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Published on: November 3, 2013
Phosphodiesterase 4B knockout prevents skeletal muscle atrophy in rats with burn injury
Ambikaipakan Balasubramaniam1,2, Sulaiman Sheriff1, Lou Ann Friend1
1Department of Surgery, University of Cincinnati Medical Center , Cincinnati, Ohio.
Abstract:
The phosphodiesterase 4 (PDE4)-cAMP pathway plays a predominant role in mediating skeletal muscle proteolysis in burn injury. The present investigations to determine the PDE4 isoform(s) involved in this action revealed that burn injury increased the expression of rat skeletal muscle PDE4B mRNA by sixfold but had little or no effect on expression of other PDE4 isoforms. These observations led us to study the effects of burn in PDE4B knockout (KO) rats. As reported by us previously, burn injury significantly increased extensor digitorum longus (EDL) muscle total and myofibrillar proteolysis in wild-type (WT) rats, but there were no significant effects on either total or myofibrillar protein breakdown in EDL muscle of PDE4B KO rats with burn injury. Moreover, burn injury increased PDE4 activity in the skeletal muscle of WT rats, but this was reduced by >80% in PDE4B KO rats. Also, burn injury decreased skeletal muscle cAMP concentration in WT rats but had no significant effects in the muscles of PDE4B KO rats. Incubation of the EDL muscle of burn-PDE4B KO rats with an inhibitor of the exchange factor directly activated by cAMP, but not with a protein kinase A inhibitor, eliminated the protective effects of PDE4B KO on EDL muscle proteolysis and increased muscle proteolysis to the same extent as in the EDL of burn-WT rats. These novel findings confirm a major role for PDE4B in skeletal muscle proteolysis in burn injury and suggest that an innovative therapy based on PDE4B-selective inhibitors could be developed to treat skeletal muscle cachexia in burn injury without the fear of causing emesis, which is associated with PDE4D inhibition.
Insights
Burn injury significantly increases skeletal muscle protein breakdown via the phosphodiesterase 4 (PDE4) pathway. Targeting PDE4B may offer a novel therapy for burn-induced muscle wasting without side effects.
Area of Science:
- Biochemistry
- Physiology
- Molecular Biology
Background:
- The phosphodiesterase 4 (PDE4)-cAMP pathway is implicated in skeletal muscle proteolysis following burn injury.
- Previous studies suggest a role for PDE4 in mediating this process, but specific isoforms involved were unclear.
Purpose of the Study:
- To identify the specific phosphodiesterase 4 (PDE4) isoform responsible for mediating skeletal muscle proteolysis after burn injury.
- To investigate the therapeutic potential of targeting PDE4B in burn-induced muscle wasting.
Main Methods:
- Utilized PDE4B knockout (KO) rats and wild-type (WT) littermates subjected to burn injury.
- Assessed skeletal muscle total and myofibrillar proteolysis, PDE4 activity, and cAMP concentration.
- Examined the effects of specific inhibitors on proteolysis in isolated muscles.
Main Results:
- Burn injury increased PDE4B mRNA expression sixfold in WT rat skeletal muscle.
- PDE4B KO rats showed no significant increase in muscle proteolysis, PDE4 activity, or decrease in cAMP levels after burn injury compared to WT rats.
- Inhibition of a cAMP-activated exchange factor in PDE4B KO muscle abolished protective effects, restoring proteolysis.
Conclusions:
- Phosphodiesterase 4B (PDE4B) plays a critical role in mediating skeletal muscle proteolysis following burn injury.
- Targeting PDE4B with selective inhibitors presents a promising therapeutic strategy for preventing burn-induced muscle cachexia, potentially avoiding side effects like emesis associated with PDE4D inhibition.
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