Topics

No keywords indexed for this article. Browse by subject →

References
45
[1]
Panizo "Molecular mechanisms and novel therapeutic approaches to rhabdomyolysis-induced acute kidney injury" Kidney Blood Press. Res. (2015) 10.1159/000368528
[2]
Bosch "Rhabdomyolysis and acute kidney injury" N. Engl. J. Med. (2009) 10.1056/nejmra0801327
[3]
Vanholder "Rhabdomyolysis" J. Am. Soc. Nephrol. (2000) 10.1681/asn.v1181553
[4]
Chatzizisis "The syndrome of rhabdomyolysis: complications and treatment" Eur. J. Intern. Med. (2008) 10.1016/j.ejim.2007.06.037
[5]
de Meijer "Serum creatine kinase as predictor of clinical course in rhabdomyolysis: a 5-year intensive care survey" Intensive Care Med. (2003) 10.1007/s00134-003-1800-5
[6]
Giuliani "Pigment nephropathy: novel insights into inflammasome-mediated pathogenesis" Int. J. Mol. Sci. (2019) 10.3390/ijms20081997
[7]
Gburek "Renal uptake of myoglobin is mediated by the endocytic receptors megalin and cubilin" Am. J. Physiol. Ren. Physiol. (2003) 10.1152/ajprenal.00062.2003
[8]
Moore "A causative role for redox cycling of myoglobin and its inhibition by alkalinization in the pathogenesis and treatment of rhabdomyolysis-induced renal failure" J. Biol. Chem. (1998) 10.1074/jbc.273.48.31731
[9]
Zager "Myoglobin toxicity in proximal human kidney cells: roles of Fe, Ca2+, H2O2, and terminal mitochondrial electron transport" Kidney Int. (1997) 10.1038/ki.1997.104
[10]
Zager "Effects of inorganic iron and myoglobin on in vitro proximal tubular lipid peroxidation and cytotoxicity" J. Clin. Invest. (1992) 10.1172/jci115682
[11]
Boutaud "2nd. Mechanism-based therapeutic approaches to rhabdomyolysis-induced renal failure" Free Radic. Biol. Med. (2011) 10.1016/j.freeradbiomed.2010.10.704
[12]
Heyman "Myoglobinuric acute renal failure in the rat: a role for medullary hypoperfusion, hypoxia, and tubular obstruction" J. Am. Soc. Nephrol. (1996) 10.1681/asn.v771066
[13]
Martillo "The crystallization of monosodium urate" Curr. Rheumatol. Rep. (2014) 10.1007/s11926-013-0400-9
[14]
Shimada "Paradigm shift in the role of uric acid in acute kidney injury" Semin. Nephrol. (2011) 10.1016/j.semnephrol.2011.08.010
[15]
Rosin "Dangers within: DAMP responses to damage and cell death in kidney disease" J. Am. Soc. Nephrol. (2011) 10.1681/asn.2010040430
[16]
Rodriguez-Capote "Utility of urine myoglobin for the prediction of acute renal failure in patients with suspected rhabdomyolysis: a systematic review" Clin. Chem. (2009) 10.1373/clinchem.2009.128546
[17]
Zeng "Continuous renal replacement therapy (CRRT) for rhabdomyolysis" Cochrane Database Syst. Rev. (2014)
[18]
Heyman "Animal models of renal dysfunction: acute kidney injury" Expet Opin. Drug Discov. (2009) 10.1517/17460440902946389
[19]
Homsi "TNF-alpha-mediated cardiorenal injury after rhabdomyolysis in rats" Am. J. Physiol. Ren. Physiol. (2015) 10.1152/ajprenal.00311.2014
[20]
Gois "Allopurinol attenuates rhabdomyolysis-associated acute kidney injury: renal and muscular protection" Free Radic. Biol. Med. (2016) 10.1016/j.freeradbiomed.2016.10.012
[21]
Komada "Role of NLRP3 inflammasomes for rhabdomyolysis-induced acute kidney injury" Sci. Rep. (2015) 10.1038/srep10901
[22]
Belliere "Specific macrophage subtypes influence the progression of rhabdomyolysis-induced kidney injury" J. Am. Soc. Nephrol. (2015) 10.1681/asn.2014040320
[23]
Schroder "The inflammasomes" Cell (2010) 10.1016/j.cell.2010.01.040
[24]
Wang "Necroptosis in acute kidney injury: a shedding light" Cell Death Dis. (2016) 10.1038/cddis.2016.37
[25]
Soni "Established association of legionella with rhabdomyolysis and renal failure: a review of the literature" Respir Med Case Rep (2019)
[26]
Porter "Simultaneous Streptococcus and picornavirus infection. Muscle involvement in acute rhabdomyolysis" J. Am. Med. Assoc. (1981) 10.1001/jama.1981.03310400027020
[27]
Pratt "Rhabdomyolysis associated with acute varicella infection" Clin. Infect. Dis. (1995) 10.1093/clinids/20.2.450
[28]
Ayer "Intrarenal hemodynamics in glycerol-induced myohemoglobinuric acute renal failure in the rat" Circ. Res. (1971) 10.1161/01.res.29.2.128
[29]
Breitzig "4-Hydroxy-2-nonenal: a critical target in oxidative stress?" Am. J. Physiol. Cell Physiol. (2016) 10.1152/ajpcell.00101.2016
[30]
Figueiredo "Characterization of heme as activator of Toll-like receptor 4" J. Biol. Chem. (2007) 10.1074/jbc.m610737200
[31]
Mixed lineage kinase domain-like is a key receptor interacting protein 3 downstream component of TNF-induced necrosis

Jie Zhao, Siriporn Jitkaew, Zhenyu Cai et al.

Proceedings of the National Academy of Sciences 2012 10.1073/pnas.1200012109
[32]
Sun "Mixed lineage kinase domain-like protein mediates necrosis signaling downstream of RIP3 kinase" Cell (2012) 10.1016/j.cell.2011.11.031
[33]
Xu "Recent advances on uric acid transporters" Oncotarget (2017) 10.18632/oncotarget.20135
[34]
Liapis "Myoglobin casts in renal biopsies: immunohistochemistry and morphologic spectrum" Hum. Pathol. (2016) 10.1016/j.humpath.2016.02.026
[35]
Mulay "Cytotoxicity of crystals involves RIPK3-MLKL-mediated necroptosis" Nat. Commun. (2016) 10.1038/ncomms10274
[36]
Honarpisheh "Phagocytosis of environmental or metabolic crystalline particles induces cytotoxicity by triggering necroptosis across a broad range of particle size and shape" Sci. Rep. (2017) 10.1038/s41598-017-15804-9
[37]
Mulay "Necroinflammation in kidney disease" J. Am. Soc. Nephrol. (2016) 10.1681/asn.2015040405
[38]
Chen "RIPK3-MLKL-mediated necroinflammation contributes to AKI progression to CKD" Cell Death Dis. (2018) 10.1038/s41419-018-0936-8
[39]
Nyakundi "Oxidized hemoglobin forms contribute to NLRP3 inflammasome-driven IL-1beta production upon intravascular hemolysis" Biochim. Biophys. Acta (BBA) - Mol. Basis Dis. (2019) 10.1016/j.bbadis.2018.10.030
[40]
Dutra "Hemolysis-induced lethality involves inflammasome activation by heme" Proc. Natl. Acad. Sci. U. S. A. (2014) 10.1073/pnas.1405023111
[41]
Gersch "Uric acid and the immune response" Nephrol. Dial. Transplant. (2006) 10.1093/ndt/gfl226
[42]
Martinon "Gout-associated uric acid crystals activate the NALP3 inflammasome" Nature (2006) 10.1038/nature04516
[43]
Braga "Soluble uric acid activates the NLRP3 inflammasome" Sci. Rep. (2017) 10.1038/srep39884
[44]
Alberts "Precipitation of soluble uric acid is necessary for in vitro activation of the NLRP3 inflammasome in primary human monocytes" J. Rheumatol. (2019) 10.3899/jrheum.180855
[45]
Baldwin "Inhibiting the inflammasome: a chemical perspective" J. Med. Chem. (2016) 10.1021/acs.jmedchem.5b01091
Metrics
50
Citations
45
References
Details
Published
Nov 01, 2020
Vol/Issue
160
Pages
690-695
License
View
Funding
National Health and Medical Research Council
Cite This Article
Anca Grivei, Kurt T.K. Giuliani, Xiangju Wang, et al. (2020). Oxidative stress and inflammasome activation in human rhabdomyolysis-induced acute kidney injury. Free Radical Biology and Medicine, 160, 690-695. https://doi.org/10.1016/j.freeradbiomed.2020.09.011
Related

You May Also Like

Antioxidant activity applying an improved ABTS radical cation decolorization assay

Roberta Re, Nicoletta Pellegrini · 1999

20,537 citations

Structure-antioxidant activity relationships of flavonoids and phenolic acids

Catherine A. Rice-evans, Nicholas J. Miller · 1996

6,683 citations

Oxidative stress, inflammation, and cancer: How are they linked?

Simone Reuter, Subash C. Gupta · 2010

4,526 citations

Oxidative mechanisms in the toxicity of metal ions

S.J. Stohs, D. Bagchi · 1995

3,336 citations