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Green Chemistry, ISSN 1463-9262, 01/2011, Volume 13, Issue 5, pp. 1167 - 1174
Using the biorefinery concept, l-arginine could become widely available from biomass waste streams via the nitrogen storage polypeptide cyanophycin. In our... 
Arginase
Journal Article
Critical Reviews in Immunology, ISSN 1040-8401, 01/2012, Volume 32, Issue 6, pp. 463 - 488
The purpose of immunology is simple. Cure or prevent disease. M1/M2 is useful because it is simple. M1/M2 describes the two major and opposing activities of... 
Arginase
Journal Article
Journal Article
Tuberculosis, ISSN 1472-9792, 07/2009, Volume 89, Issue 4, pp. 294 - 303
In mice, and possibly in humans, nitric oxide (NO) is an important host-defense molecule against Mycobacterium tuberculosis. Inducible nitric oxide synthase... 
Arginase
Journal Article
PLoS ONE, 07/2013, Volume 8, Issue 7
Obesity is a chronic inflammatory disease that weakens macrophage innate immune response to infections. Since M1 polarization is crucial during acute... 
Arginase
Journal Article
PLoS ONE, 06/2013, Volume 8, Issue 6
The contribution of complement to the development of autoimmune diabetes has been proposed recently. The underlying mechanisms, however, remain poorly... 
Arginase
Journal Article
Journal Article
The Journal of Immunology, ISSN 0022-1767, 08/2004, Volume 173, Issue 3, pp. 2109 - 2117
Journal Article
Autophagy, ISSN 1554-8627, 12/2014, Volume 10, Issue 12, pp. 2223 - 2238
Impaired autophagy function and enhanced ARG2 (arginase 2)-MTOR (mechanistic target of rapamycin) crosstalk are implicated in vascular aging and... 
AKT/PKB, v-akt murine thymoma viral oncogene homolog 1 | SMC, smooth muscle cells | arginase type II deficient | SA-ß-gal, senescence-associated-β-gal | VWF, von Willebrand factor | HAEC, human aortic endothelial cells | senescence | nor-NOHA, N | | LC3, microtubule-associated protein 1 light chain 3 | ANOVA, analysis of variance | ULK1, unc-51 like autophagy activating kinase 1 | EC | atherosclerosis | MTOR, mechanistic target of rapamycin | autophagy | ARGINASE | PE, phosphatidylethanolamine | PtdIns3K, phosphatidylinositol 3-kinase | BECN1, Beclin 1, autophagy-related | Apolipoprotein E-deficient | arg2 | 1 | Three-MA, 3-methyladenine | shRNA, short hairpin RNA | RPS6KB1/S6K1, ribosomal protein S6 kinase, 70kDa, polypeptide 1 | endothelial cells | ARG1, arginase 1 | ω | AR, aortic roots | LDL, low-density lipoprotein | Baf A1, bafilomycin A | Atg, autophagy-related | HUVEC, human umbilical vein endothelial cells | PRKAA | SQSTM1/p62, sequestosome 1 | endothelial cell | WT, wild type | apoe | H160F, inactive mutant of mouse ARG2 | MTOR | BEC, S-12 bromoethyl-L-cystine-HCl | TP53/p53, tumor protein 53 | hydroxy-nor-Arginine | CMV, cytomegalovirus | RPS6, ribosomal protein S6 | ARG2, arginase 2 | NOS3/eNOS, nitric oxide synthase 3 (endothelial cell) | PRKAA/AMPK, protein kinase, AMP-activated, α catalytic subunit | Senescence | Atherosclerosis | Autophagy | Endothelial cells | ACTIVATED PROTEIN-KINASE | PHOSPHORYLATION | MECHANISMS | CELL BIOLOGY | LYSOSOMES | INHIBITION | NITRIC-OXIDE | DEGRADATION | S6 KINASE | STRESS | AMP-Activated Protein Kinases - metabolism | Atherosclerosis - pathology | TOR Serine-Threonine Kinases - metabolism | Humans | Arginase - metabolism | Cellular Senescence - physiology | Mice, Transgenic | Autophagy - physiology | Mechanistic Target of Rapamycin Complex 2 | Atherosclerosis - metabolism | Mechanistic Target of Rapamycin Complex 1 | Multiprotein Complexes - metabolism | Animals | Diet, High-Fat | Signal Transduction - physiology
Journal Article