Free radical-mediated skeletal muscle dysfunction in inflammatory conditions.
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[1] Lung. Efficacy and Safety of Corticosteroids for Persistent Acute Respiratory Distress Syndrome , 2009 .
[2] M. Revel,et al. Comparison of two fluid-management strategies in acute lung injury, H.P. Wiedemann, A.P. Wheeler, G.R. Bernard, B.T. Thompson, D. Hayden, B. deBoisblanc, A.F Jr. Connors, R.D. Hite, A.L. Harabin, in: N Engl J Med, 354. (2006), 2564 , 2007 .
[3] G. Supinski,et al. Diaphragm and cardiac mitochondrial creatine kinases are impaired in sepsis. , 2007, Journal of applied physiology.
[4] E. Jaimovich,et al. Myotube depolarization generates reactive oxygen species through NAD(P)H oxidase; ROS‐elicited Ca2+ stimulates ERK, CREB, early genes , 2006, Journal of cellular physiology.
[5] D. Guttridge,et al. The molecular mechanisms of skeletal muscle wasting: implications for therapy. , 2006, The surgeon : journal of the Royal Colleges of Surgeons of Edinburgh and Ireland.
[6] C. Hidalgo,et al. A Transverse Tubule NADPH Oxidase Activity Stimulates Calcium Release from Isolated Triads via Ryanodine Receptor Type 1 S -Glutathionylation* , 2006, Journal of Biological Chemistry.
[7] R. Cone,et al. Mechanisms of Disease: cytokine and adipokine signaling in uremic cachexia , 2006, Nature Clinical Practice Nephrology.
[8] R. Strieter,et al. The role of cytokines during the pathogenesis of ventilator-associated and ventilator-induced lung injury. , 2006, Seminars in respiratory and critical care medicine.
[9] D. Herndon,et al. CYTOKINE EXPRESSION PROFILE OVER TIME IN SEVERELY BURNED PEDIATRIC PATIENTS , 2006, Shock.
[10] Wei Wei,et al. Treatment of rats with calpain inhibitors prevents sepsis-induced muscle proteolysis independent of atrogin-1/MAFbx and MuRF1 expression. , 2006, American journal of physiology. Regulatory, integrative and comparative physiology.
[11] G. Supinski,et al. Polyethylene glycol-superoxide dismutase prevents endotoxin-induced cardiac dysfunction. , 2006, American journal of respiratory and critical care medicine.
[12] G. Supinski,et al. Caspase activation contributes to endotoxin-induced diaphragm weakness. , 2006, Journal of applied physiology.
[13] V. Conraads. Pro-inflammatory cytokines and their receptors in chronic heart failure: do they really matter? , 2006, Acta cardiologica.
[14] L. Moldawer,et al. The origins of cachexia in acute and chronic inflammatory diseases. , 2006, Nutrition in clinical practice : official publication of the American Society for Parenteral and Enteral Nutrition.
[15] R. Bellantone,et al. Prevention and treatment of cancer cachexia: new insights into an old problem. , 2006, European journal of cancer.
[16] G. Supinski,et al. Hemin prevents cardiac and diaphragm mitochondrial dysfunction in sepsis. , 2006, Free radical biology & medicine.
[17] R. Hyzy,et al. Efficacy and safety of corticosteroids for persistent acute respiratory distress syndrome. , 2006, The New England journal of medicine.
[18] P. Szentesi,et al. Depression of force production and ATPase activity in different types of human skeletal muscle fibers from patients with chronic heart failure. , 2005, Journal of applied physiology.
[19] S. Rubin,et al. Inflammatory markers are associated with ventilatory limitation and muscle dysfunction in obstructive lung disease in well functioning elderly subjects , 2005, Thorax.
[20] K. Esser,et al. Redox mechanisms of muscle dysfunction in inflammatory disease. , 2005, Physical medicine and rehabilitation clinics of North America.
[21] W. Mitch,et al. Cellular signals activating muscle proteolysis in chronic kidney disease: a two-stage process. , 2005, The international journal of biochemistry & cell biology.
[22] G. Supinski,et al. Downregulation of diaphragm electron transport chain and glycolytic enzyme gene expression in sepsis. , 2005, Journal of applied physiology.
[23] I. M. Araújo,et al. Role of nitric oxide and calpain activation in neuronal death and survival. , 2005, Current drug targets. CNS and neurological disorders.
[24] Wanjin Hong,et al. The critical role of calpain versus caspase activation in excitotoxic injury induced by nitric oxide , 2005, Journal of neurochemistry.
[25] G. Boltz‐Nitulescu,et al. Heightened levels of circulating 20S proteasome in critically ill patients , 2005, European journal of clinical investigation.
[26] D. Mann,et al. TNF-acts via p 38 MAPK to stimulate expression of the ubiquitin ligase atrogin 1 / MAFbx in skeletal muscle , 2005 .
[27] S. Powers,et al. Mechanisms of disuse muscle atrophy: role of oxidative stress. , 2005, American journal of physiology. Regulatory, integrative and comparative physiology.
[28] S. Hussain,et al. Protein carbonyl formation in the diaphragm. , 2005, American journal of respiratory cell and molecular biology.
[29] B. Kessler,et al. Effects of proteasome inhibitors MG132, ZL3VS and AdaAhx3L3VS on protein metabolism in septic rats , 2004, International journal of experimental pathology.
[30] C. Lang,et al. DIMINISHED ERK 1/2 AND p38 MAPK PHOSPHORYLATION IN SKELETAL MUSCLE DURING SEPSIS , 2004, Shock.
[31] T. Cotter,et al. Oxidative Stress-induced Apoptosis in Retinal Photoreceptor Cells Is Mediated by Calpains and Caspases and Blocked by the Oxygen Radical Scavenger CR-6* , 2004, Journal of Biological Chemistry.
[32] Allen W. Brown,et al. Relationship between strength, balance, and swallowing deficits and outcome after traumatic brain injury: a multicenter analysis. , 2004, Archives of physical medicine and rehabilitation.
[33] S. Matecki,et al. Preferential diaphragmatic weakness during sustained Pseudomonas aeruginosa lung infection. , 2004, American journal of respiratory and critical care medicine.
[34] W. Mitch,et al. Activation of caspase-3 is an initial step triggering accelerated muscle proteolysis in catabolic conditions. , 2004, The Journal of clinical investigation.
[35] J. Bartlett. Weight loss and wasting in patients infected with human immunodeficiency virus , 2004 .
[36] I. Jones,et al. Amino terminal interaction in the prion protein identified using fusion to green fluorescent protein , 2003, Journal of neurochemistry.
[37] Yi-Ping Li,et al. Hydrogen peroxide stimulates ubiquitin-conjugating activity and expression of genes for specific E2 and E3 proteins in skeletal muscle myotubes. , 2003, American journal of physiology. Cell physiology.
[38] M. Tisdale. Pathogenesis of cancer cachexia. , 2003, The journal of supportive oncology.
[39] R. N. Saha,et al. Tumor necrosis factor‐α at the crossroads of neuronal life and death during HIV‐associated dementia , 2003, Journal of neurochemistry.
[40] A. Goldberg,et al. TNF‐α increases ubiquitin‐conjugating activity in skeletal muscle by up‐regulating UbcH2/E220k , 2003 .
[41] P. Hasselgren,et al. Sepsis upregulates the gene expression of multiple ubiquitin ligases in skeletal muscle. , 2003, The international journal of biochemistry & cell biology.
[42] S. Grinspoon,et al. Weight loss and wasting in patients infected with human immunodeficiency virus. , 2003, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[43] Arthur S Slutsky,et al. One-year outcomes in survivors of the acute respiratory distress syndrome. , 2003, The New England journal of medicine.
[44] S. Parthasarathy,et al. Is weaning failure caused by low-frequency fatigue of the diaphragm? , 2003, American journal of respiratory and critical care medicine.
[45] A. Goldberg,et al. TNF-alpha increases ubiquitin-conjugating activity in skeletal muscle by up-regulating UbcH2/E220k. , 2003, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[46] A. Navarro,et al. The role of mitochondrial nitric oxide synthase in inflammation and septic shock. , 2002, Free radical biology & medicine.
[47] S. Kimball,et al. Phosphorylation of eukaryotic initiation factor eIF2Bepsilon in skeletal muscle during sepsis. , 2002, American journal of physiology. Endocrinology and metabolism.
[48] H. Westerblad,et al. Respiratory and limb muscle weakness induced by tumor necrosis factor-alpha: involvement of muscle myofilaments. , 2002, American journal of respiratory and critical care medicine.
[49] Rong-Sen Yang,et al. Nitric oxide is not involved in the endotoxemia-induced alterations in Ca2+ and ryanodine responses in mouse diaphragms , 2002, Naunyn-Schmiedeberg's Archives of Pharmacology.
[50] John Land,et al. Association between mitochondrial dysfunction and severity and outcome of septic shock , 2002, The Lancet.
[51] S. Hussain,et al. Molecular characterization of a superoxide-generating NAD(P)H oxidase in the ventilatory muscles. , 2002, American journal of respiratory and critical care medicine.
[52] S. Kimball,et al. Phosphorylation of eukaryotic initiation factor eIF2Bepsilon in skeletal muscle during sepsis. , 2002, American journal of physiology. Endocrinology and metabolism.
[53] E. Hund. Neurological complications of sepsis: critical illness polyneuropathy and myopathy , 2001, Journal of Neurology.
[54] D J Glass,et al. Identification of Ubiquitin Ligases Required for Skeletal Muscle Atrophy , 2001, Science.
[55] J. Stamler,et al. Cysteine-3635 is responsible for skeletal muscle ryanodine receptor modulation by NO , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[56] J. Moxham,et al. Measurement of twitch transdiaphragmatic, esophageal, and endotracheal tube pressure with bilateral anterolateral magnetic phrenic nerve stimulation in patients in the intensive care unit , 2001, Critical care medicine.
[57] H. Obara,et al. ONO-1714, a new inducible nitric oxide synthase inhibitor, attenuates diaphragmatic dysfunction associated with cerulein-induced pancreatitis in rats , 2001, Critical care medicine.
[58] T. Pritts,et al. Dantrolene reduces serum TNFalpha and corticosterone levels and muscle calcium, calpain gene expression, and protein breakdown in septic rats. , 2001, Shock.
[59] A. Dimarco,et al. Free radical-induced contractile protein dysfunction in endotoxin-induced sepsis. , 2001, American journal of respiratory cell and molecular biology.
[60] L. Szweda,et al. Free radicals alter maximal diaphragmatic mitochondrial oxygen consumption in endotoxin-induced sepsis. , 2001, Free radical biology & medicine.
[61] T. Nosek,et al. Superoxide, hydroxyl radical, and hydrogen peroxide effects on single-diaphragm fiber contractile apparatus. , 2001, Journal of applied physiology.
[62] A. Mebazaa,et al. Muscular contractile failure in septic patients: role of the inducible nitric oxide synthase pathway. , 2000, American journal of respiratory and critical care medicine.
[63] Y. Masuda,et al. Effect of free radical scavengers on diaphragmatic contractility in septic peritonitis. , 2000, American journal of respiratory and critical care medicine.
[64] C. Lang,et al. IGF-I/IGFBP-3 binary complex modulates sepsis-induced inhibition of protein synthesis in skeletal muscle. , 2000, American journal of physiology. Endocrinology and metabolism.
[65] F. Clubb,et al. Cardiac-Specific Overexpression of Tumor Necrosis Factor-&agr; Causes Oxidative Stress and Contractile Dysfunction in Mouse Diaphragm , 2000, Circulation.
[66] Yi-Ping Li,et al. NF-κB mediates the protein loss induced by TNF-α in differentiated skeletal muscle myotubes , 2000 .
[67] A. Dimarco,et al. PLA2 dependence of diaphragm mitochondrial formation of reactive oxygen species , 2000 .
[68] E. Narimatsu,et al. Alteration in diaphragmatic contractility during septic peritonitis in rats: Effect of polyethylene glycol-absorbed superoxide dismutase , 2000, Critical care medicine.
[69] A. Dimarco,et al. Endotoxin administration alters the force vs. pCa relationship of skeletal muscle fibers. , 2000, American journal of physiology. Regulatory, integrative and comparative physiology.
[70] A. Dimarco,et al. PLA(2) dependence of diaphragm mitochondrial formation of reactive oxygen species. , 2000, Journal of applied physiology.
[71] Y. Li,et al. NF-kappaB mediates the protein loss induced by TNF-alpha in differentiated skeletal muscle myotubes. , 2000, American journal of physiology. Regulatory, integrative and comparative physiology.
[72] S. Hamilton,et al. RyR1 modulation by oxidation and calmodulin. , 2000, Antioxidants & redox signaling.
[73] T. Okamoto,et al. The 1999 Moyer award. Burn injury induces skeletal muscle apoptosis and the activation of caspase pathways in rats. , 1999, The Journal of burn care & rehabilitation.
[74] A. Dimarco,et al. Sepsis increases contraction-related generation of reactive oxygen species in the diaphragm. , 1999, Journal of applied physiology.
[75] J. Poderoso,et al. Endogenous peroxynitrite mediates mitochondrial dysfunction in rat diaphragm during endotoxemia , 1999, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[76] A. Dimarco,et al. Peroxynitrite induces contractile dysfunction and lipid peroxidation in the diaphragm. , 1999, Journal of applied physiology.
[77] L. Szweda,et al. Apocynin improves diaphragmatic function after endotoxin administration. , 1999, Journal of applied physiology.
[78] S. Gottfried,et al. Diaphragm sarcolemmal injury is induced by sepsis and alleviated by nitric oxide synthase inhibition. , 1998, American journal of respiratory and critical care medicine.
[79] F. Maltais,et al. Peripheral muscle weakness in patients with chronic obstructive pulmonary disease. , 1998, American journal of respiratory and critical care medicine.
[80] R. Schwartz,et al. Skeletal muscle myocytes undergo protein loss and reactive oxygen-mediated NF-κB activation in response to tumor necrosis factor α , 1998 .
[81] R. Schwartz,et al. Skeletal muscle myocytes undergo protein loss and reactive oxygen-mediated NF-kappaB activation in response to tumor necrosis factor alpha. , 1998, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[82] J. Bénessiano,et al. Role of nitric oxide on diaphragmatic contractile failure in Escherichia coli endotoxemic rats. , 1998, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[83] G. Tiao,et al. Sepsis increases oxidatively damaged proteins in skeletal muscle. , 1996, Archives of surgery.
[84] A. Dimarco,et al. Comparison of the effects of endotoxin on limb, respiratory, and cardiac muscles. , 1996, Journal of applied physiology.
[85] M. Buck,et al. Muscle wasting and dedifferentiation induced by oxidative stress in a murine model of cachexia is prevented by inhibitors of nitric oxide synthesis and antioxidants. , 1996, The EMBO journal.
[86] A. Dimarco,et al. Effect of free radical scavengers on endotoxin-induced respiratory muscle dysfunction. , 1993, The American review of respiratory disease.
[87] M. Aubier,et al. Effects of N-acetylcysteine on diaphragmatic function and malondialdehyde content in Escherichia coli endotoxemic rats. , 1992, The American review of respiratory disease.
[88] A. Dimarco,et al. Effect of PEG-superoxide dismutase on the diaphragmatic response to endotoxin. , 1992, The American review of respiratory disease.
[89] J. Fischer,et al. Influence of sepsis in rats on muscle protein turnover in vivo and in tissue incubated under different in vitro conditions. , 1991, Metabolism: clinical and experimental.
[90] D. F. Rochester,et al. Effects of a chronic wasting infection on skeletal muscle size and contractile properties. , 1988, Journal of applied physiology.