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Psychometric Functions for Ternary Odor Mixtures and Their Unmixed Components

Overview
Journal Chem Senses
Specialty Biochemistry
Date 2009 Sep 24
PMID 19773409
Citations 3
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Abstract

People are often able to reliably detect a mixture of 2 or more odorants, even if they cannot reliably detect the individual mixture components when presented individually. This phenomenon has been called mixture agonism. However, for some mixtures, agonism among mixture components is greater in barely detectable mixtures than in more easily detectable mixtures (level dependence). Most studies that have used rigorous methods have focused on simple, 2-component (binary) mixtures. The current work takes the next logical step to study detection of 3-component (ternary) mixtures. Psychometric functions were measured for 5 unmixed compounds and for 3 ternary mixtures of these compounds (2 of 5, forced-choice method). Experimenters used air dilution olfactometry to precisely control the duration and concentration of stimuli and used gas chromatography/mass spectrometry to verify vapor-phase concentrations. For 2 of the 3 mixtures, agonism was approximately additive in general agreement with similar work on binary mixtures. A third mixture was no more detectable than the most detectable component, demonstrating a lack of agonism. None of the 3 mixtures showed evidence of level dependence. Agonism may be common in ternary mixtures, but general rules of mixture interaction have yet to emerge. For now, detection of any mixture must be measured empirically.

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References
1.
Yokoi M, Mori K, Nakanishi S . Refinement of odor molecule tuning by dendrodendritic synaptic inhibition in the olfactory bulb. Proc Natl Acad Sci U S A. 1995; 92(8):3371-5. PMC: 42168. DOI: 10.1073/pnas.92.8.3371. View

2.
Lotsch J, Reichmann H, Hummel T . Different odor tests contribute differently to the evaluation of olfactory loss. Chem Senses. 2007; 33(1):17-21. DOI: 10.1093/chemse/bjm058. View

3.
Moskowitz H, Barbe C . Profiling of odor components and their mixtures. Sens Processes. 1977; 1(3):212-26. View

4.
Thomas-Danguin T, Chastrette M . [Odor intensity of binary mixtures of odorous compounds]. C R Biol. 2002; 325(7):767-72. DOI: 10.1016/s1631-0691(02)01485-3. View

5.
Wise P, Miyazawa T, Gallagher M, Preti G . Human odor detection of homologous carboxylic acids and their binary mixtures. Chem Senses. 2007; 32(5):475-82. DOI: 10.1093/chemse/bjm016. View