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Pamidronate attenuates muscle loss after pediatric burn injury
Elisabet Børsheim1, David N Herndon, Hal K Hawkins
1Department of Surgery, University of Texas Medical Branch, Galveston, TX, USA; Shriners Hospital for Children, Galveston, TX, USA.
Insights
Bisphosphonate pamidronate prevents bone loss in severely burned children, preserving muscle mass and improving net protein balance. This suggests bone may play a role in muscle preservation, with potential implications for age-related muscle loss.
Area of Science:
- Pediatric critical care
- Bone and muscle physiology
- Pharmacological interventions
Background:
- Severe burns (>40% TBSA) cause significant bone and muscle mass loss.
- This loss is attributed to bone resorption, inflammation, and glucocorticoids, leading to negative nitrogen balance.
Purpose of the Study:
- To investigate if preventing bone loss with pamidronate in pediatric burn patients preserves muscle protein balance.
- To explore the potential paracrine mechanism between bone and muscle.
Main Methods:
- Review of 17 pediatric burn subjects from a randomized controlled trial of pamidronate.
- Muscle protein synthesis and breakdown assessed via stable isotope infusion during acute hospitalization.
- Muscle fiber diameter and leg strength (9 months post-burn) evaluated.
Main Results:
- Pamididronate group showed significantly lower fractional protein synthesis rate (FSR), indicating reduced muscle protein turnover.
- Net protein balance was positive in the pamidronate group and negative in the placebo group.
- Muscle fiber diameter was greater in the pamidronate group; leg strength was comparable to healthy children at 9 months.
Conclusions:
- Pamidronate administration in severely burned children preserves muscle mass and improves net protein balance.
- Results suggest a potential bone-to-muscle paracrine mechanism.
- Findings may inform treatments for sarcopenia in the elderly.
Abstract:
Children who are burned >40% total body surface area lose significant quantities of both bone and muscle mass because of acute bone resorption, inflammation, and endogenous glucocorticoid production, which result in negative nitrogen balance. Because administration of the bisphosphonate pamidronate within 10 days of the burn injury completely prevents the bone loss, we asked whether muscle protein balance was altered by the preservation of bone. We reviewed the results from 17 burned pediatric subjects previously enrolled in a double-blind randomized controlled study of pamidronate in the prevention of post-burn bone loss and who were concurrently evaluated for muscle protein synthesis and breakdown by stable isotope infusion studies during the acute hospitalization. We found a significantly lower fractional protein synthesis rate (FSR) in the pamidronate group and a correspondingly lower rate of appearance of the amino acid tracer in venous blood, suggesting lower muscle protein turnover. Moreover, net protein balance (synthesis minus breakdown) was positive in the subjects receiving pamidronate and negative in those receiving placebo. Muscle fiber diameter was significantly greater in the pamidronate subjects and leg strength at 9 months post-burn was not different between subjects who received pamidronate and normal physically fit age-matched children studied in our lab. Leg strength in burned subjects who served as controls tended to be weaker, although not significantly so. If substantiated by a larger study, these results suggest that bone may have a paracrine mechanism to preserve muscle and this finding may have implications for the treatment of sarcopenia in the elderly.
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