Diaphragm Unloading via Controlled Mechanical Ventilation Alters the Gene Expression Profile
- 15 November 2005
- journal article
- Published by American Thoracic Society in American Journal of Respiratory and Critical Care Medicine
- Vol. 172 (10) , 1267-1275
- https://doi.org/10.1164/rccm.200503-403oc
Abstract
Prolonged controlled mechanical ventilation results in diaphragmatic inactivity and promotes oxidative injury, atrophy, and contractile dysfunction in this important inspiratory muscle. However, the impact of controlled mechanical ventilation on global mRNA alterations in the diaphragm remains unknown. In these experiments, we used an Affymetrix oligonucleotide array to identify the temporal changes in diaphragmatic gene expression during controlled mechanical ventilation in the rat. Adult Sprague-Dawley rats were assigned to either control or mechanical ventilation groups (n = 5/group). Mechanically ventilated animals were anesthetized, tracheostomized, and ventilated with room air for 6 or 18 h. Animals in the control group were acutely anesthetized but not exposed to mechanical ventilation. Compared with control diaphragms, microarray analysis identified 354 differentially expressed, unique gene products after 6 and 18 h of mechanical ventilation. In general, genes in the cell growth/cell maintenance, stress response, and nucleic acid metabolism categories showed predominant upregulation, whereas genes in the structural protein and energy metabolism categories were predominantly downregulated. We conclude that mechanical ventilation results in rapid changes in diaphragmatic gene expression, and subsequently, many of these changes may contribute to atrophy and muscle fiber remodeling associated with unloading this primary inspiratory muscle. Importantly, this study also provides new insights into why the diaphragm, after the onset of contractile inactivity, atrophies more rapidly than locomotor skeletal muscles and also highlights unique differences that exist between these muscles in the mRNA response to inactivity.Keywords
This publication has 52 references indexed in Scilit:
- Mechanical ventilation induces alterations of the ubiquitin-proteasome pathway in the diaphragmJournal of Applied Physiology, 2005
- L‐type voltage‐gated calcium channels: understanding function through structureFEBS Letters, 2004
- Global analysis of gene expression patterns during disuse atrophy in rat skeletal muscleThe Journal of Physiology, 2003
- MAP kinase phosphatase 1: a novel mediator of biological effects of glucocorticoids?Journal of Endocrinology, 2003
- Prolonged unloading of rat soleus muscle causes distinct adaptations of the gene profileThe FASEB Journal, 2002
- Acyl-CoA Synthetase Isoforms 1, 4, and 5 Are Present in Different Subcellular Membranes in Rat Liver and Can Be Inhibited IndependentlyJournal of Biological Chemistry, 2001
- The calmodulin multigene family as a unique case of genetic redundancy: multiple levels of regulation to provide spatial and temporal control of calmodulin pools?Cell Calcium, 2000
- The Possible Role of Intracellular Ca2+Accumulation for the Development of Immobilization AtrophyInternational Journal of Sports Medicine, 1993
- Decorin, a chondroitin/dermatan sulfate proteoglycan is under neural control in rat skeletal muscleJournal of Neuroscience Research, 1992
- Cloning and characterization of the gene encoding rabbit cardiac calsequestrinGene, 1991