miR-424-5p reduces ribosomal RNA and protein synthesis in muscle wasting
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Author(s)
Type
Journal Article
Abstract
Background: A loss of muscle mass occurs as a consequence of a range of chronic and acute diseases as well as in older age. This wasting results from an imbalance of protein synthesis and degradation with a reduction in synthesis and resistance to anabolic stimulation often reported features. Ribosomes are required for protein synthesis so changes in the control of ribosome synthesis is a potential contributor to muscle wasting. MicroRNAs (miRNAs) are known regulators of muscle phenotype and have been shown to modulate components of the protein synthetic pathway. One miRNA that is predicted to target a number of components of protein synthetic pathway is miR-424-5p, which is elevated in the quadriceps of patients with chronic obstructive pulmonary disease (COPD).
Methods: Targets of miR-424-5p were identified by Ago2 pull-down and the effects of the miRNA on RNA and protein expression were determined by qPCR and western blotting in muscle cells in vitro. Protein synthesis was determined by puromycin incorporation in vitro. The miRNA was over-expressed in the tibialis anterior muscle of mice by electroporation and the effects quantified. Finally, quadriceps expression of the miRNA was determined by qPCR in patients with COPD, intensive care unit acquired weakness (ICUAW), and in patients undergoing aortic surgery as well as in individuals from the Hertfordshire Sarcopenia Study.
Results: Pull-down assays showed that miR-424-5p bound to mRNAs encoding proteins associated with muscle protein synthesis. The most highly enriched mRNAs encoded proteins required for the Pol I RNA pre-initiation complex (PIC) required for rRNA transcription, (PolR1A and Upstream binding transcription factor, UBTF). In vitro, miR-424-5p reduced expression of these RNAs, reduced rRNA levels and inhibited protein synthesis. In mice, over-expression of miR-322 (rodent miR-424 orthologue) caused fibre atrophy and reduced UBTF expression and rRNA levels. In humans elevated miR-424-5p associated with markers of disease severity in COPD (FEV1%), patients undergoing aortic surgery (LVEF%) and in patients with ICU acquired weakness (days in ICU). In patients undergoing aortic surgery, pre-operative miR-424-5p expression in skeletal muscle was associated with muscle loss over the following 7 days.
Conclusions: These data suggest that miR-424-5p regulates rRNA synthesis by inhibiting Pol I PIC formation. Increased miR-424-5p expression in patients with conditions associated with muscle wasting is likely to contribute to inhibition of protein synthesis and the loss of muscle mass.
Methods: Targets of miR-424-5p were identified by Ago2 pull-down and the effects of the miRNA on RNA and protein expression were determined by qPCR and western blotting in muscle cells in vitro. Protein synthesis was determined by puromycin incorporation in vitro. The miRNA was over-expressed in the tibialis anterior muscle of mice by electroporation and the effects quantified. Finally, quadriceps expression of the miRNA was determined by qPCR in patients with COPD, intensive care unit acquired weakness (ICUAW), and in patients undergoing aortic surgery as well as in individuals from the Hertfordshire Sarcopenia Study.
Results: Pull-down assays showed that miR-424-5p bound to mRNAs encoding proteins associated with muscle protein synthesis. The most highly enriched mRNAs encoded proteins required for the Pol I RNA pre-initiation complex (PIC) required for rRNA transcription, (PolR1A and Upstream binding transcription factor, UBTF). In vitro, miR-424-5p reduced expression of these RNAs, reduced rRNA levels and inhibited protein synthesis. In mice, over-expression of miR-322 (rodent miR-424 orthologue) caused fibre atrophy and reduced UBTF expression and rRNA levels. In humans elevated miR-424-5p associated with markers of disease severity in COPD (FEV1%), patients undergoing aortic surgery (LVEF%) and in patients with ICU acquired weakness (days in ICU). In patients undergoing aortic surgery, pre-operative miR-424-5p expression in skeletal muscle was associated with muscle loss over the following 7 days.
Conclusions: These data suggest that miR-424-5p regulates rRNA synthesis by inhibiting Pol I PIC formation. Increased miR-424-5p expression in patients with conditions associated with muscle wasting is likely to contribute to inhibition of protein synthesis and the loss of muscle mass.
Date Issued
2017-12-07
Date Acceptance
2017-10-12
Citation
Journal of Cachexia, Sarcopenia and Muscle, 2017, 9 (2), pp.400-416
ISSN
2190-6009
Publisher
Wiley Open Access
Start Page
400
End Page
416
Journal / Book Title
Journal of Cachexia, Sarcopenia and Muscle
Volume
9
Issue
2
Copyright Statement
© 2017 The Authors. Journal of Cachexia, Sarcopenia and Muscle published by John Wiley & Sons Ltd on behalf of the Society on Sarcopenia, Cachexia and Wasting DisordersJournal of Cachexia, Sarcopenia and Muscle(2017)Published online in Wiley Online Library (wileyonlinelibrary.com)DOI:10.1002/jcsm.12266This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided theoriginal work is properly cited
License URL
Sponsor
Medical Research Council (MRC)
Medical Research Council (MRC)
National Institute for Health Research
Medical Research Council (MRC)
British Heart Foundation
Grant Number
G0901955
G1001362
BRU 6279
97159 (MRC ref G1001362)
FS/14/71/31038
Subjects
Science & Technology
Life Sciences & Biomedicine
Geriatrics & Gerontology
Medicine, General & Internal
General & Internal Medicine
Ribosomal RNA synthesis
microRNA
Protein synthesis
Muscle wasting
OBSTRUCTIVE PULMONARY-DISEASE
CHRONIC HEART-FAILURE
SKELETAL-MUSCLE
INCREASED EXPRESSION
AMINO-ACID
QUADRICEPS STRENGTH
ANABOLIC RESPONSE
AGING MUSCLE
COPD
RESISTANCE
Publication Status
Published