A specific area of olfactory cortex involved in stress hormone responses to predator odours.

PubWeight™: 0.85‹?›

🔗 View Article (PMID 27001694)

Published in Nature on March 21, 2016

Authors

Kunio Kondoh1, Zhonghua Lu1, Xiaolan Ye1, David P Olson2, Bradford B Lowell2, Linda B Buck1

Author Affiliations

1: Howard Hughes Medical Institute, Basic Sciences Division, Fred Hutchinson Cancer Research Center, 1100 Fairview Avenue North, Seattle, Washington 98109, USA.
2: Division of Endocrinology, Diabetes and Metabolism, Department of Medicine, Beth Israel Deaconess Medical Center and Harvard Medical School, Boston, Massachusetts 02115, USA.

Articles cited by this

A novel multigene family may encode odorant receptors: a molecular basis for odor recognition. Cell (1991) 18.19

Visualizing an olfactory sensory map. Cell (1996) 8.79

Evolving the lock to fit the key to create a family of G protein-coupled receptors potently activated by an inert ligand. Proc Natl Acad Sci U S A (2007) 7.96

Neural regulation of endocrine and autonomic stress responses. Nat Rev Neurosci (2009) 6.12

Production and purification of lentiviral vectors. Nat Protoc (2006) 6.01

Cortical excitatory neurons and glia, but not GABAergic neurons, are produced in the Emx1-expressing lineage. J Neurosci (2002) 5.68

Environment-specific expression of the immediate-early gene Arc in hippocampal neuronal ensembles. Nat Neurosci (1999) 5.19

Rapid, reversible activation of AgRP neurons drives feeding behavior in mice. J Clin Invest (2011) 5.12

Leptin action on GABAergic neurons prevents obesity and reduces inhibitory tone to POMC neurons. Neuron (2011) 4.88

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

A second class of chemosensory receptors in the olfactory epithelium. Nature (2006) 4.74

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

A zonal organization of odorant receptor gene expression in the olfactory epithelium. Cell (1993) 4.42

Innate versus learned odour processing in the mouse olfactory bulb. Nature (2007) 4.19

Spatial segregation of odorant receptor expression in the mammalian olfactory epithelium. Cell (1993) 3.53

Cortical representations of olfactory input by trans-synaptic tracing. Nature (2010) 3.27

Virus-assisted mapping of neural inputs to a feeding center in the hypothalamus. Science (2001) 2.98

The effects of predator odors in mammalian prey species: a review of field and laboratory studies. Neurosci Biobehav Rev (2005) 2.98

The vomeronasal organ mediates interspecies defensive behaviors through detection of protein pheromone homologs. Cell (2010) 2.88

A directional strategy for monitoring Cre-mediated recombination at the cellular level in the mouse. Nat Biotechnol (2003) 2.65

Feedback loops link odor and pheromone signaling with reproduction. Cell (2005) 2.28

Distinct representations of olfactory information in different cortical centres. Nature (2011) 2.26

An excitatory paraventricular nucleus to AgRP neuron circuit that drives hunger. Nature (2014) 2.13

The organization of forebrain afferents to the paraventricular and supraoptic nuclei of the rat. J Comp Neurol (1983) 2.03

Sensory maps in the olfactory cortex defined by long-range viral tracing of single neurons. Nature (2011) 1.70

The participation of cortical amygdala in innate, odour-driven behaviour. Nature (2014) 1.18

Single-cell transcriptomics reveals receptor transformations during olfactory neurogenesis. Science (2015) 1.14

Olfactory systems and neural circuits that modulate predator odor fear. Front Behav Neurosci (2014) 1.06

Transneuronal circuit analysis with pseudorabies viruses. Curr Protoc Neurosci (2001) 0.99

Rose odor can innately counteract predator odor. Brain Res (2011) 0.86

Construction and analysis of alphaherpesviruses expressing green fluorescent protein. Methods Mol Biol (2009) 0.78