente, MT ;
Márquez, AJ .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1999, 264 (02) :453-460
[6]  
CULLIMORE JV, 1986, SCIENCE, V232, P1242
[7]   Analysis of microspore-specific promoters in transgenic tobacco [J].
Custers, JBM ;
Oldenhof, MT ;
Schrauwen, JAM ;
Cordewener, JHG ;
Wullems, GJ ;
Campagne, MMV .
PLANT MOLECULAR BIOLOGY, 1997, 35 (06) :689-699
[8]   Localization of tobacco cytosolic glutamine synthetase enzymes and the corresponding transcripts shows organ- and cell-specific patterns of protein synthesis and gene expression [J].
Dubois, F ;
Brugiere, N ;
Sangwan, RS ;
Hirel, B .
PLANT MOLECULAR BIOLOGY, 1996, 31 (04) :803-817
[9]   Structure-function relationships of glutamine synthetases [J].
Eisenberg, D ;
Gill, HS ;
Pfluegl, GMU ;
Rotstein, SH .
BIOCHIMICA ET BIOPHYSICA ACTA-PROTEIN STRUCTURE AND MOLECULAR ENZYMOLOGY, 2000, 1477 (1-2) :122-145
[10]   FUNCTIONAL INACTIVATION OF GENES BY DOMINANT NEGATIVE MUTATIONS [J].
HERSKOWITZ, I .
NATURE, 1987, 329 (6136) :219-222