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  4. Transcriptomic and metabolic network analysis of metabolic reprogramming and igf-1 modulation in sca3 transgenic mice
 
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Transcriptomic and metabolic network analysis of metabolic reprogramming and igf-1 modulation in sca3 transgenic mice

Journal
International Journal of Molecular Sciences
Journal Volume
22
Journal Issue
15
Date Issued
2021
Author(s)
Lin Y.-T
Lin Y.-S
Cheng W.-L
Chang J.-C
Chao Y.-C
Liu C.-S
AN-CHI WEI  
DOI
10.3390/ijms22157974
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85111154677&doi=10.3390%2fijms22157974&partnerID=40&md5=4fc6912c01c4e49357fe6b708c01b5f9
https://scholars.lib.ntu.edu.tw/handle/123456789/606951
Abstract
Spinocerebellar ataxia type 3 (SCA3) is a genetic neurodegenerative disease for which a cure is still needed. Growth hormone (GH) therapy has shown positive effects on the exercise behavior of mice with cerebellar atrophy, retains more Purkinje cells, and exhibits less DNA damage after GH intervention. Insulin-like growth factor 1 (IGF-1) is the downstream mediator of GH that participates in signaling and metabolic regulation for cell growth and modulation pathways, including SCA3-affected pathways. However, the underlying therapeutic mechanisms of GH or IGF-1 in SCA3 are not fully understood. In the present study, tissue-specific genome-scale metabolic network models for SCA3 transgenic mice were proposed based on RNA-seq. An integrative transcriptomic and metabolic network analysis of a SCA3 transgenic mouse model revealed that metabolic signaling pathways were activated to compensate for the metabolic remodeling caused by SCA3 genetic modifications. The effect of IGF-1 intervention on the pathology and balance of SCA3 disease was also explored. IGF-1 has been shown to invoke signaling pathways and improve mitochondrial function and glycolysis pathways to restore cellular functions. As one of the downregulated factors in SCA3 transgenic mice, IGF-1 could be a potential biomarker and therapeutic target. ? 2021 by the author. Licensee MDPI, Basel, Switzerland.
Subjects
Context-specific metabolic networks
Insulin-like growth factor 1
RNA-seq
Spinocerebellar ataxia type 3
ataxin 3
Atxn3 protein, mouse
growth hormone
insulin-like growth factor-1, mouse
somatomedin C
animal
biological model
gene expression profiling
genetics
Machado Joseph disease
metabolism
mouse
nuclear reprogramming
signal transduction
transgenic mouse
Animals
Ataxin-3
Cellular Reprogramming
Gene Expression Profiling
Growth Hormone
Insulin-Like Growth Factor I
Machado-Joseph Disease
Mice
Mice, Transgenic
Models, Biological
Signal Transduction
Type
journal article

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