ReviewClinical science (London, England : 1979)2025
Evaluating skeletal muscle wasting and weakness in models of critical illness.
Review in Clinical science (London, England : 1979), 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
What it found
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The trial behind it
Trials whose registry record cites this paper, or whose number appears in the abstract. A trial that started after this paper was published is citing it as background, not reporting it.
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Who cites it
8 citing papers in PubMed.
- 'Cells · 2026Article
- AMPK/ SIRT1 signaling pathway activation acts on PGC-1α/ PPARγ to alleviate sepsis-acquired weakness.Cell death discovery · 2026Article
- Point-of-Care Ultrasound Detects Rapid Muscle Loss in Pediatric ECMO Patients-A Secondary Analysis Paper.Pediatric reports · 2026Article
- Evaluating skeletal muscle dysfunction and recovery in a zymosan model of critical illness in mice.Disease models & mechanisms · 2026Article
- Optimization of Preclinical Rodent Research Models of Human Shock: Part One Intra-Abdominal Sepsis.Shock (Augusta, Ga.) · 2026Review
- Degenerative Gastrocnemius Muscle Changes in a Goat Tibial Ostectomy Model Persist 10 Months After Splint Removal.Muscles (Basel, Switzerland) · 2026Article
- Hyaluronan 35 prevents endotoxin-mediated dysregulated skeletal muscle proteostasis during ethanol exposure.American journal of physiology. Endocrinology and metabolism · 2026Article
- Risk Factors, Diagnostic Challenges, and Emerging Therapeutic Strategies for ICU-Acquired Weakness: A Brief Review.Journal of multidisciplinary healthcare · 2025Review
Corrections and comments
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Authors and funding
4 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Skeletal muscle wasting and weakness are common complications associated with admission to the intensive care unit (ICU), with the loss of muscle mass and function increasing mortality and contributing to physical impairments post-discharge. While our understanding of the pathophysiology of this condition, commonly termed 'ICU-acquired weakness' (ICU-AW), has advanced considerably, no effective therapies are available. ICU-AW broadly encompasses a range of muscle-related impairments in this setting, including, but not limited to, critical illness myopathy and sepsis-induced myopathy. Pre-clinical models of critical illness can provide insights into the mechanisms underlying muscle wasting and weakness. Cell culture systems can provide mechanistic interrogation, by isolating effects to skeletal muscle directly. Small animal models, like rats and mice, allow for mechanistic investigation of ICU-AW using genetic models and testing pharmacological interventions. Larger animal models, including pigs and sheep, facilitate repeated blood and tissue sampling and can more closely recapitulate the standard-of-care within ICU settings. Although animal models can be advantageous for scientific investigation, they also have important limitations. Barriers to developing effective interventions include difficulty in obtaining muscle biopsies from patients, translating experimental findings between animal models and humans and replicating aspects of different ICU settings. This review explores the advantages and shortcomings of different pre-clinical models of critical illness, identifies gaps in understanding muscle wasting and weakness in critical illness and provides recommendations for improving the translation of therapeutics to promote functional recovery for patients post-discharge.
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Registered trials
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