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1.
Elife ; 92020 11 24.
Artigo em Inglês | MEDLINE | ID: mdl-33231170

RESUMO

Understanding how genes and experience work in concert to generate phenotypic variability will provide a better understanding of individuality. Here, we considered this in the main olfactory epithelium, a chemosensory structure with over a thousand distinct cell types in mice. We identified a subpopulation of olfactory sensory neurons, defined by receptor expression, whose abundances were sexually dimorphic. This subpopulation of olfactory sensory neurons was over-represented in sex-separated mice and robustly responsive to sex-specific semiochemicals. Sex-combined housing led to an attenuation of the dimorphic representations. Single-cell sequencing analysis revealed an axis of activity-dependent gene expression amongst a subset of the dimorphic OSN populations. Finally, the pro-apoptotic gene Baxwas necessary to generate the dimorphic representations. Altogether, our results suggest a role of experience and activity in influencing homeostatic mechanisms to generate a robust sexually dimorphic phenotype in the main olfactory epithelium.


Assuntos
Plasticidade Neuronal , Odorantes , Mucosa Olfatória/inervação , Neurônios Receptores Olfatórios/fisiologia , Feromônios/metabolismo , Olfato , Criação de Animais Domésticos , Animais , Variação Biológica da População , Feminino , Regulação da Expressão Gênica , Masculino , Camundongos Endogâmicos C57BL , Camundongos Knockout , Mucosa Olfatória/metabolismo , Neurônios Receptores Olfatórios/metabolismo , RNA-Seq , Receptores Odorantes/genética , Receptores Odorantes/metabolismo , Caracteres Sexuais , Fatores Sexuais , Análise de Célula Única , Fatores de Tempo , Proteína X Associada a bcl-2/genética , Proteína X Associada a bcl-2/metabolismo
2.
eNeuro ; 7(2)2020.
Artigo em Inglês | MEDLINE | ID: mdl-32015097

RESUMO

A fundamental challenge in studying principles of organization used by the olfactory system to encode odor concentration information has been identifying comprehensive sets of activated odorant receptors (ORs) across a broad concentration range inside freely behaving animals. In mammals, this has recently become feasible with high-throughput sequencing-based methods that identify populations of activated ORs in vivo In this study, we characterized the mouse OR repertoires activated by the two odorants, acetophenone (ACT) and 2,5-dihydro-2,4,5-trimethylthiazoline (TMT), from 0.01% to 100% (v/v) as starting concentrations using phosphorylated ribosomal protein S6 capture followed by RNA-Seq. We found Olfr923 to be one of the most sensitive ORs that is enriched by ACT. Using a mouse line that genetically labels Olfr923-positive axons, we provided evidence that ACT activates the Olfr923 glomeruli in the olfactory bulb. Through molecular dynamics stimulations, we identified amino acid residues in the Olfr923 binding cavity that facilitate ACT binding. This study sheds light on the active process by which unique OR repertoires may collectively facilitate the discrimination of odorant concentrations.


Assuntos
Neurônios Receptores Olfatórios , Receptores Odorantes , Animais , Mamíferos/metabolismo , Odorantes , Bulbo Olfatório/metabolismo , Neurônios Receptores Olfatórios/metabolismo , Receptores Odorantes/genética , Receptores Odorantes/metabolismo , Olfato
3.
J Vis Exp ; (146)2019 04 23.
Artigo em Inglês | MEDLINE | ID: mdl-31081824

RESUMO

Olfactory perception begins with the interaction of odorants with odorant receptors (OR) expressed by olfactory sensory neurons (OSN). Odor recognition follows a combinatorial coding scheme, where one OR can be activated by a set of odorants and one odorant can activate a combination of ORs. Through such combinatorial coding, organisms can detect and discriminate between a myriad of volatile odor molecules. Thus, an odor at a given concentration can be described by an activation pattern of ORs, which is specific to each odor. In that sense, cracking the mechanisms that the brain uses to perceive odor requires the understanding odorant-OR interactions. This is why the olfaction community is committed to "de-orphanize" these receptors. Conventional in vitro systems used to identify odorant-OR interactions have utilized incubating cell media with odorant, which is distinct from the natural detection of odors via vapor odorants dissolution into nasal mucosa before interacting with ORs. Here, we describe a new method that allows for real-time monitoring of OR activation via vapor-phase odorants. Our method relies on measuring cAMP release by luminescence using the Glosensor assay. It bridges current gaps between in vivo and in vitro approaches and provides a basis for a biomimetic volatile chemical sensor.


Assuntos
Odorantes , Receptores Odorantes/metabolismo , Linhagem Celular , AMP Cíclico/metabolismo , Humanos , Mucosa Nasal/efeitos dos fármacos , Mucosa Nasal/metabolismo , Mucosa Nasal/fisiologia , Percepção Olfatória/efeitos dos fármacos , Volatilização
4.
Nat Commun ; 9(1): 4556, 2018 11 01.
Artigo em Inglês | MEDLINE | ID: mdl-30385742

RESUMO

Olfactory systems have evolved the extraordinary capability to detect and discriminate volatile odorous molecules (odorants) in the environment. Fundamentally, this process relies on the interaction of odorants and their cognate olfactory receptors (ORs) encoded in the genome. Here, we conducted a cell-based screen using over 800 mouse ORs against seven odorants, resulting in the identification of a set of high-affinity and/or broadly-tuned ORs. We then test whether heterologously expressed ORs respond to odors presented in vapor phase by individually expressing 31 ORs to measure cAMP responses against vapor phase odor stimulation. Comparison of response profiles demonstrates this platform is capable of discriminating between structural analogs. Lastly, co-expression of carboxyl esterase Ces1d expressed in olfactory mucosa resulted in marked changes in activation of specific odorant-OR combinations. Altogether, these results establish a cell-based volatile odor detection and discrimination platform and form the basis for an OR-based volatile odor sensor.


Assuntos
Odorantes , Mucosa Olfatória/metabolismo , Neurônios Receptores Olfatórios/metabolismo , Receptores Odorantes/metabolismo , Acetofenonas , Aldeídos , Animais , Benzoatos , Hidrolases de Éster Carboxílico/metabolismo , AMP Cíclico/metabolismo , Cicloexanonas , Discriminação Psicológica , Eugenol , Cetonas , Camundongos , Proteínas dos Microfilamentos , Percepção Olfatória , Pentanóis
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