journal article Dec 22, 2017

Effects of Hypoxia on Erythrocyte Membrane Properties—Implications for Intravascular Hemolysis and Purinergic Control of Blood Flow

View at Publisher Save 10.3389/fphys.2017.01110
Topics

No keywords indexed for this article. Browse by subject →

References
96
[1]
Akopova "Imaging exocytosis of ATP-containing vesicles with TIRF microscopy in lung epithelial A549 cells" Purinergic Signal. (2012) 10.1007/s11302-011-9259-2
[2]
Alaarg "Red blood cell vesiculation in hereditary hemolytic anemia" Front. Physiol. (2013) 10.3389/fphys.2013.00365
[3]
Dehydrated hereditary stomatocytosis linked to gain-of-function mutations in mechanically activated PIEZO1 ion channels

Juliette Albuisson, Swetha E Murthy, Michael Bandell et al.

Nature Communications 2013 10.1038/ncomms2899
[4]
Báthori "Extramitochondrial porin: facts and hypotheses" J. Bioenerg. Biomembr. (2000) 10.1023/a:1005516513313
[5]
Bergfeld "Release of ATP from human erythrocytes in response to a brief period of hypoxia and hypercapnia" Cardiovasc. Res. (1992) 10.1093/cvr/26.1.40
[6]
Bogdanova "Oxygen-dependent ion transport in erythrocytes" Acta Physiol. (2009) 10.1111/j.1748-1716.2008.01934.x
[7]
Brugnara "Therapy with oral clotrimazole induces inhibition of the Gardos channel and reduction of erythrocytes dehydration in patients with sicle cell disease" J. Clin. Invest. (1996) 10.1172/jci118537
[8]
Cassoly "Quantitative analysis of the association of human hemoglobin with the cytoplasmic fragment of band 3 protein" J. Biol. Chem. (1983) 10.1016/s0021-9258(18)32746-7
[9]
Chiu "Intrinsic properties and regulation of Pannexin 1 channel" Channels (2014) 10.4161/chan.27545
[10]
Chu "Reversible binding of hemoglobin to band 3 constitutes the molecular switch that mediates O2 regulation of erythrocyte properties" Blood (2016) 10.1182/blood-2016-01-692079
[11]
Ciana "Membrane Remodelling and vesicle formation during ageing of human red blood cells" Cell. Physiol. Biochem. (2017) 10.1159/000478768
[12]
Cinar "Piezo1 regulates mechanotransductive release of ATP from human RBCs" Proc. Natl. Acad. Sci. U.S.A. (2015) 10.1073/pnas.1507309112
[13]
Colombini "VDAC structure, selectivity, and dynamics" Biochim. Biophys. Acta (2012) 10.1016/j.bbamem.2011.12.026
[14]
Dando "Cell-to-cell communication in intact taste buds through ATP signalling from pannexin 1 gap junction hemichannels" J. Physiol. (2009) 10.1113/jphysiol.2009.180083
[15]
D'hondt "Pannexin channels in ATP release and beyond: An unexpected rendezvous at the endoplasmic reticulum" Cell Signal (2010) 10.1016/j.cellsig.2010.07.018
[16]
Dietrich "Red blood cell regulation of microvascular tone through adenosine triphosphate" Am. J. Physiol. Heart Circ. Physiol. (2000) 10.1152/ajpheart.2000.278.4.h1294
[17]
Shape and Biomechanical Characteristics of Human Red Blood Cells in Health and Disease

Monica Diez-Silva, Ming Dao, Jongyoon Han et al.

MRS Bulletin 2010 10.1557/mrs2010.571
[18]
Durocher "Role of sialic acid in erythrocyte survival" Blood (1975) 10.1182/blood.v45.1.11.11
[19]
Ellsworth "Erythrocytes: oxygen sensors and modulators of vascular tone" Physiology (2009) 10.1152/physiol.00038.2008
[20]
Ellsworth "Role of erythrocyte-released ATP in the regulation of microvascular oxygen supply in skeletal muscle" Acta Physiol. (2016) 10.1111/apha.12596
[21]
Ellsworth "The erythrocyte as a regulator of vascular tone" Am. J. Physiol. (1995)
[22]
Ellsworth "Regulation of blood flow distribution in skeletal muscle: role of erythrocyte-released ATP" J. Physiol. (2012) 10.1113/jphysiol.2012.233106
[23]
Fischer "Determination of erythrocyte deformability and its correlation to cellular ATP release using microbore tubing with diameters that approximate resistance vessels in vivo" Analyst (2003) 10.1039/b308225n
[24]
Forrester "An estimate of adenosine triphosphate release into the venous effluent from exercising human forearm muscle" J. Physiol. (1972) 10.1113/jphysiol.1972.sp009915
[25]
Forsyth "The effects of membrane cholesterol and simvastatin on red blood cell deformability and ATP release" Microvasc. Res. (2012) 10.1016/j.mvr.2012.02.004
[26]
Forsyth "Multiscale approach to link red blood cell dynamics, shear viscosity, and ATP release" Proc. Natl. Acad. Sci. U.S.A. (2011) 10.1073/pnas.1101315108
[27]
González-Alonso "Erythrocyte and the regulation of human skeletal muscle blood flow and oxygen delivery: role of circulating ATP" Circ. Res. (2002) 10.1161/01.res.0000044939.73286.e2
[28]
Greenwalt "The how and why of exocytic vesicles" Transfusion (2006) 10.1111/j.1537-2995.2006.00692.x
[29]
Grygorczyk "CFTR-independent ATP release from epithelial cells triggered by mechanical stimuli" Am. J. Physiol. 10.1152/ajpcell.1997.272.3.c1058
[30]
Grygorczyk "Cystic fibrosis transmembrane conductance regulator and adenosine triphosphate [response]" Science
[31]
Grygorczyk "CFTR channels expressed in CHO cells do not have detectable ATP conductance" J. Membr. Biol. (1996) 10.1007/s002329900065
[32]
Hazama "Swelling-induced, CFTR-independent ATP release from a human epithelial cell line: lack of correlation with volume-sensitive Cl- channels" J. Gen. Physiol. (1999) 10.1085/jgp.114.4.525
[33]
Hoffman "Tetrodotoxin-sensitive Na+ channels and muscarinic and purinergic receptors identified in human erythroid progenitor cells and red blood cell ghosts" Proc. Natl. Acad. Sci. U.S.A. (2004) 10.1073/pnas.0404228101
[34]
Huang "Human red blood cell aging: correlative changes in surface charge and cell properties" J. Cell. Mol. Med. (2011) 10.1111/j.1582-4934.2011.01310.x
[35]
Jensen "The dual roles of red blood cells in tissue oxygen delivery: oxygen carriers and regulator of local blood flow" J. Exp. Biol. (2009) 10.1242/jeb.023697
[36]
Keller "Possible roles for ATP release from RBCs exclude the cAMP-mediated Panx1 pathway" Am. J. Physiol. Cell Physiol. (2017) 10.1152/ajpcell.00178.2017
[37]
Kirby "Impaired skeletal muscle blood flow control with advancing age in humans: attenuated ATP release and local vasodilation during erythrocyte deoxygenation" Circ. Res. (2012) 10.1161/circresaha.112.269571
[38]
Kirby "Restoration of intracellular ATP production in banked red blood cells improves inducible ATP export and suppresses RBC-endothelial adhesion" Am. J. Physiol. Heart Circ. Physiol. (2014) 10.1152/ajpheart.00542.2014
[39]
Kirby "Liberation of ATP secondary to hemolysis is not mutually exclusive of regulated export" Blood (2015) 10.1182/blood-2014-11-609610
[40]
Lazarowski "Molecular mechanisms of purine and pyrimidine nucleotide release" Adv. Pharmacol. (2011) 10.1016/b978-0-12-385526-8.00008-4
[41]
Lew "The terminal density reversal phenomenon of aging human red blood cells" Front. Physiol. (2013) 10.3389/fphys.2013.00171
[42]
Li "Purified cystic fibrosis transmembrane conductance regulator (CFTR) does not function as an ATP channel" J. Biol. Chem. (1996) 10.1074/jbc.271.20.11623
[43]
Li "Yield strength of human erythrocyte membranes to impulsive stretching" Biophys. J. (2013) 10.1016/j.bpj.2013.06.045
[44]
Low "Characterization of the reversible conformational equilibrium of the cytoplasmic domain of erythrocyte membrane band 3" J. Biol. Chem. (1984) 10.1016/s0021-9258(18)90658-7
[45]
Luneva "Erythrocytes as regulators of blood vessel tone" Biochem. Suppl. Ser. A Membr. Cell Biol. (2015) 10.1134/s1990747815040078
[46]
Luneva "Deoxygenation affects composition of membrane-bound proteins in human erythrocytes" Cell. Physiol. Biochem. (2016) 10.1159/000445607
[47]
Ma "Pannexin 1 forms an anion-selective channel" Pflugers Arch. (2012) 10.1007/s00424-012-1077-z
[48]
Ma "Pharmacological characterization of pannexin-1 currents expressed in mammalian cells" J. Pharmacol. Exp. Ther. (2009) 10.1124/jpet.108.146365
[49]
Mairbäurl "Red blood cells in sports: effects of exercise and training on oxygen supply by red blood cells" Front. Physiol. (2013) 10.3389/fphys.2013.00332
[50]
Mairbäurl "Role of hemolysis in red cell adenosine triphosphate release in simulated exercise conditions in vitro" Med. Sci. Sports Exerc. (2013) 10.1249/mss.0b013e318296193a

Showing 50 of 96 references

Metrics
53
Citations
96
References
Details
Published
Dec 22, 2017
Vol/Issue
8
Funding
Russian Science Foundation Award: 16-15-10026
Canadian Institutes of Health Research Award: MOP64364
Cite This Article
Ryszard Grygorczyk, Sergei N. Orlov (2017). Effects of Hypoxia on Erythrocyte Membrane Properties—Implications for Intravascular Hemolysis and Purinergic Control of Blood Flow. Frontiers in Physiology, 8. https://doi.org/10.3389/fphys.2017.01110
Related

You May Also Like

Cellular Mechanotransduction: From Tension to Function

Fabiana Martino, Ana R. Perestrelo · 2018

872 citations

The Role of Na+ and K+ Transporters in Salt Stress Adaptation in Glycophytes

Dekoum V. M. Assaha, Akihiro Ueda · 2017

780 citations

Arsenic Toxicity: The Effects on Plant Metabolism

Patrick M. Finnegan, Weihua Chen · 2012

715 citations