Acute blood loss stimulates fibroblast growth factor 23 production.
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[1] D. Leaf,et al. Fibroblast Growth Factor 23 Levels Associate with AKI and Death in Critical Illness. , 2017, Journal of the American Society of Nephrology : JASN.
[2] K. White,et al. Acute Parathyroid Hormone Injection Increases C-Terminal but Not Intact Fibroblast Growth Factor 23 Levels , 2017, Endocrinology.
[3] E. Valore,et al. Effects of dietary iron intake and chronic kidney disease on fibroblast growth factor 23 metabolism in wild-type and hepcidin knockout mice. , 2016, American journal of physiology. Renal physiology.
[4] M. Wolf,et al. Fibroblast growth factor 23 directly targets hepatocytes to promote inflammation in chronic kidney disease. , 2016, Kidney international.
[5] A. Dusso,et al. Direct inhibition of osteoblastic Wnt pathway by fibroblast growth factor 23 contributes to bone loss in chronic kidney disease. , 2016, Kidney International.
[6] D. Leaf,et al. Fibroblast growth factor 23 levels are elevated and associated with severe acute kidney injury and death following cardiac surgery. , 2016, Kidney International.
[7] M. Unruh,et al. FGF23 signaling impairs neutrophil recruitment and host defense during CKD. , 2016, Journal of Clinical Investigation.
[8] H. Liou,et al. High Fibroblast Growth Factor 23 Levels Associated With Low Hemoglobin Levels in Patients With Chronic Kidney Disease Stages 3 and 4 , 2016, Medicine.
[9] M. Wolf,et al. Inflammation and functional iron deficiency regulate fibroblast growth factor 23 production , 2015, Kidney international.
[10] E. Siew,et al. Choice of Reference Serum Creatinine in Defining Acute Kidney Injury , 2015, Nephron.
[11] M. Vervloet,et al. Relation between Red Cell Distribution Width and Fibroblast Growth Factor 23 Cleaving in Patients with Chronic Kidney Disease and Heart Failure , 2015, PloS one.
[12] D. Wojchowski,et al. Emerging EPO and EPO receptor regulators and signal transducers. , 2015, Blood.
[13] Xiaobin Han,et al. Osteocyte-Specific Deletion of Fgfr1 Suppresses FGF23 , 2014, PloS one.
[14] M. Wolf,et al. Coupling fibroblast growth factor 23 production and cleavage: iron deficiency, rickets, and kidney disease , 2014, Current opinion in nephrology and hypertension.
[15] H. Hulter,et al. The human response to acute enteral and parenteral phosphate loads. , 2014, Journal of the American Society of Nephrology : JASN.
[16] J. Bacchetta,et al. Suppression of iron-regulatory hepcidin by vitamin D. , 2014, Journal of the American Society of Nephrology : JASN.
[17] S. Rivella,et al. FGF-23 Is a Negative Regulator of Prenatal and Postnatal Erythropoiesis* , 2014, The Journal of Biological Chemistry.
[18] M. Wolf,et al. Effects of iron deficiency anemia and its treatment on fibroblast growth factor 23 and phosphate homeostasis in women , 2013, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[19] A. Khwaja. KDIGO Clinical Practice Guidelines for Acute Kidney Injury , 2012, Nephron Clinical Practice.
[20] A. Go,et al. FGF23 induces left ventricular hypertrophy. , 2011, The Journal of clinical investigation.
[21] E. Farrow,et al. Iron deficiency drives an autosomal dominant hypophosphatemic rickets (ADHR) phenotype in fibroblast growth factor-23 (Fgf23) knock-in mice , 2011, Proceedings of the National Academy of Sciences.
[22] Leah R. Padgett,et al. Iron modifies plasma FGF23 differently in autosomal dominant hypophosphatemic rickets and healthy humans. , 2011, The Journal of clinical endocrinology and metabolism.
[23] Jiang He,et al. Fibroblast growth factor 23 and risks of mortality and end-stage renal disease in patients with chronic kidney disease. , 2011, JAMA.
[24] J. Silver,et al. PTH increases FGF23 gene expression and mediates the high-FGF23 levels of experimental kidney failure: a bone parathyroid feedback loop. , 2010, American journal of physiology. Renal physiology.
[25] H. Jüppner,et al. Regulation of phosphate homeostasis by PTH, vitamin D, and FGF23. , 2010, Annual review of medicine.
[26] C. Schmid,et al. A new equation to estimate glomerular filtration rate. , 2009, Annals of internal medicine.
[27] Y. Takeuchi,et al. FGF‐23 Is a Potent Regulator of Vitamin D Metabolism and Phosphate Homeostasis , 2003, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[28] P. Persson,et al. Modulation of erythropoietin formation by changes in blood volume in conscious dogs. , 1995, The Journal of physiology.
[29] U Boutellier,et al. Rate of erythropoietin formation in humans in response to acute hypobaric hypoxia. , 1989, Journal of applied physiology.
[30] Marilyn E. Miller,et al. The Efffects of Acute Bleeding on Acid–Base Balance, Erythropoietin (Ep) Production and in Vivo P50 in the Rat , 1976, British journal of haematology.
[31] S. Mundra,et al. Fibroblast Growth Factor 23 and Mortality among Patients Undergoing Hemodialysis , 2009 .