A carnation anthocyanin mutant is complemented by the glutathione S-transferases encoded by maize Bz2 and petunia An9

被引:102
作者
Larsen, ES
Alfenito, MR
Briggs, WR
Walbot, V
机构
[1] Stanford Univ, Dept Biol Sci, Stanford, CA 94305 USA
[2] Carnegie Inst Washington, Dept Plant Biol, Stanford, CA 94305 USA
基金
美国国家科学基金会;
关键词
carnation; anthocyanin; glutathione; S-transferase; microprojectile bombardment;
D O I
10.1007/s00299-002-0545-x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Particle bombardment was used to elucidate the function of Flavonoid3, a late-acting anthocyanin gene of the ornamental plant, carnation (Dianthus caryophyllus L.). The fl3 mutation conditions dilute anthocyanin coloration that closely resembles phenotypes produced by the anthocyanin mutants bz2 of maize and an9 of petunia. Bz2 and An9 encode glutathione S-transferases (GSTs) involved in vacuolar sequestration of anthocyanins. Constructs containing either of these or another late-function maize gene, Bronze 1 (UDPglucose:flavonol 3-O-glucosyltransferase), were introduced via microprojectile bombardment into fl3 petals. Complementation resulted only from Bz2 and An9, indicating that Fl3 encodes a GST involved in the transport of anthocyanins to the vacuole. The observed result in carnation, an angiosperm phylogenetically distant from maize and petunia, indicates that GST activity might be a universal step in the anthocyanin pathway. Microprojectile bombardment was used to identify late-pathway anthocyanin mutations, which may be responsible for the pale anthocyanin coloration of important cultivars in many species but which can be difficult to characterize by other means.
引用
收藏
页码:900 / 904
页数:5
相关论文
共 22 条
[1]   Functional complementation of anthocyanin sequestration in the vacuole by widely divergent glutathione S-transferases [J].
Alfenito, MR ;
Souer, E ;
Goodman, CD ;
Buell, R ;
Mol, J ;
Koes, R ;
Walbot, V .
PLANT CELL, 1998, 10 (07) :1135-1149
[2]   A macrocyclic anthocyanin from red/mauve carnation flowers [J].
Bloor, SJ .
PHYTOCHEMISTRY, 1998, 49 (01) :225-228
[3]   Functional conservation of plant secondary metabolic enzymes revealed by complementation of Arabidopsis flavonoid mutants with maize genes [J].
Dong, XY ;
Braun, EL ;
Grotewold, E .
PLANT PHYSIOLOGY, 2001, 127 (01) :46-57
[4]   TRANSACTIVATION OF ANTHOCYANIN BIOSYNTHETIC GENES FOLLOWING TRANSFER OF B-REGULATORY GENES INTO MAIZE TISSUES [J].
GOFF, SA ;
KLEIN, TM ;
ROTH, BA ;
FROMM, ME ;
CONE, KC ;
RADICELLA, JP ;
CHANDLER, VL .
EMBO JOURNAL, 1990, 9 (08) :2517-2522
[5]   GENETICS AND BIOCHEMISTRY OF ANTHOCYANIN BIOSYNTHESIS [J].
HOLTON, TA ;
CORNISH, EC .
PLANT CELL, 1995, 7 (07) :1071-1083
[6]   REGULATION OF ANTHOCYANIN BIOSYNTHETIC GENES INTRODUCED INTO INTACT MAIZE TISSUES BY MICROPROJECTILES [J].
KLEIN, TM ;
ROTH, BA ;
FROMM, ME .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1989, 86 (17) :6681-6685
[7]   STRUCTURAL BASIS OF BLUE-COLOR DEVELOPMENT IN FLOWER PETALS FROM COMMELINA-COMMUNIS [J].
KONDO, T ;
YOSHIDA, K ;
NAKAGAWA, A ;
KAWAI, T ;
TAMURA, H ;
GOTO, T .
NATURE, 1992, 358 (6386) :515-518
[8]  
LARSEN E, 1997, THESIS STANFORD U ST
[9]  
LEDUC N, 1994, SEX PLANT REPROD, V7, P135, DOI 10.1007/BF00230582
[10]   REGULATION OF THE TIMING OF TRANSPOSABLE ELEMENT EXCISION DURING MAIZE DEVELOPMENT [J].
LEVY, AA ;
WALBOT, V .
SCIENCE, 1990, 248 (4962) :1534-1537