Spinal cord metabolic signatures in models of fast- and slow-progressing SOD1G93A Amyotrophic Lateral Sclerosis
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Published version
Author(s)
Valbuena, Gabriel
Keun, Hector
Bendotti, Caterina
Cantoni, Lavinia
Tortarolo, Massimo
Type
Journal Article
Abstract
The rate of disease progression in amyotrophic lateral sclerosis (ALS) is highly variable, even between patients with the same genetic mutations. Metabolic alterations may affect disease course variability in ALS patients, but challenges in identifying the preclinical and early phases of the disease limit our understanding of molecular mechanisms underlying differences in the rate of disease progression. We examined effects of SOD1G93A on thoracic and lumbar spinal cord metabolites in two mouse ALS models with different rates of disease progression: the transgenic SOD1G93A-C57BL/6JOlaHsd (C57-G93A, slow progression) and transgenic SOD1G93A-129SvHsd (129S-G93A, fast progression) strains. Samples from three timepoints (presymptomatic, disease onset, and late stage disease) were analyzed using Gas Chromatography-Mass Spectrometry metabolomics. Tissue metabolome differences in the lumbar spinal cord were driven primarily by mouse genetic background, although larger responses were observed in metabolic trajectories after the onset of symptoms. The significantly affected lumbar spinal cord metabolites were involved in energy and lipid metabolism. In the thoracic spinal cord, metabolic differences related to genetic background, background-SOD1 genotype interactions, and longitudinal SOD1G93A effects. The largest responses in thoracic spinal cord metabolic trajectories related to SOD1G93A effects before onset of visible symptoms. More metabolites were significantly affected in the thoracic segment, which were involved in energy homeostasis, neurotransmitter synthesis and utilization, and the oxidative stress response. We find evidence that initial metabolic alterations in SOD1G93A mice confer disadvantages for maintaining neuronal viability under ALS-related stressors, with slow-progressing C57-G93A mice potentially having more favorable spinal cord bioenergetic profiles than 129S-G93A. These genetic background-associated metabolic differences together with the different early metabolic responses underscore the need to better characterize the impact of germline genetic variation on cellular responses to ALS gene mutations both before and after the onset of symptoms in order to understand their impact on disease development.
Date Issued
2019-12-10
Date Acceptance
2019-11-11
Citation
Frontiers in Neuroscience, 2019, 13, pp.1-16
ISSN
1662-453X
Publisher
Frontiers Media
Start Page
1
End Page
16
Journal / Book Title
Frontiers in Neuroscience
Volume
13
Copyright Statement
© 2019 Valbuena, Cantoni, Tortarolo, Bendotti and Keun. This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY) (http://creativecommons.org/licenses/by/4.0/). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
Sponsor
Commission of the European Communities
Identifier
file://icnas3.cc.ic.ac.uk/yozkan/downloads/fnins-13-01276.pdf
Grant Number
259867
Subjects
Science & Technology
Life Sciences & Biomedicine
Neurosciences
Neurosciences & Neurology
amyotrophic lateral sclerosis (ALS)
SOD1(G93A) ALS mouse model
metabolism
metabolomics
spinal cord
oxidative stress
TCA cycle
energy metabolism
TRANSGENIC MOUSE MODEL
MOTOR-NEURONS
SOD1 MOUSE
PHENOTYPIC HETEROGENEITY
DISEASE PROGRESSION
ALS
DYSFUNCTION
TOXICITY
INOSITOL
GENES
SOD1G93A ALS mouse model
TCA cycle
amyotrophic lateral sclerosis (ALS)
energy metabolism
metabolism
metabolomics
oxidative stress
spinal cord
1109 Neurosciences
1701 Psychology
1702 Cognitive Sciences
Publication Status
Published
Article Number
1276
Date Publish Online
2019-12-10