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Convergent cerebrospinal fluid proteomes and metabolic ontologies in humans and animal models of Rett syndrome

MECP2 loss-of-function mutations cause Rett syndrome, a neurodevelopmental disorder resulting from a disrupted brain transcriptome. How these transcriptional defects are decoded into a disease proteome remains unknown. We studied the proteome of Rett cerebrospinal fluid (CSF) to identify consensus R...

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Autores principales: Zlatic, Stephanie A., Duong, Duc, Gadalla, Kamal K.E., Murage, Brenda, Ping, Lingyan, Shah, Ruth, Fink, James J., Khwaja, Omar, Swanson, Lindsay C., Sahin, Mustafa, Rayaprolu, Sruti, Kumar, Prateek, Rangaraju, Srikant, Bird, Adrian, Tarquinio, Daniel, Carpenter, Randall, Cobb, Stuart, Faundez, Victor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9437849/
https://www.ncbi.nlm.nih.gov/pubmed/36060065
http://dx.doi.org/10.1016/j.isci.2022.104966
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author Zlatic, Stephanie A.
Duong, Duc
Gadalla, Kamal K.E.
Murage, Brenda
Ping, Lingyan
Shah, Ruth
Fink, James J.
Khwaja, Omar
Swanson, Lindsay C.
Sahin, Mustafa
Rayaprolu, Sruti
Kumar, Prateek
Rangaraju, Srikant
Bird, Adrian
Tarquinio, Daniel
Carpenter, Randall
Cobb, Stuart
Faundez, Victor
author_facet Zlatic, Stephanie A.
Duong, Duc
Gadalla, Kamal K.E.
Murage, Brenda
Ping, Lingyan
Shah, Ruth
Fink, James J.
Khwaja, Omar
Swanson, Lindsay C.
Sahin, Mustafa
Rayaprolu, Sruti
Kumar, Prateek
Rangaraju, Srikant
Bird, Adrian
Tarquinio, Daniel
Carpenter, Randall
Cobb, Stuart
Faundez, Victor
author_sort Zlatic, Stephanie A.
collection PubMed
description MECP2 loss-of-function mutations cause Rett syndrome, a neurodevelopmental disorder resulting from a disrupted brain transcriptome. How these transcriptional defects are decoded into a disease proteome remains unknown. We studied the proteome of Rett cerebrospinal fluid (CSF) to identify consensus Rett proteome and ontologies shared across three species. Rett CSF proteomes enriched proteins annotated to HDL lipoproteins, complement, mitochondria, citrate/pyruvate metabolism, synapse compartments, and the neurosecretory protein VGF. We used shared Rett ontologies to select analytes for orthogonal quantification and functional validation. VGF and ontologically selected CSF proteins had genotypic discriminatory capacity as determined by receiver operating characteristic analysis in Mecp2(-/y) and Mecp2(−/+). Differentially expressed CSF proteins distinguished Rett from a related neurodevelopmental disorder, CDKL5 deficiency disorder. We propose that Mecp2 mutant CSF proteomes and ontologies inform putative mechanisms and biomarkers of disease. We suggest that Rett syndrome results from synapse and metabolism dysfunction.
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spelling pubmed-94378492022-09-03 Convergent cerebrospinal fluid proteomes and metabolic ontologies in humans and animal models of Rett syndrome Zlatic, Stephanie A. Duong, Duc Gadalla, Kamal K.E. Murage, Brenda Ping, Lingyan Shah, Ruth Fink, James J. Khwaja, Omar Swanson, Lindsay C. Sahin, Mustafa Rayaprolu, Sruti Kumar, Prateek Rangaraju, Srikant Bird, Adrian Tarquinio, Daniel Carpenter, Randall Cobb, Stuart Faundez, Victor iScience Article MECP2 loss-of-function mutations cause Rett syndrome, a neurodevelopmental disorder resulting from a disrupted brain transcriptome. How these transcriptional defects are decoded into a disease proteome remains unknown. We studied the proteome of Rett cerebrospinal fluid (CSF) to identify consensus Rett proteome and ontologies shared across three species. Rett CSF proteomes enriched proteins annotated to HDL lipoproteins, complement, mitochondria, citrate/pyruvate metabolism, synapse compartments, and the neurosecretory protein VGF. We used shared Rett ontologies to select analytes for orthogonal quantification and functional validation. VGF and ontologically selected CSF proteins had genotypic discriminatory capacity as determined by receiver operating characteristic analysis in Mecp2(-/y) and Mecp2(−/+). Differentially expressed CSF proteins distinguished Rett from a related neurodevelopmental disorder, CDKL5 deficiency disorder. We propose that Mecp2 mutant CSF proteomes and ontologies inform putative mechanisms and biomarkers of disease. We suggest that Rett syndrome results from synapse and metabolism dysfunction. Elsevier 2022-08-17 /pmc/articles/PMC9437849/ /pubmed/36060065 http://dx.doi.org/10.1016/j.isci.2022.104966 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Zlatic, Stephanie A.
Duong, Duc
Gadalla, Kamal K.E.
Murage, Brenda
Ping, Lingyan
Shah, Ruth
Fink, James J.
Khwaja, Omar
Swanson, Lindsay C.
Sahin, Mustafa
Rayaprolu, Sruti
Kumar, Prateek
Rangaraju, Srikant
Bird, Adrian
Tarquinio, Daniel
Carpenter, Randall
Cobb, Stuart
Faundez, Victor
Convergent cerebrospinal fluid proteomes and metabolic ontologies in humans and animal models of Rett syndrome
title Convergent cerebrospinal fluid proteomes and metabolic ontologies in humans and animal models of Rett syndrome
title_full Convergent cerebrospinal fluid proteomes and metabolic ontologies in humans and animal models of Rett syndrome
title_fullStr Convergent cerebrospinal fluid proteomes and metabolic ontologies in humans and animal models of Rett syndrome
title_full_unstemmed Convergent cerebrospinal fluid proteomes and metabolic ontologies in humans and animal models of Rett syndrome
title_short Convergent cerebrospinal fluid proteomes and metabolic ontologies in humans and animal models of Rett syndrome
title_sort convergent cerebrospinal fluid proteomes and metabolic ontologies in humans and animal models of rett syndrome
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9437849/
https://www.ncbi.nlm.nih.gov/pubmed/36060065
http://dx.doi.org/10.1016/j.isci.2022.104966
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