Acute, muscle-type specific insulin resistance following injury

LaWanda H Thompson1, Hyeong T Kim, Yuchen Ma

  • 1Department of Pathology, Division of Molecular and Cellular Pathology, The University of Alabama at Birmingham, Birmingham, Alabama 35294-0019, USA.

Insights

Critical illness and injury rapidly cause skeletal muscle insulin resistance, impairing glucose uptake. This study reveals the acute molecular defects in insulin signaling within muscles following trauma and hemorrhage.

Area of Science:

  • Physiology
  • Molecular Biology
  • Endocrinology

Background:

  • Critical illness and severe injury can lead to acute insulin resistance.
  • Understanding the molecular mechanisms of this insulin resistance is crucial for improving patient outcomes.
  • Acute insulin resistance is less studied compared to chronic disease-associated insulin resistance.

Purpose of the Study:

  • To investigate the development of acute insulin resistance in skeletal muscle following injury and hemorrhage.
  • To identify the molecular defects in insulin signaling pathways in response to trauma.
  • To compare the effects of hemorrhage on insulin signaling in different muscle types.

Main Methods:

  • Utilized an animal model of injury and blood loss.
  • Assessed insulin-mediated signaling, including Akt phosphorylation and insulin receptor/substrate-1 tyrosine phosphorylation.
  • Examined insulin signaling in various muscle tissues: triceps, extensor digitorum longus, diaphragm, and cardiac muscle.

Main Results:

  • Surgical trauma alone had minimal impact on insulin signaling.
  • Hemorrhage caused a near-complete loss of insulin-induced Akt phosphorylation in skeletal muscles (triceps).
  • Significant defects in insulin receptor and insulin receptor substrate-1 phosphorylation were observed in skeletal muscles following hemorrhage, with varying severity across muscle types but not in cardiac muscle.

Conclusions:

  • Acute skeletal muscle insulin resistance develops rapidly following hemorrhage.
  • The observed insulin signaling defects are reversible and muscle-specific.
  • These findings highlight the critical role of skeletal muscle in injury-induced hyperglycemia and the need for targeted interventions.

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