Suppression of Mitochondrial Biogenesis through Toll-Like Receptor 4–Dependent Mitogen-Activated Protein Kinase Kinase/Extracellular Signal-Regulated Kinase Signaling in Endotoxin-Induced Acute Kidney Injury
暂无分享,去创建一个
Joshua R. Smith | R. Schnellmann | Joshua A. Smith | K. Chavin | Justin B. Collier | L. J. Stallons | Joshua A. Smith
[1] F. Pallardó,et al. Mitochondrial biogenesis in health and disease. Molecular and therapeutic approaches. , 2014, Current pharmaceutical design.
[2] H. Luan,et al. OM85-BV induced the productions of IL-1β, IL-6, and TNF-α via TLR4- and TLR2-mediated ERK1/2/NF-κB pathway in RAW264.7 cells. , 2014, Journal of interferon & cytokine research : the official journal of the International Society for Interferon and Cytokine Research.
[3] J. Megyesi,et al. Formoterol restores mitochondrial and renal function after ischemia-reperfusion injury. , 2014, Journal of the American Society of Nephrology : JASN.
[4] L. MacMillan-Crow,et al. Inactivation of renal mitochondrial respiratory complexes and manganese superoxide dismutase during sepsis: mitochondria-targeted antioxidant mitigates injury. , 2014, American journal of physiology. Renal physiology.
[5] S. Tang,et al. Toll-like receptors: sensing and reacting to diabetic injury in the kidney. , 2014, Nephrology, dialysis, transplantation : official publication of the European Dialysis and Transplant Association - European Renal Association.
[6] Songming Huang,et al. Mitochondrial dysfunction in the pathophysiology of renal diseases. , 2014, American journal of physiology. Renal physiology.
[7] R. Schnellmann,et al. Suppressed mitochondrial biogenesis in folic acid-induced acute kidney injury and early fibrosis. , 2014, Toxicology letters.
[8] J. Kellum,et al. A Unified Theory of Sepsis-Induced Acute Kidney Injury: Inflammation, Microcirculatory Dysfunction, Bioenergetics, and the Tubular Cell Adaptation to Injury , 2014, Shock.
[9] R. Schnellmann,et al. Accelerated recovery of renal mitochondrial and tubule homeostasis with SIRT1/PGC-1α activation following ischemia-reperfusion injury. , 2013, Toxicology and applied pharmacology.
[10] Rhea Bhargava,et al. Acute Lung Injury and Acute Kidney Injury Are Established by Four Hours in Experimental Sepsis and Are Improved with Pre, but Not Post, Sepsis Administration of TNF-α Antibodies , 2013, PloS one.
[11] D. Powell,et al. Cytoplasmic LPS Activates Caspase-11: Implications in TLR4-Independent Endotoxic Shock , 2013, Science.
[12] M. T. Wong,et al. Noncanonical Inflammasome Activation by Intracellular LPS Independent of TLR4 , 2013, Science.
[13] D. Good,et al. Lumen LPS inhibits HCO3(-) absorption in the medullary thick ascending limb through TLR4-PI3K-Akt-mTOR-dependent inhibition of basolateral Na+/H+ exchange. , 2013, American journal of physiology. Renal physiology.
[14] Michael T. Eadon,et al. TNF-mediated damage to glomerular endothelium is an important determinant of acute kidney injury in sepsis , 2013, Kidney international.
[15] R. Schnellmann,et al. Mitochondrial Homeostasis in Acute Organ Failure , 2013, Current Pathobiology Reports.
[16] R. Hotchkiss,et al. Mechanisms of cardiac and renal dysfunction in patients dying of sepsis. , 2013, American journal of respiratory and critical care medicine.
[17] Richard E Trager,et al. The β2-Adrenoceptor Agonist Formoterol Stimulates Mitochondrial Biogenesis , 2012, Journal of Pharmacology and Experimental Therapeutics.
[18] F. Khodagholi,et al. ERK and p38 inhibitors attenuate memory deficits and increase CREB phosphorylation and PGC-1α levels in Aβ-injected rats , 2012, Behavioural Brain Research.
[19] A. Schols,et al. Regulation of skeletal muscle oxidative phenotype by classical NF‐κB signalling , 2012, Biochimica et biophysica acta.
[20] R. Schnellmann,et al. Persistent disruption of mitochondrial homeostasis after acute kidney injury. , 2012, American journal of physiology. Renal physiology.
[21] Takayuki Yamaguchi,et al. Suppressive effect of an orally active MEK1/2 inhibitor in two different animal models for rheumatoid arthritis: a comparison with leflunomide , 2012, Inflammation Research.
[22] M. Bhasin,et al. PGC-1α promotes recovery after acute kidney injury during systemic inflammation in mice. , 2011, The Journal of clinical investigation.
[23] Takayuki Yamaguchi,et al. Antitumor activities of JTP-74057 (GSK1120212), a novel MEK1/2 inhibitor, on colorectal cancer cell lines in vitro and in vivo. , 2011, International journal of oncology.
[24] R. Scarpulla,et al. Metabolic control of mitochondrial biogenesis through the PGC-1 family regulatory network. , 2011, Biochimica et biophysica acta.
[25] R. Gottlieb,et al. Mitochondrial turnover in the heart. , 2011, Biochimica et biophysica acta.
[26] J. Weinberg. Mitochondrial biogenesis in kidney disease. , 2011, Journal of the American Society of Nephrology : JASN.
[27] R. Annan,et al. GSK1120212 (JTP-74057) Is an Inhibitor of MEK Activity and Activation with Favorable Pharmacokinetic Properties for Sustained In Vivo Pathway Inhibition , 2011, Clinical Cancer Research.
[28] T. Chan,et al. The p65 subunit of NF-kappaB binds to PGC-1alpha, linking inflammation and metabolic disturbances in cardiac cells. , 2010, Cardiovascular research.
[29] F. Granucci,et al. Deciphering the complexity of Toll-like receptor signaling , 2010, Cellular and Molecular Life Sciences.
[30] C. Piantadosi,et al. Differential Regulation of the PGC Family of Genes in a Mouse Model of Staphylococcus aureus Sepsis , 2010, PloS one.
[31] R. Schnellmann,et al. Toll‐like receptor 4 is a key mediator of murine steatotic liver warm ischemia/reperfusion injury , 2009, Liver transplantation : official publication of the American Association for the Study of Liver Diseases and the International Liver Transplantation Society.
[32] G. Kaushal,et al. Actinonin, a meprin A inhibitor, protects the renal microcirculation during sepsis , 2009, Shock.
[33] J. Miyoshi,et al. Serine/threonine kinase, Cot/Tpl2, regulates renal cell apoptosis in ischaemia/reperfusion injury , 2008, Nephrology.
[34] S. Waikar,et al. Diagnosis, epidemiology and outcomes of acute kidney injury. , 2008, Clinical journal of the American Society of Nephrology : CJASN.
[35] R. Bellomo,et al. Pathophysiology of septic acute kidney injury: What do we really know? , 2008, Critical care medicine.
[36] R. Bellomo,et al. The histopathology of septic acute kidney injury: a systematic review , 2008, Critical care.
[37] Philip R Mayeux,et al. Evidence for the role of reactive nitrogen species in polymicrobial sepsis-induced renal peritubular capillary dysfunction and tubular injury. , 2007, Journal of the American Society of Nephrology : JASN.
[38] R. Bellomo,et al. Septic acute kidney injury in critically ill patients: clinical characteristics and outcomes. , 2007, Clinical journal of the American Society of Nephrology : CJASN.
[39] P. Kimmel,et al. Elevated plasma concentrations of IL-6 and elevated APACHE II score predict acute kidney injury in patients with severe sepsis. , 2006, Clinical journal of the American Society of Nephrology : CJASN.
[40] X. Palomer,et al. Palmitate-Mediated Downregulation of Peroxisome Proliferator–Activated Receptor-γ Coactivator 1α in Skeletal Muscle Cells Involves MEK1/2 and Nuclear Factor-κB Activation , 2006, Diabetes.
[41] D. Kelly,et al. PGC-1 coactivators: inducible regulators of energy metabolism in health and disease. , 2006, The Journal of clinical investigation.
[42] Steve Gerondakis,et al. Diverse Toll-like receptors utilize Tpl2 to activate extracellular signal-regulated kinase (ERK) in hemopoietic cells. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[43] R. Bellomo,et al. Acute renal failure in critically ill patients: a multinational, multicenter study. , 2005, JAMA.
[44] Marian F Young,et al. The matrix component biglycan is proinflammatory and signals through Toll-like receptors 4 and 2 in macrophages. , 2005, The Journal of clinical investigation.
[45] F. Haddy,et al. Acute renal failure and sepsis. , 2004, The New England journal of medicine.
[46] J. Megyesi,et al. Alterations of PPARα and its coactivator PGC-1 in cisplatin-induced acute renal failure , 2002 .
[47] R. Bellomo,et al. Epidemiology, management, and outcome of severe acute renal failure of critical illness in Australia , 2001, Critical care medicine.
[48] N. Mackman,et al. Lipopolysaccharide activation of the MEK-ERK1/2 pathway in human monocytic cells mediates tissue factor and tumor necrosis factor alpha expression by inducing Elk-1 phosphorylation and Egr-1 expression. , 2001, Blood.
[49] R. Schrier,et al. Endotoxemic renal failure in mice: Role of tumor necrosis factor independent of inducible nitric oxide synthase. , 2001, Kidney international.
[50] G. Kollias,et al. TNF-α Induction by LPS Is Regulated Posttranscriptionally via a Tpl2/ERK-Dependent Pathway , 2000, Cell.
[51] P. Puigserver,et al. A Cold-Inducible Coactivator of Nuclear Receptors Linked to Adaptive Thermogenesis , 1998, Cell.
[52] M. Aleo,et al. Recovery of cellular functions following oxidant injury. , 1998, American journal of physiology. Renal physiology.
[53] A. S. Appel,et al. Acute Renal Failure , 1960, Advances in Experimental Medicine and Biology.
[54] T. Chan,et al. The p65 subunit of NF-kB binds to PGC-1a, linking inflammation and metabolic disturbances in cardiac cells , 2010 .
[55] N. Gokden,et al. Peritubular capillary dysfunction and renal tubular epithelial cell stress following lipopolysaccharide administration in mice. , 2007, American journal of physiology. Renal physiology.
[56] X. Palomer,et al. Palmitate-mediated downregulation of peroxisome proliferator-activated receptor-gamma coactivator 1alpha in skeletal muscle cells involves MEK1/2 and nuclear factor-kappaB activation. , 2006, Diabetes.
[57] R. Quigg,et al. Acute Renal Failure in Endotoxemia is Dependent on Caspase Activation , 2003 .
[58] G. Kollias,et al. TNF-alpha induction by LPS is regulated posttranscriptionally via a Tpl2/ERK-dependent pathway. , 2000, Cell.
[59] A. DeFranco,et al. The role of tyrosine kinases and map kinases in LPS-induced signaling. , 1998, Progress in clinical and biological research.
[60] S. Soltoff,et al. ATP and the regulation of renal cell function. , 1986, Annual review of physiology.