Sites and homeostatic control of auxin biosynthesis in Arabidopsis during vegetative growth

被引:463
作者
Ljung, K [1 ]
Bhalerao, RP [1 ]
Sandberg, G [1 ]
机构
[1] Swedish Univ Agr Sci, Dept Forest Genet & Plant Physiol, Umea Plant Sci Ctr, S-90183 Umea, Sweden
关键词
indole-3-acetic acid; auxin; distribution and biosynthesis; feedback inhibition; naphthylphthalamic acid; leaf expansion;
D O I
10.1046/j.1365-313X.2001.01173.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The distribution and biosynthesis of indole-3-acetic acid (IAA) was investigated during early plant development in Arabidopsis. The youngest leaves analysed, less than 0.5 mm in length, contained 250 pg mg(-1) of IAA and also exhibited the highest relative capacity to synthesize this hormone. A decrease of nearly one hundred-fold in IAA content occurred as the young leaves expanded to their full size, and this was accompanied by a clear shift in both pool size and IAA synthesis capacity. The correlation between high IAA content and intense cell division was further verified in tobacco leaves, where a detailed analysis revealed that dividing mesophyll tissue contained ten-fold higher IAA levels than tissue growing solely by elongation. We demonstrated that all parts of the young Arabidopsis plant can potentially contribute to the auxin needed for growth and development, as not only young leaves, but also all other parts of the plant such as cotyledons, expanding leaves and root tissues have the capacity to synthesize IAA de novo. We also observed that naphthylphthalamic acid (NPA) treatment induced tissue-dependent feedback inhibition of IAA biosynthesis in expanding leaves and cotyledons, but intriguingly not in young leaves or in the root system. This observation supports the hypothesis that there is a sophisticated tissue-specific regulatory mechanism for auxin biosynthesis. Finally, a strict requirement for maintaining the pool sizes of IAA was revealed as reductions in leaf expansion followed both decreases and increases in the IAA levels in developing leaves. This indicates that leaves are not only important sources for IAA synthesis, but that normal leaf expansion depends on rigorous control of IAA homeostasis.
引用
收藏
页码:465 / 474
页数:10
相关论文
共 26 条
[1]  
Bandurski Robert S., 1995, P39
[2]   The SUR2 gene of Arabidopsis thaliana encodes the cytochrome P450CYP83B1, a modulator of auxin homeostasis [J].
Barlier, I ;
Kowalczyk, M ;
Marchant, A ;
Ljung, K ;
Bhalerao, R ;
Bennett, M ;
Sandberg, G ;
Bellini, C .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2000, 97 (26) :14819-14824
[3]  
Bartel B, 1997, ANNU REV PLANT PHYS, V48, P49
[4]   Vascular development: tracing signals along veins [J].
Berleth, T ;
Mattsson, J .
CURRENT OPINION IN PLANT BIOLOGY, 2000, 3 (05) :406-411
[5]   AUXIN BIOSYNTHESIS DURING SEED-GERMINATION IN PHASEOLUS-VULGARIS [J].
BIALEK, K ;
MICHALCZUK, L ;
COHEN, JD .
PLANT PHYSIOLOGY, 1992, 100 (01) :509-517
[6]  
BOERJAN W, 1995, PLANT CELL, V7, P1405, DOI 10.1105/tpc.7.9.1405
[7]   Auxin transport promotes Arabidopsis lateral root initiation [J].
Casimiro, I ;
Marchant, A ;
Bhalerao, RP ;
Beeckman, T ;
Dhooge, S ;
Swarup, R ;
Graham, N ;
Inzé, D ;
Sandberg, G ;
Casero, PJ ;
Bennett, M .
PLANT CELL, 2001, 13 (04) :843-852
[8]  
COONEY TP, 1991, PLANTA, V184, P368, DOI 10.1007/BF00195339
[9]   Cell cycling and cell enlargement in developing leaves of Arabidopsis [J].
Donnelly, PM ;
Bonetta, D ;
Tsukaya, H ;
Dengler, RE ;
Dengler, NG .
DEVELOPMENTAL BIOLOGY, 1999, 215 (02) :407-419
[10]   A MICROSCALE TECHNIQUE FOR GAS-CHROMATOGRAPHY MASS-SPECTROMETRY MEASUREMENTS OF PICOGRAM AMOUNTS OF INDOLE-3-ACETIC-ACID IN PLANT-TISSUES [J].
EDLUND, A ;
EKLOF, S ;
SUNDBERG, B ;
MORITZ, T ;
SANDBERG, G .
PLANT PHYSIOLOGY, 1995, 108 (03) :1043-1047