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Arrdc2 and Arrdc3 elicit divergent changes in gene expression in skeletal muscle following anabolic and catabolic stimuli
- Source :
- Physiological Genomics. 51:208-217
- Publication Year :
- 2019
- Publisher :
- American Physiological Society, 2019.
-
Abstract
- Skeletal muscle is a highly plastic organ regulating various processes in the body. As such, loss of skeletal muscle underlies the increased morbidity and mortality risk that is associated with numerous conditions. However, no therapies are available to combat the loss of muscle mass during atrophic conditions, which is due in part to the incomplete understanding of the molecular networks altered by anabolic and catabolic stimuli. Thus, the current objective was to identify novel gene networks modulated by such stimuli. For this, total RNA from the tibialis anterior muscle of mice that were fasted overnight or fasted overnight and refed the next morning was subjected to microarray analysis. The refeeding stimulus altered the expression of genes associated with signal transduction. Specifically, expression of alpha arrestin domain containing 2 (Arrdc2) and alpha arrestin domain containing 3 (Arrdc3) was significantly lowered 70–85% by refeeding. Subsequent analysis showed that expression of these genes was also lowered 50–75% by mechanical overload, with the combination of nutrients and mechanical overload acting synergistically to lower Arrdc2 and Arrdc3 expression. On the converse, stimuli that suppress growth such as testosterone depletion or acute aerobic exercise increased Arrdc2 and Arrdc3 expression in skeletal muscle. While Arrdc2 and Arrdc3 exhibited divergent changes in expression following anabolic or catabolic stimuli, no other member of the Arrdc family of genes exhibited the consistent change in expression across the analyzed conditions. Thus, Arrdc2 and Arrdc3 are a novel set of genes that may be implicated in the regulation of skeletal muscle mass.
- Subjects :
- Male
Anabolism
Arrestins
Physiology
Gene Expression
Protein degradation
Biology
Mice
Anabolic Agents
Atrophy
Gene expression
Genetics
medicine
Animals
Muscle, Skeletal
Catabolism
Autophagy
Skeletal muscle
Fasting
medicine.disease
Cell biology
Mice, Inbred C57BL
Metabolism
beta-Arrestin 1
medicine.anatomical_structure
Signal Transduction
Subjects
Details
- ISSN :
- 15312267 and 10948341
- Volume :
- 51
- Database :
- OpenAIRE
- Journal :
- Physiological Genomics
- Accession number :
- edsair.doi.dedup.....fdd0dc65e46691b117a8e5f7718bcc9a
- Full Text :
- https://doi.org/10.1152/physiolgenomics.00007.2019