Cargando…

Genetic deletion of fibroblast growth factor 14 recapitulates phenotypic alterations underlying cognitive impairment associated with schizophrenia

Cognitive processing is highly dependent on the functional integrity of gamma-amino-butyric acid (GABA) interneurons in the brain. These cells regulate excitability and synaptic plasticity of principal neurons balancing the excitatory/inhibitory tone of cortical networks. Reduced function of parvalb...

Descripción completa

Detalles Bibliográficos
Autores principales: Alshammari, T K, Alshammari, M A, Nenov, M N, Hoxha, E, Cambiaghi, M, Marcinno, A, James, T F, Singh, P, Labate, D, Li, J, Meltzer, H Y, Sacchetti, B, Tempia, F, Laezza, F
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5070049/
https://www.ncbi.nlm.nih.gov/pubmed/27163207
http://dx.doi.org/10.1038/tp.2016.66
_version_ 1782461062613827584
author Alshammari, T K
Alshammari, M A
Nenov, M N
Hoxha, E
Cambiaghi, M
Marcinno, A
James, T F
Singh, P
Labate, D
Li, J
Meltzer, H Y
Sacchetti, B
Tempia, F
Laezza, F
author_facet Alshammari, T K
Alshammari, M A
Nenov, M N
Hoxha, E
Cambiaghi, M
Marcinno, A
James, T F
Singh, P
Labate, D
Li, J
Meltzer, H Y
Sacchetti, B
Tempia, F
Laezza, F
author_sort Alshammari, T K
collection PubMed
description Cognitive processing is highly dependent on the functional integrity of gamma-amino-butyric acid (GABA) interneurons in the brain. These cells regulate excitability and synaptic plasticity of principal neurons balancing the excitatory/inhibitory tone of cortical networks. Reduced function of parvalbumin (PV) interneurons and disruption of GABAergic synapses in the cortical circuitry result in desynchronized network activity associated with cognitive impairment across many psychiatric disorders, including schizophrenia. However, the mechanisms underlying these complex phenotypes are still poorly understood. Here we show that in animal models, genetic deletion of fibroblast growth factor 14 (Fgf14), a regulator of neuronal excitability and synaptic transmission, leads to loss of PV interneurons in the CA1 hippocampal region, a critical area for cognitive function. Strikingly, this cellular phenotype associates with decreased expression of glutamic acid decarboxylase 67 (GAD67) and vesicular GABA transporter (VGAT) and also coincides with disrupted CA1 inhibitory circuitry, reduced in vivo gamma frequency oscillations and impaired working memory. Bioinformatics analysis of schizophrenia transcriptomics revealed functional co-clustering of FGF14 and genes enriched within the GABAergic pathway along with correlatively decreased expression of FGF14, PVALB, GAD67 and VGAT in the disease context. These results indicate that Fgf14(−/−) mice recapitulate salient molecular, cellular, functional and behavioral features associated with human cognitive impairment, and FGF14 loss of function might be associated with the biology of complex brain disorders such as schizophrenia.
format Online
Article
Text
id pubmed-5070049
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Nature Publishing Group
record_format MEDLINE/PubMed
spelling pubmed-50700492016-10-19 Genetic deletion of fibroblast growth factor 14 recapitulates phenotypic alterations underlying cognitive impairment associated with schizophrenia Alshammari, T K Alshammari, M A Nenov, M N Hoxha, E Cambiaghi, M Marcinno, A James, T F Singh, P Labate, D Li, J Meltzer, H Y Sacchetti, B Tempia, F Laezza, F Transl Psychiatry Original Article Cognitive processing is highly dependent on the functional integrity of gamma-amino-butyric acid (GABA) interneurons in the brain. These cells regulate excitability and synaptic plasticity of principal neurons balancing the excitatory/inhibitory tone of cortical networks. Reduced function of parvalbumin (PV) interneurons and disruption of GABAergic synapses in the cortical circuitry result in desynchronized network activity associated with cognitive impairment across many psychiatric disorders, including schizophrenia. However, the mechanisms underlying these complex phenotypes are still poorly understood. Here we show that in animal models, genetic deletion of fibroblast growth factor 14 (Fgf14), a regulator of neuronal excitability and synaptic transmission, leads to loss of PV interneurons in the CA1 hippocampal region, a critical area for cognitive function. Strikingly, this cellular phenotype associates with decreased expression of glutamic acid decarboxylase 67 (GAD67) and vesicular GABA transporter (VGAT) and also coincides with disrupted CA1 inhibitory circuitry, reduced in vivo gamma frequency oscillations and impaired working memory. Bioinformatics analysis of schizophrenia transcriptomics revealed functional co-clustering of FGF14 and genes enriched within the GABAergic pathway along with correlatively decreased expression of FGF14, PVALB, GAD67 and VGAT in the disease context. These results indicate that Fgf14(−/−) mice recapitulate salient molecular, cellular, functional and behavioral features associated with human cognitive impairment, and FGF14 loss of function might be associated with the biology of complex brain disorders such as schizophrenia. Nature Publishing Group 2016-05 2016-05-10 /pmc/articles/PMC5070049/ /pubmed/27163207 http://dx.doi.org/10.1038/tp.2016.66 Text en Copyright © 2016 Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article's Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Original Article
Alshammari, T K
Alshammari, M A
Nenov, M N
Hoxha, E
Cambiaghi, M
Marcinno, A
James, T F
Singh, P
Labate, D
Li, J
Meltzer, H Y
Sacchetti, B
Tempia, F
Laezza, F
Genetic deletion of fibroblast growth factor 14 recapitulates phenotypic alterations underlying cognitive impairment associated with schizophrenia
title Genetic deletion of fibroblast growth factor 14 recapitulates phenotypic alterations underlying cognitive impairment associated with schizophrenia
title_full Genetic deletion of fibroblast growth factor 14 recapitulates phenotypic alterations underlying cognitive impairment associated with schizophrenia
title_fullStr Genetic deletion of fibroblast growth factor 14 recapitulates phenotypic alterations underlying cognitive impairment associated with schizophrenia
title_full_unstemmed Genetic deletion of fibroblast growth factor 14 recapitulates phenotypic alterations underlying cognitive impairment associated with schizophrenia
title_short Genetic deletion of fibroblast growth factor 14 recapitulates phenotypic alterations underlying cognitive impairment associated with schizophrenia
title_sort genetic deletion of fibroblast growth factor 14 recapitulates phenotypic alterations underlying cognitive impairment associated with schizophrenia
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5070049/
https://www.ncbi.nlm.nih.gov/pubmed/27163207
http://dx.doi.org/10.1038/tp.2016.66
work_keys_str_mv AT alshammaritk geneticdeletionoffibroblastgrowthfactor14recapitulatesphenotypicalterationsunderlyingcognitiveimpairmentassociatedwithschizophrenia
AT alshammarima geneticdeletionoffibroblastgrowthfactor14recapitulatesphenotypicalterationsunderlyingcognitiveimpairmentassociatedwithschizophrenia
AT nenovmn geneticdeletionoffibroblastgrowthfactor14recapitulatesphenotypicalterationsunderlyingcognitiveimpairmentassociatedwithschizophrenia
AT hoxhae geneticdeletionoffibroblastgrowthfactor14recapitulatesphenotypicalterationsunderlyingcognitiveimpairmentassociatedwithschizophrenia
AT cambiaghim geneticdeletionoffibroblastgrowthfactor14recapitulatesphenotypicalterationsunderlyingcognitiveimpairmentassociatedwithschizophrenia
AT marcinnoa geneticdeletionoffibroblastgrowthfactor14recapitulatesphenotypicalterationsunderlyingcognitiveimpairmentassociatedwithschizophrenia
AT jamestf geneticdeletionoffibroblastgrowthfactor14recapitulatesphenotypicalterationsunderlyingcognitiveimpairmentassociatedwithschizophrenia
AT singhp geneticdeletionoffibroblastgrowthfactor14recapitulatesphenotypicalterationsunderlyingcognitiveimpairmentassociatedwithschizophrenia
AT labated geneticdeletionoffibroblastgrowthfactor14recapitulatesphenotypicalterationsunderlyingcognitiveimpairmentassociatedwithschizophrenia
AT lij geneticdeletionoffibroblastgrowthfactor14recapitulatesphenotypicalterationsunderlyingcognitiveimpairmentassociatedwithschizophrenia
AT meltzerhy geneticdeletionoffibroblastgrowthfactor14recapitulatesphenotypicalterationsunderlyingcognitiveimpairmentassociatedwithschizophrenia
AT sacchettib geneticdeletionoffibroblastgrowthfactor14recapitulatesphenotypicalterationsunderlyingcognitiveimpairmentassociatedwithschizophrenia
AT tempiaf geneticdeletionoffibroblastgrowthfactor14recapitulatesphenotypicalterationsunderlyingcognitiveimpairmentassociatedwithschizophrenia
AT laezzaf geneticdeletionoffibroblastgrowthfactor14recapitulatesphenotypicalterationsunderlyingcognitiveimpairmentassociatedwithschizophrenia