Mutants at the Slender1 locus of barley cv Himalaya. molecular and physiological characterization

被引:228
作者
Chandler, PM
Marion-Poll, A
Ellis, M
Gubler, F
机构
[1] Commonwealth Sci & Ind Res Org, Plant Ind, Canberra, ACT 2601, Australia
[2] INRA, Lab Seed Biol, F-78026 Versailles, France
关键词
D O I
10.1104/pp.010917
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
A dominant dwarf mutant of barley (Hordeum vulgare) that resembles dominant gibberellin (GA) "-insensitive" or "-nonresponsive" mutants in other species is described. alpha-Amylase production by endosperm half-grains of the mutant required GA, at concentrations about 100 times that of the WT. The mutant showed only a slight growth response to GA(3), even at very high concentrations. However, when additionally dwarfed, growth rate responded to GA3 over the normal concentration range, although only back to the original (dwarf) elongation rate. Genetic studies indicated that the dominant dwarf locus was either closely linked or identical to the Sln1 (Slender1) locus. A barley sequence related to Arabidopsis GAI/RGA was isolated, and shown to represent the Sln1 locus by the analysis of sln1 mutants. The dominant dwarf mutant was also altered in this sequence, indicating that it too is an allele at Sln1. Thus, mutations at Sln1 generate plants of radically different phenotypes; either dwarfs that are largely dominant and GA "-insensitive/-nonresponsive," or the recessive slender types in which CA responses appear to be constitutive. Immunoblotting studies showed that in growing leaves, SLN1 protein localized almost exclusively to the leaf elongation zone. In mutants at the Sln1 locus, there were differences in both the abundance and distribution of SLN1 protein, and large changes in the amounts of bioactive GAs, and of their metabolic precursors and catabolites. These results suggest that there are dynamic interactions between SLN1 protein and GA content in determining leaf elongation rate.
引用
收藏
页码:181 / 190
页数:10
相关论文
共 27 条
[1]   Gibberellin dose-response curves and the characterization of dwarf mutants of barley [J].
Chandler, PM ;
Robertson, M .
PLANT PHYSIOLOGY, 1999, 120 (02) :623-632
[2]   HORMONAL-REGULATION OF GENE-EXPRESSION IN THE SLENDER MUTANT OF BARLEY (HORDEUM-VULGARE-L) [J].
CHANDLER, PM .
PLANTA, 1988, 175 (01) :115-120
[3]   COMPARISON OF GIBBERELLINS IN NORMAL AND SLENDER BARLEY SEEDLINGS [J].
CROKER, SJ ;
HEDDEN, P ;
LENTON, JR ;
STODDART, JL .
PLANT PHYSIOLOGY, 1990, 94 (01) :194-200
[4]  
Foster C. A., 1977, Barley Genetics Newsletter, V7, P24
[5]   Expression of arabidopsis GAI in transgenic rice represses multiple gibberellin responses [J].
Fu, XD ;
Sudhakar, D ;
Peng, JR ;
Richards, DE ;
Christou, P ;
Harberd, NP .
PLANT CELL, 2001, 13 (08) :1791-1802
[6]   THE DOMINANT NON-GIBBERELLIN-RESPONDING DWARF MUTANT (D8) OF MAIZE ACCUMULATES NATIVE GIBBERELLINS [J].
FUJIOKA, S ;
YAMANE, H ;
SPRAY, CR ;
KATSUMI, M ;
PHINNEY, BO ;
GASKIN, P ;
MACMILLAN, J ;
TAKAHASHI, N .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1988, 85 (23) :9031-9035
[7]   INSENSITIVITY TO GIBBERELLIN IN DWARF WHEATS [J].
GALE, MD ;
MARSHALL, GA .
ANNALS OF BOTANY, 1973, 37 (152) :729-735
[8]   Grain development mutants of barley - alpha-amylase production during grain maturation and its relation to endogenous gibberellic acid content [J].
Green, LS ;
Faergestad, EM ;
Poole, A ;
Chandler, PM .
PLANT PHYSIOLOGY, 1997, 114 (01) :203-212
[9]   Gibberellin signaling in barley aleurone cells. Control of SLN1 and GAMYB expression [J].
Gubler, F ;
Chandler, PM ;
White, RG ;
Llewellyn, DJ ;
Jacobsen, JV .
PLANT PHYSIOLOGY, 2002, 129 (01) :191-200
[10]   slender rice, a constitutive gibberellin response mutant, is caused by a null mutation of the SLR1 gene, an ortholog of the height-regulating gene GAI/RGA/RHT/D8 [J].
Ikeda, A ;
Ueguchi-Tanaka, M ;
Sonoda, Y ;
Kitano, H ;
Koshioka, M ;
Futsuhara, Y ;
Matsuoka, M ;
Yamaguchi, J .
PLANT CELL, 2001, 13 (05) :999-1010