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Caspase-3 Activity in the Rat Amygdala Measured by Spectrofluorometry After Myocardial Infarction
Published on: January 12, 2016
Absence of caspase-3 protects against denervation-induced skeletal muscle atrophy
Pamela J Plant1, James R Bain, Judy E Correa
1Department of Medicine, St. Michael's Hospital, Canada.
Abstract:
The ubiquitin-proteasome system is a key proteolytic pathway activated during skeletal muscle atrophy. The proteasome, however, cannot degrade intact myofibrils or actinomyosin complexes. In rodent models of diabetes mellitus and uremia, caspase-3 is involved in actinomyosin cleavage, generating fragments that subsequently undergo ubiquitin-proteasome-mediated degradation. Here, we demonstrate that caspase-3 also mediates denervation-induced muscle atrophy. At 2 wk after tibial nerve transection, the denervated gastrocnemius of caspase-3-knockout mice weighed more and demonstrated larger fiber-type-specific cross-sectional area than the denervated gastrocnemius of wild-type mice. However, there was no difference between caspase-3-knockout and wild-type denervated muscles in the magnitude or pattern of actinomyosin degradation, as determined by Western blotting for actin and the 14-kDa actin fragment. Similarly, there was no difference between caspase-3-knockout and wild-type denervated muscles in the magnitude of increase in proteasome activity, total protein ubiquitination, or atrogin-1 and muscle-specific ring finger protein 1 transcript levels. In contrast, there was an increase in TdT-mediated dUTP nick end label-positive nuclei in the denervated muscle of wild-type compared with caspase-3-knockout mice. Apoptotic signaling upstream of caspase-3 remained intact, with equivalent mitochondrial Bax translocation and cytochrome c release and caspase-9 activation in the denervated gastrocnemius muscle of wild-type and caspase-3-knockout mice. In contrast, diminished poly(ADP-ribose) polymerase cleavage in the denervated muscle of caspase-3-knockout compared with wild-type mice revealed that apoptotic signaling downstream of caspase-3 was impaired, suggesting that the absence of caspase-3 protects against denervation-induced muscle atrophy by suppressing apoptosis as opposed to ubiquitin-proteasome-mediated protein degradation.
Insights
Caspase-3 deficiency protects against muscle atrophy after denervation by suppressing apoptosis, not by altering ubiquitin-proteasome degradation pathways. This finding highlights caspase-3
Area of Science:
- Biochemistry
- Cell Biology
- Physiology
Background:
- Skeletal muscle atrophy involves the ubiquitin-proteasome system.
- The proteasome cannot degrade intact myofibrils.
- Caspase-3 cleaves actinomyosin in diabetes and uremia, aiding degradation.
Purpose of the Study:
- To investigate the role of caspase-3 in denervation-induced muscle atrophy.
- To determine if caspase-3 mediates atrophy through actinomyosin cleavage or apoptosis.
Main Methods:
- Utilized caspase-3-knockout and wild-type mice subjected to tibial nerve transection.
- Assessed muscle weight, cross-sectional area, actinomyosin degradation (Western blotting).
- Measured proteasome activity, ubiquitination, atrogin-1/MuRF1 transcripts, and apoptosis markers (TUNEL, PARP cleavage).
Main Results:
- Caspase-3 knockout mice showed reduced denervation-induced muscle atrophy.
- No significant differences in actinomyosin degradation or ubiquitin-proteasome pathway activation were observed.
- Apoptosis markers, including TUNEL-positive nuclei and PARP cleavage, were reduced in knockout mice.
- Upstream apoptotic signaling (Bax translocation, cytochrome c release, caspase-9 activation) remained intact.
Conclusions:
- Caspase-3 deficiency protects against denervation-induced muscle atrophy.
- Protection is mediated by the suppression of apoptosis downstream of caspase-3.
- The ubiquitin-proteasome system's role in this specific atrophy model is not dependent on caspase-3.
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