Increased mitochondrial arginine metabolism supports bioenergetics in asthma.
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S. Erzurum | S. Comhair | R. Tuder | S. Kalhan | C. Bennett | Sudakshina Ghosh | B. Graham | K. Asosingh | Weiling Xu | A. Janocha | Kimberly Queisser | L. Gruca | C. Kao | Samuel H. Wedes | J. Petrich | Deloris A Mavrakis
[1] A. Boveris,et al. Nitric oxide interacts with mitochondrial complex III producing antimycin-like effects. , 2015, Free radical biology & medicine.
[2] S. Erzurum,et al. Platelets from Asthmatic Individuals Show Less Reliance on Glycolysis , 2015, PloS one.
[3] A. Wree,et al. Arginase 2 deficiency results in spontaneous steatohepatitis: a novel link between innate immune activation and hepatic de novo lipogenesis. , 2015, Journal of hepatology.
[4] S. Erzurum,et al. Nascent Endothelium Initiates Th2 Polarization of Asthma , 2013, The Journal of Immunology.
[5] G. Reifenberger,et al. IDH1(R132H) mutation increases murine haematopoietic progenitors and alters epigenetics , 2012, Nature.
[6] I. S. Kil,et al. Feedback control of adrenal steroidogenesis via H2O2-dependent, reversible inactivation of peroxiredoxin III in mitochondria. , 2012, Molecular cell.
[7] Marshall Summar,et al. Requirement of argininosuccinate lyase for systemic nitric oxide production , 2011, Nature Medicine.
[8] J. Last,et al. Competitive metabolism of L-arginine: arginase as a therapeutic target in asthma , 2011, Journal of biomedical research.
[9] D. Green,et al. HIF1α–dependent glycolytic pathway orchestrates a metabolic checkpoint for the differentiation of TH17 and Treg cells , 2011, The Journal of experimental medicine.
[10] O. Hankinson,et al. Hypoxia Inducible Factor promotes murine allergic airway inflammation and is increased in asthma and rhinitis , 2011, Allergy.
[11] K. Sahlin,et al. Dietary inorganic nitrate improves mitochondrial efficiency in humans. , 2011, Cell metabolism.
[12] Da‐hong Wang,et al. Direct inhibition of arginase attenuated airway allergic reactions and inflammation in a Dermatophagoides farinae-induced NC/Nga mouse model. , 2010, American journal of physiology. Lung cellular and molecular physiology.
[13] V. Darley-Usmar,et al. Mitochondrial reserve capacity in endothelial cells: The impact of nitric oxide and reactive oxygen species. , 2010, Free radical biology & medicine.
[14] A. Gounni,et al. Thymic stromal lymphopoietin-induced human asthmatic airway epithelial cell proliferation through an IL-13-dependent pathway. , 2010, The Journal of allergy and clinical immunology.
[15] S. Erzurum,et al. Allergen-induced, eotaxin-rich, proangiogenic bone marrow progenitors: a blood-borne cellular envoy for lung eosinophilia. , 2010, The Journal of allergy and clinical immunology.
[16] D. Postma,et al. Arginase 1 and arginase 2 variations associate with asthma, asthma severity and β2 agonist and steroid response , 2010, Pharmacogenetics and genomics.
[17] B. Krishnamachary,et al. Cardiovascular , Pulmonary and Renal Pathology Hypoxia Inducible-Factor 1 Regulates the Metabolic Shift of Pulmonary Hypertensive Endothelial Cells , 2010 .
[18] S. Erzurum,et al. Redox control of asthma: molecular mechanisms and therapeutic opportunities. , 2010, Antioxidants & redox signaling.
[19] H. Meurs,et al. Arginase: a key enzyme in the pathophysiology of allergic asthma opening novel therapeutic perspectives , 2009, British journal of pharmacology.
[20] U. Mabalirajan,et al. Esculetin Restores Mitochondrial Dysfunction and Reduces Allergic Asthma Features in Experimental Murine Model1 , 2009, The Journal of Immunology.
[21] K. Andrews,et al. Arginase II Knockout Mouse Displays a Hypertensive Phenotype Despite a Decreased Vasoconstrictory Profile , 2009, Hypertension.
[22] Manhong Wu,et al. Arginine, citrulline and nitric oxide metabolism in sepsis. , 2009, Clinical science.
[23] W. O'Brien,et al. Bone marrow cell derived arginase I is the major source of allergen-induced lung arginase but is not required for airway hyperresponsiveness, remodeling and lung inflammatory responses in mice , 2009, BMC Immunology.
[24] F. Gilliland,et al. Roles of arginase variants, atopy, and ozone in childhood asthma. , 2009, The Journal of allergy and clinical immunology.
[25] A. Linderholm,et al. Arginase enzymes in isolated airways from normal and nitric oxide synthase 2-knockout mice exposed to ovalbumin. , 2009, Toxicology and applied pharmacology.
[26] M. Tremblay,et al. Redox regulation of interleukin-4 signaling. , 2008, Immunity.
[27] W. Busse,et al. Alterations of the arginine metabolome in asthma. , 2008, American journal of respiratory and critical care medicine.
[28] C. Irvin,et al. Inhibition of Arginase Activity Enhances Inflammation in Mice with Allergic Airway Disease, in Association with Increases in Protein S-Nitrosylation and Tyrosine Nitration1 , 2008, The Journal of Immunology.
[29] K. Takeda,et al. Role and regulation of prolyl hydroxylase domain proteins , 2008, Cell Death and Differentiation.
[30] S. Allahverdian,et al. Secretion of IL-13 by airway epithelial cells enhances epithelial repair via HB-EGF. , 2008, American journal of respiratory cell and molecular biology.
[31] G. Semenza,et al. Hypoxia-Inducible Factor 1 (HIF-1) Pathway , 2007, Science's STKE.
[32] M. Blackburn,et al. Central role of Muc5ac expression in mucous metaplasia and its regulation by conserved 5' elements. , 2007, American journal of respiratory cell and molecular biology.
[33] J. Last,et al. Mouse models of asthma: can they give us mechanistic insights into the role of nitric oxide? , 2007, Current medicinal chemistry.
[34] M. Mori. Regulation of nitric oxide synthesis and apoptosis by arginase and arginine recycling. , 2007, The Journal of nutrition.
[35] Raed A Dweik,et al. Alterations of cellular bioenergetics in pulmonary artery endothelial cells , 2007, Proceedings of the National Academy of Sciences.
[36] C. Macleod,et al. Cationic amino acid transporter 2 regulates inflammatory homeostasis in the lung , 2006, Proceedings of the National Academy of Sciences.
[37] S. Hazen,et al. Nitrotyrosine Proteome Survey in Asthma Identifies Oxidative Mechanism of Catalase Inactivation1 , 2006, The Journal of Immunology.
[38] S. Morris. Arginine: beyond protein. , 2006, The American journal of clinical nutrition.
[39] E. Kistner,et al. Genetic polymorphisms in arginase I and II and childhood asthma and atopy. , 2006, The Journal of allergy and clinical immunology.
[40] M. Wills-Karp,et al. Interleukin‐13 in asthma pathogenesis , 2004, Immunological reviews.
[41] S. Hazen,et al. Increased arginase II and decreased NO synthesis in endothelial cells of patients with pulmonary arterial hypertension , 2004, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[42] S. Morris,et al. Decreased arginine bioavailability and increased serum arginase activity in asthma. , 2004, American journal of respiratory and critical care medicine.
[43] S. Erzurum,et al. STAT-1 and c-Fos interaction in nitric oxide synthase-2 gene activation. , 2003, American journal of physiology. Lung cellular and molecular physiology.
[44] Qutayba Hamid,et al. Dissection of experimental asthma with DNA microarray analysis identifies arginase in asthma pathogenesis. , 2003, The Journal of clinical investigation.
[45] A. Lavoinne,et al. Argininosuccinate synthetase from the urea cycle to the citrulline-NO cycle. , 2003, European journal of biochemistry.
[46] Kap-Seok Yang,et al. Reversing the Inactivation of Peroxiredoxins Caused by Cysteine Sulfinic Acid Formation , 2003, Science.
[47] Kai-Uwe Eckardt,et al. The FASEB Journal express article 10.1096/fj.02-0445fje. Published online December 17, 2002. Widespread, hypoxia-inducible expression of HIF-2α in distinct cell populations of different organs , 2022 .
[48] S. Kalhan,et al. The Key Role of Anaplerosis and Cataplerosis for Citric Acid Cycle Function* , 2002, The Journal of Biological Chemistry.
[49] H. Zoghbi,et al. Generation of a Mouse Model for Arginase II Deficiency by Targeted Disruption of the Arginase II Gene , 2001, Molecular and Cellular Biology.
[50] Mary Jane Thomassen,et al. Regulation of No Synthesis Transcriptional and Post-translational Oxide (no) in Asthma: Evidence for Molecular Mechanisms of Increased Nitric , 2013 .
[51] A. Bruhat,et al. Amino acid regulation of gene expression. , 1999, The Biochemical journal.
[52] A. Bruhat,et al. Amino acid regulation of gene expression. , 2000, Current opinion in clinical nutrition and metabolic care.
[53] J. Drazen,et al. Contribution of Nitric Oxide Synthases 1, 2, and 3 to Airway Hyperresponsiveness and Inflammation in a Murine Model of Asthma , 1999, The Journal of experimental medicine.
[54] D. Laskowski,et al. Nitric oxide synthesis in the lung. Regulation by oxygen through a kinetic mechanism. , 1998, The Journal of clinical investigation.
[55] S. Gross,et al. Argininosuccinate Synthetase Overexpression in Vascular Smooth Muscle Cells Potentiates Immunostimulant-induced NO Production* , 1997, The Journal of Biological Chemistry.
[56] V. Young,et al. Whole body nitric oxide synthesis in healthy men determined from [15N] arginine-to-[15N]citrulline labeling. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[57] Y. Yu,et al. Coinduction of Nitric Oxide Synthase, Argininosuccinate Synthetase, and Argininosuccinate Lyase in Lipopolysaccharide-treated Rats , 1996, The Journal of Biological Chemistry.
[58] H. Towle. Metabolic Regulation of Gene Transcription in Mammals (*) , 1995, The Journal of Biological Chemistry.
[59] J. F. Burke,et al. Plasma arginine and citrulline kinetics in adults given adequate and arginine-free diets. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[60] J. Vane,et al. The metabolism of L-arginine and its significance for the biosynthesis of endothelium-derived relaxing factor: cultured endothelial cells recycle L-citrulline to L-arginine. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[61] M. Olson,et al. Regulation of the glycine cleavage system in isolated rat liver mitochondria. , 1983, The Journal of biological chemistry.
[62] S. Kalhan,et al. Gas chromatography/mass spectrometric determination of [15N]urea in plasma and application to urea metabolism study. , 1982, Analytical chemistry.