Regulation of circadian methyl benzoate emission in diurnally and nocturnally emitting plants

被引:221
作者
Kolosova, N [1 ]
Gorenstein, N [1 ]
Kish, CM [1 ]
Dudareva, N [1 ]
机构
[1] Purdue Univ, Dept Hort & Landscape Architecture, W Lafayette, IN USA
关键词
D O I
10.1105/tpc.13.10.2333
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
Emission of methyl benzoate, one of the most abundant scent compounds of bee-pollinated snapdragon flowers, occurs in a rhythmic manner, with maximum emission during the day, and coincides with the foraging activity of bumblebees. Rhythmic emission of methyl benzoate displays a "free-running" cycle in the absence of environmental cues (in continuous dark or continuous light), indicating the circadian nature of diurnal rhythmicity. Methyl benzoate is produced in upper and lower snapdragon petal lobes by enzymatic methylation of benzoic acid in the reaction catalyzed by S-adenosyl-L-methionine:benzoic acid carboxyl methyltransferase (BAMT). When a detailed time-course analysis of BAMT activity in upper and lower petal lobes during a 48-hr period was performed, high BAMT activity was found at night as well as in continuous darkness, indicating that the BAMT activity is not an oscillation-determining factor. Analysis of the level of benzoic acid during a 24-hr period revealed oscillations in the amount of benzoic acid during the daily light/dark cycle that were retained in continuous darkness. These data clearly show that the total amount of substrate (benzoic acid) in the cell is involved in the regulation of the rhythmic emission of methyl benzoate. Our results also suggest that similar molecular mechanisms are involved in the regulation of methyl benzoate production in diurnally (snapdragon) and nocturnally (tobacco and petunia) emitting plants.
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页码:2333 / 2347
页数:15
相关论文
共 55 条
[21]  
Heinrich B., 1979, Bumblebee Economics
[22]   Circadian rhythmicity in emission of volatile compounds by flowers of Rosa hybrida L. cv. Honesty [J].
Helsper, JPFG ;
Davies, JA ;
Bouwmeester, HJ ;
Krol, AF ;
van Kampen, MH .
PLANTA, 1998, 207 (01) :88-95
[23]   TEMPORAL AND SPATIAL CONTROL OF EXPRESSION OF ANTHOCYANIN BIOSYNTHETIC GENES IN DEVELOPING FLOWERS OF ANTIRRHINUM-MAJUS [J].
JACKSON, D ;
ROBERTS, K ;
MARTIN, C .
PLANT JOURNAL, 1992, 2 (04) :425-434
[24]   EMISSION OF VOLATILES FROM FLOWERS AND LEAVES OF BRASSICA-NAPUS IN-SITU [J].
JAKOBSEN, HB ;
FRIIS, P ;
NIELSEN, JK ;
OLSEN, CE .
PHYTOCHEMISTRY, 1994, 37 (03) :695-699
[25]  
JAKOBSEN HB, 1994, PLANTA, V192, P365
[26]   3-Hydroxy-3-phenylpropanoic acid is an intermediate in the biosynthesis of benzoic add and salicylic acid but benzaldehyde is not [J].
Jarvis, AP ;
Schaaf, O ;
Oldham, NJ .
PLANTA, 2000, 212 (01) :119-126
[27]  
Johnson C.H., 1998, BIOL RHYTHMS PHOTOPE, P1
[28]   Cellular and subcellular localization of S-adenosyl-L-methionine: Benzoic acid carboxyl methyltransferase, the enzyme responsible for biosynthesis of the volatile ester methylbenzoate in snapdragon flowers [J].
Kolosova, N ;
Sherman, D ;
Karlson, D ;
Dudareva, N .
PLANT PHYSIOLOGY, 2001, 126 (03) :956-964
[29]   Coordination of plant metabolism and development by the circadian clock [J].
Kreps, JA ;
Kay, SA .
PLANT CELL, 1997, 9 (07) :1235-1244
[30]   Purification, cloning, and expression of a pathogen inducible UDP-glucose: Salicylic acid glucosyltransferase from tobacco [J].
Lee, H ;
Raskin, I .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (51) :36637-36642