Effects of functional group position on spatial representations of aliphatic odorants in the rat olfactory bulb.

PubWeight™: 1.05‹?› | Rank: Top 15%

🔗 View Article (PMC 2222918)

Published in J Comp Neurol on March 07, 2005

Authors

Brett A Johnson1, Haleh Farahbod, Sepideh Saber, Michael Leon

Author Affiliations

1: Department of Neurobiology and Behavior, University of California, Irvine, Irvine, CA 92697-4550, USA. bajohnso@uci.edu

Articles citing this

Chemotopic odorant coding in a mammalian olfactory system. J Comp Neurol (2007) 2.13

Dynamic sensory representations in the olfactory bulb: modulation by wakefulness and experience. Neuron (2012) 1.57

SenseLab: new developments in disseminating neuroscience information. Brief Bioinform (2007) 1.56

Predicting odorant quality perceptions from multidimensional scaling of olfactory bulb glomerular activity patterns. Behav Neurosci (2006) 1.17

Processing and classification of chemical data inspired by insect olfaction. Proc Natl Acad Sci U S A (2007) 1.12

Interactions between odorant functional group and hydrocarbon structure influence activity in glomerular response modules in the rat olfactory bulb. J Comp Neurol (2005) 1.08

Long hydrocarbon chains serve as unique molecular features recognized by ventral glomeruli of the rat olfactory bulb. J Comp Neurol (2006) 1.03

Odorants with multiple oxygen-containing functional groups and other odorants with high water solubility preferentially activate posterior olfactory bulb glomeruli. J Comp Neurol (2007) 0.96

Differential responses to branched and unsaturated aliphatic hydrocarbons in the rat olfactory system. J Comp Neurol (2006) 0.96

Chemotopic representations of aromatic odorants in the rat olfactory bulb. J Comp Neurol (2006) 0.96

Olfactory discrimination varies in mice with different levels of α7-nicotinic acetylcholine receptor expression. Brain Res (2010) 0.96

Spatial representations of odorants in olfactory bulbs of rats and mice: similarities and differences in chemotopic organization. J Comp Neurol (2009) 0.93

Differential specificity in the glomerular response profiles for alicyclic, bicyclic, and heterocyclic odorants. J Comp Neurol (2006) 0.88

Detailed Characterization of Local Field Potential Oscillations and Their Relationship to Spike Timing in the Antennal Lobe of the Moth Manduca sexta. Front Neuroeng (2011) 0.85

Effects of double and triple bonds on the spatial representations of odorants in the rat olfactory bulb. J Comp Neurol (2007) 0.81

Effect of aging on hedonic appreciation of pleasant and unpleasant odors. PLoS One (2013) 0.81

Olfactory discrimination ability of CD-1 mice for aliphatic aldehydes as a function of stimulus concentration. J Comp Physiol A Neuroethol Sens Neural Behav Physiol (2007) 0.78

Space Takes Time: Concentration Dependent Output Codes from Primary Olfactory Networks Rapidly Provide Additional Information at Defined Discrimination Thresholds. Front Cell Neurosci (2016) 0.75

Articles cited by this

Visualizing an olfactory sensory map. Cell (1996) 8.79

Combinatorial receptor codes for odors. Cell (1999) 8.63

Multiple comparisons: philosophies and illustrations. Am J Physiol Regul Integr Comp Physiol (2000) 5.79

Speed and accuracy of olfactory discrimination in the rat. Nat Neurosci (2003) 4.94

Information coding in the olfactory system: evidence for a stereotyped and highly organized epitope map in the olfactory bulb. Cell (1994) 4.79

Topographic organization of sensory projections to the olfactory bulb. Cell (1994) 4.74

Optical imaging of odorant representations in the mammalian olfactory bulb. Neuron (1999) 3.65

Representation of odorants by receptor neuron input to the mouse olfactory bulb. Neuron (2001) 3.48

In vivo imaging of neuronal activity by targeted expression of a genetically encoded probe in the mouse. Neuron (2004) 3.40

Refinement of odor molecule tuning by dendrodendritic synaptic inhibition in the olfactory bulb. Proc Natl Acad Sci U S A (1995) 3.26

Odor maps in the mammalian olfactory bulb: domain organization and odorant structural features. Nat Neurosci (2000) 3.09

Modular representations of odorants in the glomerular layer of the rat olfactory bulb and the effects of stimulus concentration. J Comp Neurol (2000) 2.79

Tuning and topography in an odor map on the rat olfactory bulb. J Neurosci (2001) 2.48

Spatio-temporal dynamics of odor representations in the mammalian olfactory bulb. Neuron (2002) 2.28

Behavioral models of odor similarity. Behav Neurosci (2002) 2.05

Olfactory coding in the mammalian olfactory bulb. Brain Res Brain Res Rev (2003) 1.91

Mitral and tufted cells differ in the decoding manner of odor maps in the rat olfactory bulb. J Neurophysiol (2004) 1.84

Perceptual correlates of neural representations evoked by odorant enantiomers. J Neurosci (2001) 1.81

Functional organization of rat olfactory bulb analysed by the 2-deoxyglucose method. J Comp Neurol (1979) 1.77

Localization of functional activity in the central nervous system by measurement of glucose utilization with radioactive deoxyglucose. J Cereb Blood Flow Metab (1981) 1.71

The spatial representation of chemical structures in the antennal lobe of honeybees: steps towards the olfactory code. Eur J Neurosci (1999) 1.55

Odor-induced increases in c-fos mRNA expression reveal an anatomical "unit" for odor processing in olfactory bulb. Proc Natl Acad Sci U S A (1993) 1.54

Functional mapping of the rat olfactory bulb using diverse odorants reveals modular responses to functional groups and hydrocarbon structural features. J Comp Neurol (2002) 1.52

A pharmacological profile of the aldehyde receptor repertoire in rat olfactory epithelium. J Physiol (2004) 1.45

Multidimensional chemotopic responses to n-aliphatic acid odorants in the rat olfactory bulb. J Comp Neurol (1999) 1.42

Spatial coding of odorant features in the glomerular layer of the rat olfactory bulb. J Comp Neurol (1998) 1.38

Topographic representation of odorant molecular features in the rat olfactory bulb. J Neurophysiol (2004) 1.36

Variability of position of the P2 glomerulus within a map of the mouse olfactory bulb. J Comp Neurol (2001) 1.33

Local permutations in the glomerular array of the mouse olfactory bulb. J Neurosci (2000) 1.29

Enhanced neural response to familiar olfactory cues. Science (1984) 1.28

Local and global chemotopic organization: general features of the glomerular representations of aliphatic odorants differing in carbon number. J Comp Neurol (2004) 1.28

Local sites of activity-related glucose metabolism in rat olfactory bulb during olfactory stimulation. Brain Res (1975) 1.26

Laminar analysis of 2-deoxyglucose uptake in olfactory bulb and olfactory cortex of rabbit and rat. J Neurophysiol (1977) 1.24

Odorant molecular length: one aspect of the olfactory code. J Comp Neurol (2000) 1.16

Correspondence between odorant-evoked patterns of receptor neuron input and intrinsic optical signals in the mouse olfactory bulb. J Neurophysiol (2002) 1.15

Spatial distribution of [14C]2-deoxyglucose uptake in the olfactory bulbs of rats stimulated with two different odours. Brain Res (1980) 1.11

A learned odor evokes an enhanced Fos-like glomerular response in the olfactory bulb of young rats. Brain Res (1995) 1.08

Modified behavioral and olfactory bulb responses to maternal odors in preweanling rats. Brain Res Dev Brain Res (1990) 1.07

C-fos expression and 2-deoxyglucose uptake in the olfactory bulb of odour-stimulated awake rats. Neuroreport (1993) 1.02

Functional mapping of odor-activated neurons in the olfactory bulb. Chem Senses (1995) 0.97

Early unilateral deprivation modifies olfactory bulb function. J Neurosci (1990) 0.96

Spatial distribution of [14C]2-deoxyglucose uptake in the glomerular layer of the rat olfactory bulb following early odor preference learning. J Comp Neurol (1996) 0.91

Odors regulate Arc expression in neuronal ensembles engaged in odor processing. Neuroreport (2000) 0.86

Specificity of spatial patterns of glomerular activation in the mouse olfactory bulb: computer-assisted image analysis of 2-deoxyglucose autoradiograms. Brain Res (1987) 0.85

Odor-induced metabolic activity in the olfactory bulb of rats trained to detect propionic acid vapor. Brain Res (1989) 0.79

Odor representation and discrimination in mitral/tufted cells of the rat olfactory bulb. Exp Brain Res (1996) 0.79

Articles by these authors

Chemotopic odorant coding in a mammalian olfactory system. J Comp Neurol (2007) 2.13

Relational representation in the olfactory system. Proc Natl Acad Sci U S A (2007) 1.61

Environmental enrichment as an effective treatment for autism: a randomized controlled trial. Behav Neurosci (2013) 1.58

Spontaneous versus reinforced olfactory discriminations. J Neurosci (2002) 1.53

Functional mapping of the rat olfactory bulb using diverse odorants reveals modular responses to functional groups and hydrocarbon structural features. J Comp Neurol (2002) 1.52

Local and global chemotopic organization: general features of the glomerular representations of aliphatic odorants differing in carbon number. J Comp Neurol (2004) 1.28

Predicting odorant quality perceptions from multidimensional scaling of olfactory bulb glomerular activity patterns. Behav Neurosci (2006) 1.17

Interactions between odorant functional group and hydrocarbon structure influence activity in glomerular response modules in the rat olfactory bulb. J Comp Neurol (2005) 1.08

Glomerular activity patterns evoked by natural odor objects in the rat olfactory bulb are related to patterns evoked by major odorant components. J Comp Neurol (2010) 1.04

Long hydrocarbon chains serve as unique molecular features recognized by ventral glomeruli of the rat olfactory bulb. J Comp Neurol (2006) 1.03

Chemotopic representations of aromatic odorants in the rat olfactory bulb. J Comp Neurol (2006) 0.96

Odorants with multiple oxygen-containing functional groups and other odorants with high water solubility preferentially activate posterior olfactory bulb glomeruli. J Comp Neurol (2007) 0.96

Differential responses to branched and unsaturated aliphatic hydrocarbons in the rat olfactory system. J Comp Neurol (2006) 0.96

Exposure to a broad range of odorants decreases cell mortality in the olfactory bulb. Neuroreport (2006) 0.94

Spatial representations of odorants in olfactory bulbs of rats and mice: similarities and differences in chemotopic organization. J Comp Neurol (2009) 0.93

Associative Processes in Early Olfactory Preference Acquisition: Neural and Behavioral Consequences. Psychobiology (Austin, Tex) (1989) 0.92

Differential specificity in the glomerular response profiles for alicyclic, bicyclic, and heterocyclic odorants. J Comp Neurol (2006) 0.88

Broad activation of the glomerular layer enhances subsequent olfactory responses. Chem Senses (2006) 0.86

A sex difference in the response to fasting. Physiol Behav (2011) 0.83

The scaphotrapezial joint after partial trapeziectomy for trapeziometacarpal joint arthritis: long-term follow-up. J Hand Surg Am (2012) 0.83

Effects of double and triple bonds on the spatial representations of odorants in the rat olfactory bulb. J Comp Neurol (2007) 0.81

Spatiotemporal distribution of the insulin-like growth factor receptor in the rat olfactory bulb. Neurochem Res (2003) 0.81

Cluster analysis of rat olfactory bulb responses to diverse odorants. Chem Senses (2012) 0.80

Internucleosomal DNA fragmentation during deprived and non-deprived olfactory development. Brain Res (2002) 0.79

Flexor tendon tissue engineering: temporal distribution of donor tenocytes versus recipient cells. Plast Reconstr Surg (2009) 0.79

Detection of large interaural delays and its implication for models of binaural interaction. J Assoc Res Otolaryngol (2002) 0.77

Prolonged stimulus exposure reveals prolonged neurobehavioral response patterns. J Comp Neurol (2010) 0.77

Children eat their school lunch too quickly: an exploratory study of the effect on food intake. BMC Public Health (2012) 0.76

Computed tomography angiography in microsurgery: indications, clinical utility, and pitfalls. Eplasty (2013) 0.75

A model of persistent post SARS-CoV-2 induced lung disease for target identification and testing of therapeutic strategies. bioRxiv (2022) 0.75

Cost-return prediction in morbidly obese employees following weight loss interventions: a study framework. Conf Proc IEEE Eng Med Biol Soc (2007) 0.75