SUGAR-DEPENDENT EXPRESSION OF THE CHS-A GENE FOR CHALCONE SYNTHASE FROM PETUNIA IN TRANSGENIC ARABIDOPSIS

被引:250
作者
TSUKAYA, H
OHSHIMA, T
NAITO, S
CHINO, M
KOMEDA, Y [1 ]
机构
[1] UNIV TOKYO, MOLEC GENET RES LAB, BUNKYO KU, TOKYO 113, JAPAN
[2] UNIV TOKYO, DEPT AGR CHEM, BUNKYO KU, TOKYO 113, JAPAN
关键词
D O I
10.1104/pp.97.4.1414
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Transgenic Arabidopsis thaliana plants were constructed by introduction of a fusion of the gene for beta-glucuronidase (GUS) to the CHS-A gene, which is one of the two genes for chalcone synthase that are actively expressed in the floral organs of Petunia. The expression of the fusion gene CHS-A::GUS was low in transgenic Arabidopsis plantlets, but it was enhanced when plantlets or detached leaves were transferred to a medium that contained 0.3 molar sucrose, glucose, or fructose. No enhancement was observed when plantlets were transferred to a medium that contained 0.3 molar mannitol. Measurements of cellular levels of sugars revealed a tight linkage between the level of expression of the CHS-A::GUS gene and the level of accumulation of exogenously supplied sugar, in particular sucrose. The parallelism between the organ-specific accumulation of sugar and the organ-specific expression of the CHS-A::GUS gene was also observed in petunia and A. thaliana plants grown under normal conditions in soil. The consensus sequences for sugar responses, such as boxes II and III in members of the family of sporamin genes from the sweet potato, were found in the promoter region Of the CHS-A gsne that was used for fusion to the GUS gene. It is suggested that the expression of the CHS-A gene is regulated by sugars, as is the expression of other sugar-responsive genes, such as the genes for sporamin. A putative common mechanism for the control of expression of "sugar-related" genes, including the CHS-A gene, is discussed.
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页码:1414 / 1421
页数:8
相关论文
共 30 条
[1]   THE STRUCTURE AND TRANSCRIPTION START SITE OF A MAJOR POTATO-TUBER PROTEIN GENE [J].
BEVAN, M ;
BARKER, R ;
GOLDSBROUGH, A ;
JARVIS, M ;
KAVANAGH, T ;
ITURRIAGA, G .
NUCLEIC ACIDS RESEARCH, 1986, 14 (11) :4625-4638
[2]   BROAD HOST RANGE DNA CLONING SYSTEM FOR GRAM-NEGATIVE BACTERIA - CONSTRUCTION OF A GENE BANK OF RHIZOBIUM-MELILOTI [J].
DITTA, G ;
STANFIELD, S ;
CORBIN, D ;
HELINSKI, DR .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA-BIOLOGICAL SCIENCES, 1980, 77 (12) :7347-7351
[3]   TRANSCRIPTIONAL REGULATION OF THE ARABIDOPSIS-THALIANA CHALCONE SYNTHASE GENE [J].
FEINBAUM, RL ;
AUSUBEL, FM .
MOLECULAR AND CELLULAR BIOLOGY, 1988, 8 (05) :1985-1992
[4]   GENES-CODING FOR THE MAJOR TUBEROUS ROOT PROTEIN OF SWEET-POTATO - IDENTIFICATION OF PUTATIVE REGULATORY SEQUENCE IN THE 5' UPSTREAM REGION [J].
HATTORI, T ;
NAKAMURA, K .
PLANT MOLECULAR BIOLOGY, 1988, 11 (04) :417-426
[5]   HIGH-LEVEL EXPRESSION OF TUBEROUS ROOT STORAGE PROTEIN GENES OF SWEET-POTATO IN STEMS OF PLANTLETS GROWN-INVITRO ON SUCROSE MEDIUM [J].
HATTORI, T ;
NAKAGAWA, S ;
NAKAMURA, K .
PLANT MOLECULAR BIOLOGY, 1990, 14 (04) :595-604
[6]   2 ALLELES OF THE SINGLE-COPY CHALCONE SYNTHASE GENE IN PARSLEY DIFFER BY A TRANSPOSON-LIKE ELEMENT [J].
HERRMANN, A ;
SCHULZ, W ;
HAHLBROCK, K .
MOLECULAR AND GENERAL GENETICS, 1988, 212 (01) :93-98
[7]  
HO LC, 1988, ANNU REV PLANT PHYS, V39, P355, DOI 10.1146/annurev.arplant.39.1.355
[8]   A SIMPLE AND GENERAL-METHOD FOR TRANSFERRING GENES INTO PLANTS [J].
HORSCH, RB ;
FRY, JE ;
HOFFMANN, NL ;
EICHHOLTZ, D ;
ROGERS, SG ;
FRALEY, RT .
SCIENCE, 1985, 227 (4691) :1229-1231
[9]   AUTUMNAL REDDENING OF LEAVES - SEASONAL-CHANGES IN CONTENTS OF PHENOLIC COMPOUNDS AND SUGAR IN RHUS, EUONYMUS AND ACER LEAVES WITH SPECIAL REFERENCE TO ANTHOCYANIN FORMATION IN AUTUMN [J].
ISHIKURA, N .
BOTANICAL MAGAZINE-TOKYO, 1976, 89 (1016) :251-257
[10]   EFFECT OF CHLOROCHOLINE CHLORIDE AND GIBBERELLIC-ACID ON THE ANTHOCYANIN SYNTHESIS IN RADISH SEEDLINGS [J].
JAIN, VK ;
GURUPRASAD, KN .
PHYSIOLOGIA PLANTARUM, 1989, 75 (02) :233-236