DISCRIMINATION OF OILSEED RAPE VOLATILES BY HONEY-BEE - NOVEL COMBINED GAS-CHROMATOGRAPHIC ELECTROPHYSIOLOGICAL BEHAVIORAL ASSAY

被引:32
作者
WADHAMS, LJ
BLIGHT, MM
KERGUELEN, V
LEMETAYER, M
MARIONPOLL, F
MASSON, C
PHAMDELEGUE, MH
WOODCOCK, CM
机构
[1] INRA,NEUROBIOL COMPAREE INVERTEBRES LAB,CNRS,URA 1190,F-91440 BURES SUR YVETTE,FRANCE
[2] AFRC,INST ARABLE CROPS RES,ROTHAMSTED EXPTL STN,DEPT BIOL & ECOL CHEM,HARPENDEN AL5 2JQ,HERTS,ENGLAND
[3] INRA,PHYTOPHARM STN,F-78026 VERSAILLES,FRANCE
关键词
HONEY BEE; APIS MELLIFERA; HYMENOPTERA; APIDAE; GAS CHROMATOGRAPHY; ELECTROANTENNOGRAM; CONDITIONED PROBOSCIS EXTENSION; OLFACTORY DISCRIMINATION;
D O I
10.1007/BF02033722
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
A novel technique for the simultaneous monitoring of electroantennogram (EAG) and conditioned proboscis extension (CPE) responses of honey bees to the effluent from a gas chromatograph (GC) was developed to locate biologically active components in blends of plant volatiles and to investigate odor recognition at the peripheral and behavioral levels. A six-component mixture, comprising compounds previously identified as oilseed rape floral volatiles, was used as the stimulus. Standard CPE and EAG recordings were done as a reference. EAG responses were elicited from unconditioned bees by all the components presented either in the coupled or the standard mode. Conditioned bees gave larger EAG responses than unconditioned bees, suggesting that antennal sensitivity is enhanced by conditioning. At the behavioral level, in both the standard and the coupled modes, only conditioned bees showed the proboscis extension response, with the majority of individuals responding to linalool, 2-phenylethanol, and benzyl alcohol.
引用
收藏
页码:3221 / 3231
页数:11
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