Weak by the machines: muscle motor protein dysfunction - a side effect of intensive care unit treatment

O Friedrich1,2, S Diermeier1,2, L Larsson3,4,5

  • 1Institute of Medical Biotechnology, Friedrich-Alexander-University Erlangen-Nürnberg, Erlangen, Germany.

Insights

Critical illness myopathy (CIM) causes muscle weakness and myosin loss in ICU patients. New models show passive muscle loading can significantly improve CIM by addressing myosin loss.

Area of Science:

  • Critical care medicine
  • Muscle physiology
  • Cellular biology

Background:

  • Intensive care unit (ICU) interventions like mechanical ventilation and sedation can lead to critical illness myopathy (CIM).
  • CIM is characterized by limb muscle weakness, atrophy, and preferential myosin loss, impacting patient recovery.
  • The ubiquitin proteasome pathway and other novel mechanisms contribute to protein degradation in CIM.

Purpose of the Study:

  • To systematically review signaling pathways involved in CIM-induced muscle atrophy.
  • To investigate the role of mechanical ventilation and immobilization in CIM development using animal models.
  • To visualize myosin loss within myofibers during experimental ICU interventions.

Main Methods:

  • Utilized novel animal models of critical illness and ICU treatment (mechanical ventilation, immobilization).
  • Analyzed protein synthesis and degradation alterations, and chaperone activity.
  • Employed multi-photon Second Harmonic Generation microscopy to monitor myosin signal intensities in myofibers.

Main Results:

  • Identified altered mechano-signalling as a key factor in myosin loss in experimental CIM.
  • Demonstrated that passive muscle loading can ameliorate the CIM phenotype.
  • Confirmed that myosin loss in CIM is a uniformly distributed process within myofibers.

Conclusions:

  • CIM involves complex signaling pathways, distinct from disuse or denervation atrophy.
  • Mechanical unloading and altered mechano-signaling are critical drivers of myosin loss in CIM.
  • Novel microscopy techniques provide spatial insights into myosin loss, revealing a uniform distribution within myofibers.

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