Dynamics and control of phloem loading of indole-3-acetic acid in seedling cotyledons of Ricinus communis

被引:6
作者
Tamas, Imre A. [1 ]
Davies, Peter J. [1 ]
机构
[1] Cornell Univ, Plant Biol Sect, Sch Integrat Plant Sci, Ithaca, NY 14853 USA
关键词
Cotyledons; germination; indole-3-acetic acid; loading pathways; NAA; PCMB; PCMBS; phloem loading; Ricinus; sucrose; TIBA; PLASMA-MEMBRANE VESICLES; PROTON-COTRANSPORT; AUXIN TRANSPORT; SUCROSE CARRIER; EXPRESSION ANALYSIS; VASCULAR TRANSPORT; ARABIDOPSIS; TISSUES; PLANT; ACID;
D O I
10.1093/jxb/erw255
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Indole-3-acetic acid is transported from the peri-cotyledonary space into the phloem of germinating Ricinus seedlings by both transmembrane carriers and diffusive pathways, with the cells of the cotyledons forming an intermediate reservoir.During seed germination, sugars and auxin are produced from stored precursors or conjugates respectively, and transported to the seedling axis. To elucidate the mode of travel of indole-3-acetic acid (IAA) into the phloem, a solution of [H-3]IAA, together with [C-14]sucrose, was injected into the endosperm cavity harboring the cotyledons of germinating seedlings of Ricinus communis. Phloem exudate from the cut hypocotyl was collected and the radioactivity recorded. Sucrose loading into the phloem was inhibited at higher IAA levels, and the rate of filling of the transient pool(s) was reduced by IAA. IAA was detected within 10min, with the concentration increasing over 30min and reaching a steady-state by 60min. The kinetics indicated that phloem loading of IAA involving both an active, carrier-based, and a passive, diffusion-based component, with IAA traveling along a pathway containing an intermediary pool, possibly the protoplasts of mesophyll cells. Phloem loading of IAA was altered by sucrose, K+, and a range of non-specific and IAA-specific analogs and inhibitors in a manner that showed that IAA moves into the phloem from the extra cotyledonary solution by multiple pathways, with a carrier-mediated pathway playing a principal role.
引用
收藏
页码:4755 / 4765
页数:11
相关论文
共 43 条
[21]  
Komor E, 1991, RECENT ADV PHLOEM TR, P301
[22]   SUGAR UPTAKE AND TRANSLOCATION IN CASTOR BEAN SEEDLING .I. CHARACTERISTICS OF TRANSFER IN INTACT AND EXCISED SEEDLINGS [J].
KRIEDEMA.P ;
BEEVERS, H .
PLANT PHYSIOLOGY, 1967, 42 (02) :161-&
[23]   Phloem loading and unloading of sugars and amino acids [J].
Lalonde, S ;
Tegeder, M ;
Throne-Holst, M ;
Frommer, WB ;
Patrick, JW .
PLANT CELL AND ENVIRONMENT, 2003, 26 (01) :37-56
[24]   SUCROSE UPTAKE BY DEVELOPING SOYBEAN COTYLEDONS [J].
LICHTNER, FT ;
SPANSWICK, RM .
PLANT PHYSIOLOGY, 1981, 68 (03) :693-698
[25]   EFFECT OF FUSICOCCIN ON PROTON CO-TRANSPORT OF SUGARS IN PHLOEM LOADING OF RICINUS-COMMUNIS L [J].
MALEK, T ;
BAKER, DA .
PLANT SCIENCE LETTERS, 1978, 11 (3-4) :233-239
[26]   AUX1 regulates root gravitropism in Arabidopsis by facilitating auxin uptake within root apical tissues [J].
Marchant, A ;
Kargul, J ;
May, ST ;
Muller, P ;
Delbarre, A ;
Perrot-Rechenmann, C ;
Bennett, MJ .
EMBO JOURNAL, 1999, 18 (08) :2066-2073
[27]   AUX1 promotes lateral root formation by facilitating indole-3-acetic acid distribution between sink and source tissues in the Arabidopsis seedling [J].
Marchant, A ;
Bhalerao, R ;
Casimiro, I ;
Eklöf, J ;
Casero, PJ ;
Bennett, M ;
Sandberg, G .
PLANT CELL, 2002, 14 (03) :589-597
[28]  
Mattsson J, 1999, DEVELOPMENT, V126, P2979
[29]   Auxin signaling in Arabidopsis leaf vascular development [J].
Mattsson, J ;
Ckurshumova, W ;
Berleth, T .
PLANT PHYSIOLOGY, 2003, 131 (03) :1327-1339
[30]   SUCROSE AND GLUCOSE-UPTAKE INTO BETA-VULGARIS LEAF TISSUES - A CASE FOR GENERAL (APOPLASTIC) RETRIEVAL-SYSTEMS [J].
MAYNARD, JW ;
LUCAS, WJ .
PLANT PHYSIOLOGY, 1982, 70 (05) :1436-1443