Self-organization of the vascular system in plant leaves: Inter-dependent dynamics of auxin flux and carrier proteins

被引:98
作者
Feugier, FG [1 ]
Mochizuki, A
Iwasa, Y
机构
[1] Kyushu Univ, Fac Sci, Dept Biol, Fukuoka 8128581, Japan
[2] Univ Paris 06, Dept Ecol, F-75006 Paris, France
[3] Natl Inst Basic Biol, Div Theoret Biol, Okazaki, Aichi 4448585, Japan
基金
日本学术振兴会;
关键词
self-organization; auxin; efflux carrier protein; leaf vein; vascular network; branching pattern;
D O I
10.1016/j.jtbi.2005.03.017
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The vegetative hormone Auxin is involved in vascular tissues formation throughout the plant. Trans-membrane carrier proteins transporting auxin from cell to cell and distributed asymmetrically around each cell give to auxin a polarized movement in tissues, creating streams of auxin that presume future vascular bundles. According to the canalization hypothesis, auxin transport ability of cells is thought to increase with auxin flux, resulting in the self-enhancement of this flux along auxin paths. In this study we evaluate a series of models based on canalization hypothesis using carrier proteins, under different assumptions concerning auxin flux formation and carrier protein dynamics. Simulations are run on a hexagonal lattice with uniform auxin production. A single cell located in the margin of the lattice indicates the petiole, and acts as an auxin sink. The main results are: (1) We obtain branching auxin distribution patterns. (2) The type of self-enhancement described by the functional form of the carrier proteins regulation responding to the auxin flux intensity in different parts of a cell, has a strong effect on the possibility of generating the branching patterns. For response functions with acceleration in the increase of carrier protein numbers compared to the auxin flux, branching patterns are likely to be generated. For linear or decelerating response functions, no branching patterns are formed. (3) When branching patterns are formed, auxin distribution greatly differs between the case in which the number of carrier proteins in different parts of a cell are regulated independently, and the case in which different parts of a cell compete for a limited number of carrier proteins. In the former case, the auxin level is lower in veins than in the surrounding tissue, while in the latter, the auxin is present in greater abundance in veins. These results suggest that canalization is a good candidate for describing plant vein pattern formation. (c) 2005 Elsevier Ltd. All rights reserved.
引用
收藏
页码:366 / 375
页数:10
相关论文
共 28 条
[1]   Indole acetic acid distribution coincides with vascular differentiation pattern during Arabidopsis leaf ontogeny [J].
Avsian-Kretchmer, O ;
Cheng, JC ;
Chen, LJ ;
Moctezuma, E ;
Sung, ZR .
PLANT PHYSIOLOGY, 2002, 130 (01) :199-209
[2]   Vascular continuity, cell axialisation and auxin [J].
Berleth, T ;
Mattsson, J ;
Hardtke, CS .
PLANT GROWTH REGULATION, 2000, 32 (2-3) :173-185
[3]  
BOHN S, 2002, PHYS REV E
[4]   Genetic regulation of vascular tissue patterning in Arabidopsis [J].
Carland, FM ;
Berg, BL ;
FitzGerald, JN ;
Jinamornphongs, S ;
Nelson, T ;
Keith, B .
PLANT CELL, 1999, 11 (11) :2123-2137
[5]   The leaf venation as formed in a tensorial field [J].
Couder, Y ;
Pauchard, L ;
Allain, C ;
Adda-Bedia, M ;
Douady, S .
EUROPEAN PHYSICAL JOURNAL B, 2002, 28 (02) :135-138
[6]  
Deyholos MK, 2000, DEVELOPMENT, V127, P3205
[7]  
FUJITA H, IN PRESS J THEORET B
[8]   Signals that control plant vascular cell differentiation [J].
Fukuda, H .
NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2004, 5 (05) :379-391
[9]   Auxin transport inhibitors block PIN1 cycling and vesicle traficking [J].
Geldner, N ;
Friml, J ;
Stierhof, YD ;
Jürgens, G ;
Palme, K .
NATURE, 2001, 413 (6854) :425-428
[10]  
GOLDSMITH M, 1997, ANNU REV PLANT PHYS, V28, P349