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MCT1-dependent energetic failure and neuroinflammation underlie optic nerve degeneration in Wolfram syndrome mice

Wolfram syndrome 1 (WS1) is a rare genetic disorder caused by mutations in the WFS1 gene leading to a wide spectrum of clinical dysfunctions, among which blindness, diabetes, and neurological deficits are the most prominent. WFS1 encodes for the endoplasmic reticulum (ER) resident transmembrane prot...

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Autores principales: Rossi, Greta, Ordazzo, Gabriele, Vanni, Niccolò N, Castoldi, Valerio, Iannielli, Angelo, Di Silvestre, Dario, Bellini, Edoardo, Bernardo, Letizia, Giannelli, Serena G, Luoni, Mirko, Muggeo, Sharon, Leocani, Letizia, Mauri, PierLuigi, Broccoli, Vania
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9891717/
https://www.ncbi.nlm.nih.gov/pubmed/36645345
http://dx.doi.org/10.7554/eLife.81779
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author Rossi, Greta
Ordazzo, Gabriele
Vanni, Niccolò N
Castoldi, Valerio
Iannielli, Angelo
Di Silvestre, Dario
Bellini, Edoardo
Bernardo, Letizia
Giannelli, Serena G
Luoni, Mirko
Muggeo, Sharon
Leocani, Letizia
Mauri, PierLuigi
Broccoli, Vania
author_facet Rossi, Greta
Ordazzo, Gabriele
Vanni, Niccolò N
Castoldi, Valerio
Iannielli, Angelo
Di Silvestre, Dario
Bellini, Edoardo
Bernardo, Letizia
Giannelli, Serena G
Luoni, Mirko
Muggeo, Sharon
Leocani, Letizia
Mauri, PierLuigi
Broccoli, Vania
author_sort Rossi, Greta
collection PubMed
description Wolfram syndrome 1 (WS1) is a rare genetic disorder caused by mutations in the WFS1 gene leading to a wide spectrum of clinical dysfunctions, among which blindness, diabetes, and neurological deficits are the most prominent. WFS1 encodes for the endoplasmic reticulum (ER) resident transmembrane protein wolframin with multiple functions in ER processes. However, the WFS1-dependent etiopathology in retinal cells is unknown. Herein, we showed that Wfs1 mutant mice developed early retinal electrophysiological impairments followed by marked visual loss. Interestingly, axons and myelin disruption in the optic nerve preceded the degeneration of the retinal ganglion cell bodies in the retina. Transcriptomics at pre-degenerative stage revealed the STAT3-dependent activation of proinflammatory glial markers with reduction of the homeostatic and pro-survival factors glutamine synthetase and BDNF. Furthermore, label-free comparative proteomics identified a significant reduction of the monocarboxylate transport isoform 1 (MCT1) and its partner basigin that are highly enriched on retinal glia and myelin-forming oligodendrocytes in optic nerve together with wolframin. Loss of MCT1 caused a failure in lactate transfer from glial to neuronal cell bodies and axons leading to a chronic hypometabolic state. Thus, this bioenergetic impairment is occurring concurrently both within the axonal regions and cell bodies of the retinal ganglion cells, selectively endangering their survival while impacting less on other retinal cells. This metabolic dysfunction occurs months before the frank RGC degeneration suggesting an extended time-window for intervening with new therapeutic strategies focused on boosting retinal and optic nerve bioenergetics in WS1.
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spelling pubmed-98917172023-02-02 MCT1-dependent energetic failure and neuroinflammation underlie optic nerve degeneration in Wolfram syndrome mice Rossi, Greta Ordazzo, Gabriele Vanni, Niccolò N Castoldi, Valerio Iannielli, Angelo Di Silvestre, Dario Bellini, Edoardo Bernardo, Letizia Giannelli, Serena G Luoni, Mirko Muggeo, Sharon Leocani, Letizia Mauri, PierLuigi Broccoli, Vania eLife Developmental Biology Wolfram syndrome 1 (WS1) is a rare genetic disorder caused by mutations in the WFS1 gene leading to a wide spectrum of clinical dysfunctions, among which blindness, diabetes, and neurological deficits are the most prominent. WFS1 encodes for the endoplasmic reticulum (ER) resident transmembrane protein wolframin with multiple functions in ER processes. However, the WFS1-dependent etiopathology in retinal cells is unknown. Herein, we showed that Wfs1 mutant mice developed early retinal electrophysiological impairments followed by marked visual loss. Interestingly, axons and myelin disruption in the optic nerve preceded the degeneration of the retinal ganglion cell bodies in the retina. Transcriptomics at pre-degenerative stage revealed the STAT3-dependent activation of proinflammatory glial markers with reduction of the homeostatic and pro-survival factors glutamine synthetase and BDNF. Furthermore, label-free comparative proteomics identified a significant reduction of the monocarboxylate transport isoform 1 (MCT1) and its partner basigin that are highly enriched on retinal glia and myelin-forming oligodendrocytes in optic nerve together with wolframin. Loss of MCT1 caused a failure in lactate transfer from glial to neuronal cell bodies and axons leading to a chronic hypometabolic state. Thus, this bioenergetic impairment is occurring concurrently both within the axonal regions and cell bodies of the retinal ganglion cells, selectively endangering their survival while impacting less on other retinal cells. This metabolic dysfunction occurs months before the frank RGC degeneration suggesting an extended time-window for intervening with new therapeutic strategies focused on boosting retinal and optic nerve bioenergetics in WS1. eLife Sciences Publications, Ltd 2023-01-16 /pmc/articles/PMC9891717/ /pubmed/36645345 http://dx.doi.org/10.7554/eLife.81779 Text en © 2023, Rossi et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Developmental Biology
Rossi, Greta
Ordazzo, Gabriele
Vanni, Niccolò N
Castoldi, Valerio
Iannielli, Angelo
Di Silvestre, Dario
Bellini, Edoardo
Bernardo, Letizia
Giannelli, Serena G
Luoni, Mirko
Muggeo, Sharon
Leocani, Letizia
Mauri, PierLuigi
Broccoli, Vania
MCT1-dependent energetic failure and neuroinflammation underlie optic nerve degeneration in Wolfram syndrome mice
title MCT1-dependent energetic failure and neuroinflammation underlie optic nerve degeneration in Wolfram syndrome mice
title_full MCT1-dependent energetic failure and neuroinflammation underlie optic nerve degeneration in Wolfram syndrome mice
title_fullStr MCT1-dependent energetic failure and neuroinflammation underlie optic nerve degeneration in Wolfram syndrome mice
title_full_unstemmed MCT1-dependent energetic failure and neuroinflammation underlie optic nerve degeneration in Wolfram syndrome mice
title_short MCT1-dependent energetic failure and neuroinflammation underlie optic nerve degeneration in Wolfram syndrome mice
title_sort mct1-dependent energetic failure and neuroinflammation underlie optic nerve degeneration in wolfram syndrome mice
topic Developmental Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9891717/
https://www.ncbi.nlm.nih.gov/pubmed/36645345
http://dx.doi.org/10.7554/eLife.81779
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