Literature DB >> 23845980

Time course of diaphragm function recovery after controlled mechanical ventilation in rats.

Debby Thomas1, Karen Maes, Anouk Agten, Leo Heunks, Richard Dekhuijzen, Marc Decramer, Hieronymus Van Hees, Ghislaine Gayan-Ramirez.   

Abstract

Controlled mechanical ventilation (CMV) is known to result in rapid and severe diaphragmatic dysfunction, but the recovery response of the diaphragm to normal function after CMV is unknown. Therefore, we examined the time course of diaphragm function recovery in an animal model of CMV. Healthy rats were submitted to CMV for 24-27 h (n = 16), or to 24-h CMV followed by either 1 h (CMV + 1 h SB, n = 9), 2 h (CMV + 2 h SB, n = 9), 3 h (CMV + 3 h SB, n = 9), or 4-7 h (CMV + 4-7 h SB, n = 9) of spontaneous breathing (SB). At the end of the experiment, the diaphragm muscle was excised for functional and biochemical analysis. The in vitro diaphragm force was significantly improved in the CMV + 3 h SB and CMV + 4-7 h SB groups compared with CMV (maximal tetanic force: +27%, P < 0.05, and +59%, P < 0.001, respectively). This was associated with an increase in the type IIx/b fiber dimensions (P < 0.05). Neutrophil influx was increased in the CMV + 4-7 h SB group (P < 0.05), while macrophage numbers remained unchanged. Markers of protein synthesis (phosphorylated Akt and eukaryotic initiation factor 4E binding protein 1) were significantly increased (±40%, P < 0.001, and ±52%, P < 0.01, respectively) in the CMV + 3 h SB and CMV + 4-7 h SB groups and were positively correlated with diaphragm force (P < 0.05). Finally, also the maximal specific force generation of skinned single diaphragm fibers was increased in the CMV + 4-7 h SB group compared with CMV (+45%, P < 0.05). In rats, reloading the diaphragm for 3 h after CMV is sufficient to improve diaphragm function, while complete recovery occurs after longer periods of reloading. Enhanced muscle fiber dimensions, increased protein synthesis, and improved intrinsic contractile properties of diaphragm muscle fibers may have contributed to diaphragm function recovery.

Entities:  

Keywords:  controlled mechanical ventilation; diaphragm contractile properties; inflammation; protein synthesis; reloading

Mesh:

Substances:

Year:  2013        PMID: 23845980      PMCID: PMC3764622          DOI: 10.1152/japplphysiol.00302.2012

Source DB:  PubMed          Journal:  J Appl Physiol (1985)        ISSN: 0161-7567


  49 in total

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2.  Measurement of twitch transdiaphragmatic, esophageal, and endotracheal tube pressure with bilateral anterolateral magnetic phrenic nerve stimulation in patients in the intensive care unit.

Authors:  A C Watson; P D Hughes; M Louise Harris; N Hart; R J Ware; J Wendon; M Green; J Moxham
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Review 3.  Adaptive strategies of respiratory muscles in response to endurance exercise.

Authors:  S K Powers; D Criswell
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4.  Bortezomib partially protects the rat diaphragm from ventilator-induced diaphragm dysfunction.

Authors:  Anouk Agten; Karen Maes; Debby Thomas; Nele Cielen; Hieronymus W H Van Hees; Richard P N Dekhuijzen; Marc Decramer; Ghislaine Gayan-Ramirez
Journal:  Crit Care Med       Date:  2012-08       Impact factor: 7.598

5.  Muscle impairment occurs rapidly and precedes inflammatory cell accumulation after mechanical loading.

Authors:  Jérôme Frenette; Matthieu St-Pierre; Claude H Côté; Eleni Mylona; Frank X Pizza
Journal:  Am J Physiol Regul Integr Comp Physiol       Date:  2002-02       Impact factor: 3.619

6.  Controlled mechanical ventilation leads to remodeling of the rat diaphragm.

Authors:  Liying Yang; Jun Luo; Johanne Bourdon; Meng-Chi Lin; Stewart B Gottfried; Basil J Petrof
Journal:  Am J Respir Crit Care Med       Date:  2002-10-15       Impact factor: 21.405

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8.  Diaphragm single-fiber weakness and loss of myosin in congestive heart failure rats.

Authors:  Hieronymus W H van Hees; Henricus F M van der Heijden; Coen A C Ottenheijm; Leo M A Heunks; Cindy J C Pigmans; Freek W A Verheugt; Rene M H J Brouwer; P N Richard Dekhuijzen
Journal:  Am J Physiol Heart Circ Physiol       Date:  2007-04-20       Impact factor: 4.733

Review 9.  Sarcomere length operating range of vertebrate muscles during movement.

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  9 in total

Review 1.  [Diaphragm dysfunction : Facts for clinicians].

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2.  Rapid and complete recovery in ventilator-induced diaphragm weakness--problem solved?

Authors:  Leigh Ann Callahan; Gerald S Supinski
Journal:  J Appl Physiol (1985)       Date:  2013-07-18

3.  Respiratory weakness after mechanical ventilation is associated with one-year mortality - a prospective study.

Authors:  Clément Medrinal; Guillaume Prieur; Éric Frenoy; Aurora Robledo Quesada; Antoine Poncet; Tristan Bonnevie; Francis-Edouard Gravier; Bouchra Lamia; Olivier Contal
Journal:  Crit Care       Date:  2016-07-31       Impact factor: 9.097

4.  Influence of weaning methods on the diaphragm after mechanical ventilation in a rat model.

Authors:  Christian S Bruells; Thomas Breuer; Karen Maes; Ingmar Bergs; Christian Bleilevens; Gernot Marx; Joachim Weis; Ghislaine Gayan-Ramirez; Rolf Rossaint
Journal:  BMC Pulm Med       Date:  2016-08-24       Impact factor: 3.317

5.  Increased SOD2 in the diaphragm contributes to exercise-induced protection against ventilator-induced diaphragm dysfunction.

Authors:  Aaron B Morton; Ashley J Smuder; Michael P Wiggs; Stephanie E Hall; Bumsoo Ahn; J Matthew Hinkley; Noriko Ichinoseki-Sekine; Andres Mor Huertas; Mustafa Ozdemir; Toshinori Yoshihara; Nicholas R Wawrzyniak; Scott K Powers
Journal:  Redox Biol       Date:  2018-10-21       Impact factor: 11.799

6.  Effects of exercise preconditioning and HSP72 on diaphragm muscle function during mechanical ventilation.

Authors:  Ashley J Smuder; Aaron B Morton; Stephanie E Hall; Michael P Wiggs; Bumsoo Ahn; Nicholas R Wawrzyniak; Kurt J Sollanek; Kisuk Min; Oh Sung Kwon; W Bradley Nelson; Scott K Powers
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7.  Recovery of diaphragm function following mechanical ventilation in a rodent model.

Authors:  Christian S Bruells; Ingmar Bergs; Rolf Rossaint; Jun Du; Christian Bleilevens; Andreas Goetzenich; Joachim Weis; Michael P Wiggs; Scott K Powers; Marc Hein
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Review 8.  Strategies to optimize respiratory muscle function in ICU patients.

Authors:  Willem-Jan M Schellekens; Hieronymus W H van Hees; Jonne Doorduin; Lisanne H Roesthuis; Gert Jan Scheffer; Johannes G van der Hoeven; Leo M A Heunks
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Review 9.  Dysfunction of respiratory muscles in critically ill patients on the intensive care unit.

Authors:  David Berger; Stefan Bloechlinger; Stephan von Haehling; Wolfram Doehner; Jukka Takala; Werner J Z'Graggen; Joerg C Schefold
Journal:  J Cachexia Sarcopenia Muscle       Date:  2016-03-09       Impact factor: 12.910

  9 in total

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