| Literature DB >> 28955723 |
Annie Liu1,2,3, Nathaniel N Urban1,2,4,3.
Abstract
Early sensory experience shapes the anatomy and function of sensory circuits. In the mouse olfactory bulb (OB), prenatal and early postnatal odorant exposure through odorized food (food/odorant pairing) not only increases the volume of activated glomeruli but also increases the number of mitral and tufted cells (M/TCs) connected to activated glomeruli. Given the importance of M/TCs in OB output and in mediating lateral inhibitory networks, increasing the number of M/TCs connected to a single glomerulus may significantly change odorant representation by increasing the total output of that glomerulus and/or by increasing the strength of lateral inhibition mediated by cells connected to the affected glomerulus. Here, we seek to understand the functional impact of this long-term odorant exposure paradigm on the population activity of mitral cells (MCs). We use viral expression of GCaMP6s to examine odor-evoked responses of MCs following prenatal and early postnatal odorant exposure to two dissimilar odorants, methyl salicylate (MS) and hexanal, which are both strong activators of glomeruli on the dorsal OB surface. Previous work suggests that odor familiarity may decrease odor-evoked MC response in rodents. However, we find that early food-based odorant exposure significantly changes MC responses in an unexpected way, resulting in broad increases in the amplitude, number, and reliability of excitatory MC responses across the dorsal OB.Entities:
Keywords: mitral cells; olfaction; olfactory bulb; plasticity
Mesh:
Substances:
Year: 2017 PMID: 28955723 PMCID: PMC5613225 DOI: 10.1523/ENEURO.0129-17.2017
Source DB: PubMed Journal: eNeuro ISSN: 2373-2822
Figure 1.Odor-evoked calcium responses in the MC layer. , Odorized food exposure lasted through the entirety of gestation and the postnatal period until imaging. Virus injection into the dorsal OB was done at P12-P30. Imaging was performed two to three weeks after virus injection. , The dorsal OB was imaged during stimulus presentation using a custom-built 2-channel olfactometer with airflow provided by an aquarium pump. , The MC layer was imaged with manual ROI selection. Four cells are labeled, with corresponding odor-evoked responses shown in . White scale bar: 25 µm. Black bar indicates 1-s odor stimulus.
Figure 2.Response characteristics. , Integrated ΔF/F and baseline fluorescence are not correlated. , Peak ΔF/F and baseline fluorescence are not correlated. , Peak and integrated ΔF/F are strongly correlated. , Kernel density estimation (KDE) describing response distribution across all cells and odorants in control, hexanal-exposed, and mint-exposed mice (statistically significant distributions between groups). , KDE describing response distribution across cells in control, hexanal-exposed, and mint-exposed male mice. , KDE describing response distribution across cells in control, hexanal-exposed, and mint-exposed female mice. Gray asterisk, statistically significant difference between mint and control groups; blue asterisk, statistically significant difference between hexanal and control; red asterisk, statistically significant difference between hexanal and mint.
Figure 3.Odor exposure increases median Peak ΔF/F of MC response to odorants at 1% concentration by volume. , Boxplot describing distribution of peak odor-evoked ΔF/F of MC response to odorants at 1% concentration by volume. , Median peak ΔF/F across all odorants at 1% concentration by volume. Gray asterisk, statistically significant difference between mint and control groups; blue asterisk, statistically significant difference between hexanal and control; red asterisk, statistically significant difference between hexanal and mint.
Figure 4.Odor exposure increases median Peak ΔF/F of MC response to odorants across concentrations. Mint-exposed and hexanal-exposed MCs have higher medians of peak ΔF/F across all concentrations of MS (), IAA (), and hexanal (). There were no significant differences in response distribution between concentrations for any exposure group.
Comparisons of excitatory response amplitude, 1% odorant concentration
| Comparison | Test | Significant | Median control (C) | Median mint (M) | Median hexanal (H) | |
|---|---|---|---|---|---|---|
| IAA 10%; H vs M | Dunn's | 0.0967 | No | 0.3547 | 0.3697 | |
| EB; H vs M | Dunn's | 0.6847 | No | 0.3254 | 0.3204 | |
| Hexanone; H vs M | Dunn's | 0.8052 | No | 0.4161 | 0.421 | |
| Hexanal 10%; H vs M | Dunn's | 0.9975 | No | 0.3768 | 0.3778 | |
| ThA; H vs M | Dunn's | 0.2795 | No | 0.2183 | 0.2415 | |
Statistical test results of excitatory response amplitudes of cells from control, mint-, and hexanal-exposed groups in response to odorants at 1% concentration. Data shown in Figure 3.
Comparisons of excitatory response amplitude, multiple concentrations
| Comparison | Test | Significant | Median control (C) | Median mint (M) | Median hexanal (H) | |
|---|---|---|---|---|---|---|
Statistical test results of excitatory response amplitudes of cells from control, mint-, and hexanal-exposed groups in response to odorants at 1%, 5%, and 10% concentration. Data shown in Figure 4.
Figure 5.Odor exposure increases number of excitatory MC responses. , Ratio of above-threshold excitatory responses to all odor presentation trials across odorants. Odor-exposure groups had significantly higher ratio of excitatory responses as compared to control groups for odors at 1% concentration () and multiple concentrations (--). , MCs in all groups responded to a high number of odorants (median number of odorants: control, 13; mint exposed, 14; hexanal exposed, 14). Gray asterisk, statistically significant difference between mint and control groups; blue asterisk, statistically significant difference between hexanal and control groups.
Proportion of excitatory responses
| Comparison | Test | Significant | Median control (C) | Median mint (M) | Median hexanal (H) | |
|---|---|---|---|---|---|---|
| All odors; H vs M | Tukey's | No | 0.9235 | 0.9377 | ||
| H vs M | Tukey's | p>0.9999 | No | 14 | 14 |
Comparisons of proportion of excitatory odor-evoked responses from control, mint-, and hexanal-exposed groups. Data shown in Figure 5.
Figure 6.Odor exposure increases the rate of successful responses to odorant presentation. , Ratio of successful trials above threshold (3 SD above baseline) to total trials of odorant presentation increases in odor-exposed groups across specific odorants at 1% concentration () and multiple concentrations of MS () and IAA (), but not hexanal (). , Summed across all trials, odor-exposed groups had higher overall ratio of successful trials. Gray asterisk, statistically significant difference between mint and control groups; blue asterisk, statistically significant difference between hexanal and control; red asterisk, statistically significant difference between hexanal and mint.
Reliability of excitatory responses
| Comparison | Test | Median control (C) | Median mint (M) | Median hexanal (H) | |
|---|---|---|---|---|---|
| All odors combined; H vs M | Dunn's | 0.0836 | 1 | 1 | |
| EB; C vs H | Dunn's | 0.5476 | 1 | 1 | |
| EB; H vs M | Dunn's | 0.2351 | 1 | 1 | |
| Hexanal 1%; all groups | Kruskal--Wallis | 0.0596 | 1 | 1 | 1 |
| Hexanal 1%; C vs M | Dunn's | 0.7821 | 1 | 1 | |
| Hexanal 1%; C vs H | Dunn's | 0.0562 | 1 | 1 | |
| Hexanal 1%; H vs M | Dunn's | 0.6464 | 1 | 1 | |
| Hexanone; all groups | Kruskal--Wallis | 0.1165 | 1 | 1 | 1 |
| Hexanone; C vs M | Dunn's | 0.1277 | 1 | 1 | |
| Hexanone; C vs H | Dunn's | 0.3668 | 1 | 1 | |
| Hexanone; H vs M | Dunn's | >0.9999 | 1 | 1 | |
| IAA 1% all groups | Kruskal--Wallis | 0.0902 | 1 | 1 | 1 |
| IAA 1%; C vs M | Dunn's | 0.4431 | 1 | 1 | |
| IAA 1%; C vs H | Dunn's | 0.0867 | 1 | 1 | |
| IAA 1%; H vs M | Dunn's | >0.9999 | 1 | 1 | |
| MS 1%; H vs M | Dunn's | >0.9999 | 1 | 1 | |
| THA; H vs M | Dunn's | 0.9588 | 1 | 1 | |
| MS 5%; H vs M | Dunn's | >0.9999 | 1 | 1 | |
| MS 10%; H vs M | Dunn's | >0.9999 | 1 | 1 | |
| Hexanal 5%; C vs M | Dunn's | 0.4815 | 1 | 1 | |
| Hexanal 5%; H vs M | Dunn's | 0.1031 | 1 | 1 | |
| Hexanal 10%; H vs M | Dunn's | 0.81 | 1 | 1 | |
| IAA 5%; H vs M | Dunn's | 0.4956 | 1 | 1 | |
| IAA 10%; H vs M | Dunn's | 0.8374 | 1 | 1 |
Comparisons of excitatory response reliability from control, mint-, and hexanal-exposed groups. Data shown in Figure 6.
Figure 7.Odor ranking changes for specific odorants following odor exposure. , Response rank for each odor calculated on a cell-by-cell basis. Odorants at 1% concentration displayed. -, Response rank for multiple concentrations of MS (), IAA (), and hexanal (). , Table of significant differences in odorant ranks for each group comparison. Gray asterisk, statistically significant difference between mint and control groups; blue asterisk, statistically significant difference between hexanal and control; red asterisk, statistically significant difference between hexanal and mint.
Comparison of odor ranks
| Comparison | Test | Significant | Median control (C) | Median mint (M) | Median hexanal (H) | |
|---|---|---|---|---|---|---|
| AP; C vs M | Dunn's | 0.417 | No | 5 | 4 | |
| EB; C vs M | Dunn's | 0.2086 | No | 10 | 10 | |
| EB; H vs M | Dunn's | >0.9999 | No | 10 | 11 | |
| Hexanal 1%; C vs M | Dunn's | >0.9999 | No | 10 | 10 | |
| PA; H vs M | Dunn's | 0.0908 | No | 5 | 7 | |
| THA; C vs M | Dunn's | >0.9999 | No | 5 | 5 | |
| MS 5%; H vs M | Dunn's | 0.4328 | No | 6 | 5 | |
| MS 10%; all groups | Kruskal--Wallis | 0.0731 | No | 5 | 5 | 4 |
| MS 10%; C vs M | Dunn's | >0.9999 | No | 5 | 5 | |
| MS 10%; C vs H | Dunn's | 0.1503 | No | 5 | 4 | |
| MS 10%; H vs M | Dunn's | 0.1864 | No | 5 | 4 | |
| IAA 5%; all groups | Kruskal--Wallis | 0.1561 | No | 7 | 7 | 6 |
| IAA 5%; C vs M | Dunn's | 0.3965 | No | 7 | 7 | |
| IAA 5%; C vs H | Dunn's | 0.1912 | No | 7 | 6 | |
| IAA 5%; H vs M | Dunn's | >0.9999 | No | 7 | 6 | |
| IAA 10%; all groups | Kruskal--Wallis | 0.3245 | No | 10 | 9 | 9 |
| IAA 10%; C vs M | Dunn's | 0.6739 | No | 10 | 9 | |
| IAA 10%; C vs H | Dunn's | 0.4643 | No | 10 | 9 | |
| IAA 10%; H vs M | Dunn's | >0.9999 | No | 9 | 9 | |
| Hexanal 5%; C vs M | Dunn's | >0.9999 | No | 12 | 12 | |
| Hexanal 10%; C vs H | Dunn's | 0.7317 | No | 9 | 9 | |
Statistical test results of odor ranks between control, mint-, and hexanal-exposed groups. Data shown in Figure 7.
Figure 8.MCs display acute habituation following repeated short odor pulses. , Odor stimulus (hexanal at 1% concentration) was presented for 50 s followed by 5 min of room air, with stimulus repeated four times. MC odor-evoked response was captured before stimulus presentation, 5 min after final 50-s odor stimulus, and 30 min after final 50-s odor stimulus. , Normalized change in odor response between prestimulus and 5-min or 30-min poststimulus. Significant decrease in odor response was observed at both time points poststimulus; * indicates statistically significant comparison.
Statistical values
| Statistical values | Data structure | Type of test | Power |
|
| |||
| Distribution of responses; all groups; | Non-normal | Kruskal--Wallis | KW statistic: 912.64 |
| Distribution of responses; C vs M; | Non-normal | Tukey's | 95% CI: -1.8211 to -1.4263 |
| Distribution of responses; C vs H; | Non-normal | Tukey's | 95% CI: -2.5607 to -2.1911 |
| Distribution of responses; H vs M; | Non-normal | Tukey's | 95% CI: -0.9273 to -0.577 |
|
| |||
| Excitation amplitude; IAA 10%; all groups; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; IAA 10%; C (med: 0.216) vs M (0.3547); | Non-normal | Tukey's | |
| Excitation amplitude; IAA 10%; C vs H (med: 0.3697); | Non-normal | Tukey's | |
| Excitation amplitude; IAA 10%; H vs M; | Non-normal | Tukey's | |
| Excitation amplitude; IAA 1%; all groups; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; IAA 1%; C (med: 0.2018) vs M (0.2389); | Non-normal | Tukey's | |
| Excitation amplitude; IAA 1%; C vs H (0.3306); | Non-normal | Tukey's | |
| Excitation amplitude; IAA 1%; H vs M; | Non-normal | Tukey's | |
| Excitation amplitude; AP; all groups; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; AP; C (med: 0.1081) vs M (0.1837); | Non-normal | Tukey's | |
| Excitation amplitude; AP; C vs H (med: 0.2822); | Non-normal | Tukey's | |
| Excitation amplitude; AP; H vs M; | Non-normal | Tukey's | |
| Excitation amplitude; MS 10%; all groups; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; MS 10%; C (med: 0.1026) vs M (0.1961); | Non-normal | Tukey's | |
| Excitation amplitude; MS 10%; C vs H (med: 0.2566); | Non-normal | Tukey's | |
| Excitation amplitude; MS 10%; H vs M; | Non-normal | Tukey's | |
| Excitation amplitude; IAA 5%; all groups; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; IAA 5%; C (med: 0.1404) vs M (0.2386); | Non-normal | Tukey's | |
| Excitation amplitude; IAA 5%; C vs H (med: 0.2973); | Non-normal | Tukey's | |
| Excitation amplitude; IAA 5%; H vs M; | Non-normal | Tukey's | |
| Excitation amplitude; Hexanal 1%; all groups; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; Hexanal 1%; C (med: 0.2409) vs M (0.3421); | Non-normal | Tukey's | |
| Excitation amplitude; Hexanal 1%; C vs H (med: 0.4718); | Non-normal | Tukey's | |
| Excitation amplitude; Hexanal 1%; H vs M; | Non-normal | Tukey's | |
| Excitation amplitude; EB; all groups; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; EB; C (med: 0.2262) vs M (0.3254); | Non-normal | Tukey's | |
| Excitation amplitude; EB; C vs H (0.3204); | Non-normal | Tukey's | |
| Excitation amplitude; EB; H vs M; | Non-normal | Tukey's | |
| Excitation amplitude; MS 1%; all groups; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; MS 1%; C (med: 0.1167) vs M (0.1641); | Non-normal | Tukey's | |
| Excitation amplitude; MS 1%; C vs H (med: 0.1933); | Non-normal | Tukey's | |
| Excitation amplitude; MS 1%; H vs M; | Non-normal | Tukey's | |
| Excitation amplitude; PA; all groups; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; PA; C (med: 0.0733) vs M (0.2004); | Non-normal | Tukey's | |
| Excitation amplitude; PA; C vs H (med: 0.2511); | Non-normal | Tukey's | |
| Excitation amplitude; PA; H vs M; | Non-normal | Tukey's | |
| Excitation amplitude; MS 5%; all groups; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; MS 5%; C (med: 0.0777) vs M (0.1796); | Non-normal | Tukey's | |
| Excitation amplitude; MS 5%; C vs H (med: 0.2503); | Non-normal | Tukey's | |
| Excitation amplitude; MS 5%; H vs M; | Non-normal | Tukey's | |
| Excitation amplitude; Hexanone; all groups; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; Hexanone; C (med: 0.3185) vs M (0.4161); | Non-normal | Tukey's | |
| Excitation amplitude; Hexanone; C vs H (med: 0.421); | Non-normal | Tukey's | |
| Excitation amplitude; Hexanone; H vs M; | Non-normal | Tukey's | |
| Excitation amplitude; Hexanal 10%; all groups; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; Hexanal 10%; C (med: 0.2438) vs M (0.3768); | Non-normal | Tukey's | |
| Excitation amplitude; Hexanal 10%; C vs H (med: 0.3778); | Non-normal | Tukey's | |
| Excitation amplitude; Hexanal 10%; H vs M; | Non-normal | Tukey's | |
| Excitation amplitude; THA; all groups; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; THA; C (med: 0.1171) vs M (0.2183); | Non-normal | Tukey's | |
| Excitation amplitude; THA; C vs H (med: 0.2415); | Non-normal | Tukey's | |
| Excitation amplitude; THA; H vs M; | Non-normal | Tukey's | |
| Excitation amplitude; Hexanal 5%; all groups; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; Hexanal 5%; C (med: 0.2758) vs M (0.3534); | Non-normal | Tukey's | |
| Excitation amplitude; Hexanal 5%; C vs H (med: 0.5212); | Non-normal | Tukey's | |
| Excitation amplitude; Hexanal 5%; H vs M; | Non-normal | Tukey's | |
|
| Non-normal | ||
| Non-normal | |||
| Excitation amplitude; MS; all conc.; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; MS; 1% (med: 0.1167) vs 5% (0.0777); | Non-normal | Tukey's | |
| Excitation amplitude; MS; 1% vs 10% (med: 0.1026); | Non-normal | Tukey's | |
| Excitation amplitude; MS; 5% vs 10%; | Non-normal | Tukey's | |
| Excitation amplitude; IAA; all conc.; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; IAA; 1% (med: 0.2018) vs 5% (0.1404); | Non-normal | Tukey's | |
| Excitation amplitude; IAA; 1% vs 10% (med: 0.216); | Non-normal | Tukey's | |
| Excitation amplitude; IAA; 5% vs 10%; | Non-normal | Tukey's | |
| Excitation amplitude; hexanal; all conc.; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; hexanal; 1% (med: 0.2409) vs 5% (0.2758); | Non-normal | Tukey's | |
| Excitation amplitude; hexanal; 1% vs 10% (med: 0.2438); | Non-normal | Tukey's | |
| Excitation amplitude; hexanal; 5% vs 10%; | Non-normal | Tukey's | |
| Excitation amplitude; MS; all conc.; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; MS; 1% (med: 0.1641) vs 5% (0.1796); | Non-normal | Tukey's | |
| Excitation amplitude; MS; 1% vs 10% (med: 0.1961); | Non-normal | Tukey's | |
| Excitation amplitude; MS; 5% vs 10%; | Non-normal | Tukey's | |
| Excitation amplitude; IAA; all conc.; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; IAA; 1% (med: 0.2389) vs 5% (0.2386); | Non-normal | Tukey's | |
| Excitation amplitude; IAA; 1% vs 10% (med: 0.3547); | Non-normal | Tukey's | |
| Excitation amplitude; IAA; 5% vs 10%; | Non-normal | Tukey's | |
| Excitation amplitude; hexanal; all conc.; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; hexanal; 1% (med: 0.3421) vs 5% (0.3534); | Non-normal | Tukey's | |
| Excitation amplitude; hexanal; 1% vs 10% (med: 0.3768); | Non-normal | Tukey's | |
| Excitation amplitude; hexanal; 5% vs 10%; | Non-normal | Tukey's | |
| Excitation amplitude; MS; all conc.; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; MS; 1% (med: 0.1933) vs 5% (0.2503); | Non-normal | Tukey's | |
| Excitation amplitude; MS; 1% vs 10% (med: 0.2566); | Non-normal | Tukey's | |
| Excitation amplitude; MS; 5% vs 10%; | Non-normal | Tukey's | |
| Excitation amplitude; IAA; all conc.; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; IAA; 1% (med: 0.3306) vs 5% (0.2973); | Non-normal | Tukey's | |
| Excitation amplitude; IAA; 1% vs 10% (0.3697); | Non-normal | Tukey's | |
| Excitation amplitude; IAA; 5% vs 10%; | Non-normal | Tukey's | |
| Excitation amplitude; hexanal; all conc.; | Non-normal | Kruskal--Wallis | |
| Excitation amplitude; hexanal; 1% (0.4718) vs 5% (0.5212); | Non-normal | Tukey's | |
| Excitation amplitude; hexanal; 1% vs 10% (0.3778); | Non-normal | Tukey's | |
| Excitation amplitude; hexanal; 5% vs 10%; | Non-normal | Tukey's | |
|
| |||
| Ratio of excitatory events; all odors; | Normal | ANOVA | |
| Ratio of excitatory events; all odors: C (med: 0.88) vs M (0.9235); | Normal | Tukey's | |
| Ratio of excitatory events; all odors: C vs H (med: 0.9377); | Normal | Tukey's | |
| Ratio of excitatory events; all odors: H vs M; | Normal | Tukey's | |
| Ratio of activating odors; all groups; | Non-normal | Kruskal--Wallis | |
| Ratio of activating odors; C (med: 13) vs, M (14); | Non-normal | Dunn's | |
| Ratio of activating odors; C vs H (med: 14); | Non-normal | Dunn's | |
| Ratio of activating odors; H vs M; p>0.9999 | Non-normal | Dunn's | |
|
| |||
| Successes; AP; all groups; | Non-normal | Kruskal--Wallis | |
| Successes; AP; C (med: 0.75) vs M (1); | Non-normal | Dunn's | |
| Successes; AP; C vs H (med: 1); | Non-normal | Dunn's | |
| Successes; AP; H vs M; | Non-normal | Dunn's | |
| Successes; EB; all groups; | Non-normal | Kruskal--Wallis | |
| Successes; EB; C (med: 1) vs M (1); | Non-normal | Dunn's | |
| Successes; EB; C vs H (1); | Non-normal | Dunn's | |
| Successes; EB; H vs M; | Non-normal | Dunn's | |
| Successes; Hexanal 1%; all groups; | Non-normal | Kruskal--Wallis | |
| Successes; Hexanal 1%; C (med: 1) vs M (med: 1); | Non-normal | Dunn's | |
| Successes; Hexanal 1%; C vs H (med: 1); | Non-normal | Dunn's | |
| Successes; Hexanal 1%; H vs M; | Non-normal | Dunn's | |
| Successes; Hexanone; all groups; | Non-normal | Kruskal--Wallis | |
| Successes; Hexanone; C (med: 1) vs M (1); | Non-normal | Dunn's | |
| Successes; Hexanone; C vs H (1); | Non-normal | Dunn's | |
| Successes; Hexanone; H vs M; p>0.9999 | Non-normal | Dunn's | |
| Successes; IAA 1%; all groups; | Non-normal | Kruskal--Wallis | |
| Successes; IAA 1%; C (med: 1) vs M (1); | Non-normal | Dunn's | |
| Successes; IAA 1%; C vs H (1); | Non-normal | Dunn's | |
| Successes; IAA 1%; H vs M; | Non-normal | Dunn's | |
| Successes; MS 1%; all groups; | Non-normal | Kruskal--Wallis | |
| Successes; MS 1%; C (med: 0.75) vs M (1); | Non-normal | Dunn's | |
| Successes; MS 1%; C vs H (1); | Non-normal | Dunn's | |
| Successes; MS 1%; H vs M; | Non-normal | Dunn's | |
| Successes; PA; all groups; | Non-normal | Kruskal--Wallis | |
| Successes; PA; C (med: 0.75) vs M (1); | Non-normal | Dunn's | |
| Successes; PA; C vs H (1); | Non-normal | Dunn's | |
| Successes; PA; H vs M; | Non-normal | Dunn's | |
| Successes; THA; all groups; | Non-normal | Kruskal--Wallis | |
| Successes; THA; C (med: 0.75); vs M (1); | Non-normal | Dunn's | |
| Successes; THA; C vs H (1); | Non-normal | Dunn's | |
| Successes; THA; H vs M; | Non-normal | Dunn's | |
| Successes; MS 5%; all groups; | Non-normal | Kruskal--Wallis | |
| Successes; MS 5%; C (med: 0.75) vs M (1); | Non-normal | Dunn's | |
| Successes; MS 5%; C vs H (med: 1); | Non-normal | Dunn's | |
| Successes; MS 5%; H vs M; | Non-normal | Dunn's | |
| Successes; MS 10%; all groups; | Non-normal | Kruskal--Wallis | |
| Successes; MS 10%; C (med: 0.75) vs M (1); | Non-normal | Dunn's | |
| Successes; MS 10%; C vs H (med: 1); | Non-normal | Dunn's | |
| Successes; MS 10%; H vs M; | Non-normal | Dunn's | |
| Successes; Hexanal 5%; all groups; | Non-normal | Kruskal--Wallis | |
| Successes; Hexanal 5%; C (med: 1) vs M (1); | Non-normal | Dunn's | |
| Successes; Hexanal 5%; C vs H (med: 1); | Non-normal | Dunn's | |
| Successes; Hexanal 5%; H vs M; | Non-normal | Dunn's | |
| Successes; Hexanal 10%; all groups; | Non-normal | Kruskal--Wallis | |
| Successes; Hexanal 10%; C (med: 1) vs M (1); | Non-normal | Dunn's | |
| Successes; Hexanal 10%; C vs H (med: 1); | Non-normal | Dunn's | |
| Successes; Hexanal 10%; H vs M; | Non-normal | Dunn's | |
| Successes; IAA 5%; all groups; | Non-normal | Kruskal--Wallis | |
| Successes; IAA 5%; C (med: 1) vs M (1); | Non-normal | Dunn's | |
| Successes; IAA 5%; C vs H (med: 1); | Non-normal | Dunn's | |
| Successes; IAA 5%; H vs M; | Non-normal | Dunn's | |
| Successes; IAA 10%; all groups; | Non-normal | Kruskal--Wallis | |
| Successes; IAA 10%; C (med: 1) vs M (1); | Non-normal | Dunn's | |
| Successes; IAA 10%; C vs H (med: 1); | Non-normal | Dunn's | |
| Successes; IAA 10%; H vs M; | Non-normal | Dunn's | |
| Successes; All odors combined; all groups; | Non-normal | Kruskal--Wallis | |
| Successes; All odors combined; C (med: 1) vs M (1); | Non-normal | Dunn's | |
| Successes; All odors combined; C vs H (med: 1); | Non-normal | Dunn's | |
| Successes; All odors combined; H vs M, | Non-normal | Dunn's | |
|
| |||
| Comparison of ranks; AP; all groups; | Non-normal | Kruskal--Wallis | |
| Comparison of ranks; AP; C (med: 5) vs M (4); | Non-normal | Dunn's | |
| Comparison of ranks; AP; C vs H (med: 6); | Non-normal | Dunn's | |
| Comparison of ranks; AP; H vs M; | Non-normal | Dunn's | |
| Comparison of ranks; EB; all groups; | Non-normal | Kruskal--Wallis | |
| Comparison of ranks; EB; C (med: 10) vs M (10); | Non-normal | Dunn's | |
| Comparison of ranks; EB; C vs H (med: 11); | Non-normal | Dunn's | |
| Comparison of ranks; EB; H vs M; p>0.9999 | Non-normal | Dunn's | |
| Comparison of ranks; Hex 1%; all groups; | Non-normal | Kruskal--Wallis | |
| Comparison of ranks; Hex 1%; C (med: 10) vs M (10); p>0.9999 | Non-normal | Dunn's | |
| Comparison of ranks; Hex 1%; C vs H (med: 12); | Non-normal | Dunn's | |
| Comparison of ranks; Hex 1%; H vs M; | Non-normal | Dunn's | |
| Comparison of ranks; Hexanone; all groups; | Non-normal | Kruskal--Wallis | |
| Comparison of ranks; Hexanone; C (med: 13) vs M (11); | Non-normal | Dunn's | |
| Comparison of ranks; Hexanone; C vs H (med: 11); | Non-normal | Dunn's | |
| Comparison of ranks; Hexanone; H vs M; | Non-normal | Dunn's | |
| Comparison of ranks; IAA 1%; all groups; | Non-normal | Kruskal--Wallis | |
| Comparison of ranks; IAA 1%; C (med: 9) vs M (6); | Non-normal | Dunn's | |
| Comparison of ranks; IAA 1%; C vs H (med: 7); | Non-normal | Dunn's | |
| Comparison of ranks; IAA 1%; H vs M; | Non-normal | Dunn's | |
| Comparison of ranks; MS 1%; all groups; | Non-normal | Kruskal--Wallis | |
| Comparison of ranks; MS 1%; C (med: 5) vs M (3); | Non-normal | Dunn's | |
| Comparison of ranks; MS 1%; C vs H (med: 3); | Non-normal | Dunn's | |
| Comparison of ranks; MS 1%; H vs M; | Non-normal | Dunn's | |
| Comparison of ranks; PA; all groups; | Non-normal | Kruskal--Wallis | |
| Comparison of ranks; PA; C (med: 4) vs M (5); | Non-normal | Dunn's | |
| Comparison of ranks; PA; C vs H (med: 7); | Non-normal | Dunn's | |
| Comparison of ranks; PA; H vs M; | Non-normal | Dunn's | |
| Comparison of ranks; THA; all groups; | Non-normal | Kruskal--Wallis | |
| Comparison of ranks; THA; C (med: 5) vs M (5); p>0.9999 | Non-normal | Dunn's | |
| Comparison of ranks; THA; C vs H (med: 4); | Non-normal | Dunn's | |
| Comparison of ranks; THA; H vs M; | Non-normal | Dunn's | |
| Comparison of ranks; MS 5%; all groups; | Non-normal | Kruskal--Wallis | |
| Comparison of ranks; MS 5%; C (med: 4) vs M (6); | Non-normal | Dunn's | |
| Comparison of ranks; MS 5%; C vs H (med: 5); | Non-normal | Dunn's | |
| Comparison of ranks; MS 5%; H vs M; | Non-normal | Dunn's | |
| Comparison of ranks; MS 10%; all groups; | Non-normal | Kruskal--Wallis | |
| Comparison of ranks; MS 10%; C (med: 5) vs M (5); p>0.999 | Non-normal | Dunn's | |
| Comparison of ranks; MS 10%; C vs H (4); | Non-normal | Dunn's | |
| Comparison of ranks; MS 10%; H vs M; | Non-normal | Dunn's | |
| Comparison of ranks; IAA 5%; all groups; | Non-normal | Kruskal--Wallis | |
| Comparison of ranks; IAA 5%; C (med: 7) vs M (7); | Non-normal | Dunn's | |
| Comparison of ranks; IAA 5%; C vs H (med: 6); | Non-normal | Dunn's | |
| Comparison of ranks; IAA 5%; H vs M; p>0.9999 | Non-normal | Dunn's | |
| Comparison of ranks; IAA 10%; all groups; | Non-normal | Kruskal--Wallis | |
| Comparison of ranks; IAA 10%; C (med: 10) vs M (9); | Non-normal | Dunn's | |
| Comparison of ranks; IAA 10%; C vs H (med: 9); | Non-normal | Dunn's | |
| Comparison of ranks; IAA 10%; H vs M; | Non-normal | Dunn's | |
| Comparison of ranks; Hex 5%; all groups; | Non-normal | Kruskal--Wallis | |
| Comparison of ranks; Hex 5%; C (med: 12) vs M (12); | Non-normal | Dunn's | |
| Comparison of ranks; Hex 5%; C vs H (med: 12); | Non-normal | Dunn's | |
| Comparison of ranks; Hex 5%; H vs M; | Non-normal | Dunn's | |
| Comparison of ranks; Hex 10%; all groups; | Non-normal | Kruskal--Wallis | |
| Comparison of ranks; Hex 10%; C (med: 9) vs M (12); | Non-normal | Dunn's | |
| Comparison of ranks; Hex 10%; C vs H (9); | Non-normal | Dunn's | |
| Comparison of ranks; Hex 10%; H vs M; | Non-normal | Dunn's | |
|
| |||
| Habituation; all groups; | Non-normal | Friedman Test | Friedman statistic: 46.52 |
| Habituation; Pre vs 5 min Post; | Non-normal | Tukey's | |
| Habituation; Pre vs 30 min Post; | Non-normal | Tukey's | |
| Habituation; 5 vs 30 min Post; | Non-normal | Tukey's | |