Recent developments in auxin biology and new opportunities for auxinic herbicide research

被引:73
作者
Kelley, Kevin B. [1 ]
Riechers, Dean E. [1 ]
机构
[1] Univ Illinois, Dept Crop Sci, Urbana, IL 61801 USA
关键词
auxin biosynthesis; auxinic herbicide; auxin homeostasis; auxin receptor; herbicide detection; herbicide resistance; phytohormone; phytotoxicity; plant growth regulator; signal transduction; TIRI; AFB; ABP1;
D O I
10.1016/j.pestbp.2007.04.002
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Auxinic herbicides mimic the effects of natural auxin. However, in spite of decades of research, the site(s) of action of auxinic herbicides has remained unknown and many physiological aspects of their function are unclear. Recent advances in auxin biology provide new opportunities for research into the mode of action of auxinic herbicides. Of considerable interest is the discovery of auxin receptors (TIR1 and possibly ABP1) that may lead to the discovery of auxinic herbicide site(s) of action. Knowledge of auxin-conjugating enzymes and auxin signal transduction components may shed new light on herbicide activity, selectivity in dicots, and mechanisms leading to phytotoxicity in sensitive plants. Analysis of genes induced in response to auxin may provide a novel approach for detection of off-target herbicide injury in crops. For example, the auxin-responsive gene GH3 is highly and specifically induced in response to auxinic herbicides in soybean, and may offer a novel method for diagnosing auxinic herbicide injury. Advances in our understanding of auxin biology will provide many new avenues and opportunities for auxinic herbicide research in the future. (C) 2007 Elsevier Inc. All rights reserved.
引用
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页码:1 / 11
页数:11
相关论文
共 109 条
[1]   Early genes and auxin action [J].
Abel, S ;
Theologis, A .
PLANT PHYSIOLOGY, 1996, 111 (01) :9-17
[2]   Soybean foliage residues of dicamba and 2,4-D and correlation to application rates and yield [J].
Andersen, SM ;
Clay, SA ;
Wrage, LJ ;
Matthees, D .
AGRONOMY JOURNAL, 2004, 96 (03) :750-760
[3]   PROTON EFFLUX FROM OAT COLEOPTILE CELLS AND EXCHANGE WITH WALL CALCIUM AFTER IAA OR FUSICOCCIN TREATMENT [J].
ARIF, I ;
NEWMAN, IA .
PLANTA, 1993, 189 (03) :377-383
[4]   Herbicide-resistant weeds: Management tactics and practices [J].
Beckie, Hugh J. .
WEED TECHNOLOGY, 2006, 20 (03) :793-814
[5]  
BELLES DS, 2005, WEED SCI SOC AM AMST, V45, P50
[6]   Involvement of calcium in auxin-induced cell differentiation in the protonema of the wild strain and auxin mutants of the moss Funaria hygrometrica [J].
Bhatla, SC ;
Kapoor, S ;
Khurana, JP .
JOURNAL OF PLANT PHYSIOLOGY, 1996, 147 (05) :547-552
[7]   Loss of GH3 function does not affect phytochrome- mediated development in a moss, Physcomitrella patens [J].
Bierfreund, NM ;
Tintelnot, S ;
Reski, R ;
Decker, EL .
JOURNAL OF PLANT PHYSIOLOGY, 2004, 161 (07) :823-835
[8]  
BOERBOOM C, 2004, P WISCONSIN FERTILIZ, V43, P406
[9]   Auxin acts in xylem-associated or medullary cells to mediate apical dominance [J].
Booker, J ;
Chatfield, S ;
Leyser, O .
PLANT CELL, 2003, 15 (02) :495-507
[10]   Auxin transport synchronizes the pattern of cell division in a tobacco cell line [J].
Campanoni, P ;
Blasius, B ;
Nick, P .
PLANT PHYSIOLOGY, 2003, 133 (03) :1251-1260