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Research Article

Febrile-range hyperthermia augments reversible TNF-α-induced hyperpermeability in human microvascular lung endothelial cells

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Pages 627-635 | Received 22 Dec 2011, Accepted 29 Apr 2012, Published online: 26 Jul 2012

References

  • Ware LB, Matthay MA. The acute respiratory distress syndrome. N Engl J Med 2000; 342: 1334–1349
  • Acute Respiratory Distress Syndrome Network. Ventilation with lower tidal volumes as compared with traditional tidal volumes for acute lung injury and the acute respiratory distress syndrome. N Engl J Med 2000; 342: 1301–1308
  • Wheeler AP, Bernard GR, Thompson BT, Schoenfeld D, Wiedemann HP, deBoisblanc B, et al. Pulmonary-artery versus central venous catheter to guide treatment of acute lung injury. N Engl J Med 2006; 354: 2213–2224
  • Phua J, Badia JR, Adhikari NK, Friedrich JO, Fowler RA, Singh JM, et al. Has mortality from acute respiratory distress syndrome decreased over time? A systematic review. Am J Respir Crit Care Med 2009; 179: 220–227
  • Rubenfeld GD, Caldwell E, Peabody E, Weaver J, Martin DP, Neff M, et al. Incidence and outcomes of acute lung injury. N Engl J Med 2005; 353: 1685–1693
  • Hasday J, Garrison A, Singh I, Standiford T, Ellis G, Rao S, et al. Febrile-range hyperthermia augments pulmonary neutrophil recruitment and amplifies pulmonary oxygen toxicity. Am J Pathol 2003; 162: 2005–2017
  • Rice P, Martin E, He J-R, Frank M, DeTolla L, Hester L, et al. Febrile-range hyperthermia augments neutrophil accumulation and enhances lung injury in experimental gram-negative bacterial pneumonia. J Immunol 2005; 174: 3676–3685
  • Lipke AB, Matute-Bello G, Herrero R, Kurahashi K, Wong VA, Mongovin SM, et al. Febrile-range hyperthermia augments lipopolysaccharide-induced lung injury by a mechanism of enhanced alveolar epithelial apoptosis. J Immunol 2010; 184: 3801–3813
  • Angelini DJ, Hyun SW, Grigoryev DN, Garg P, Gong P, Singh IS, et al. TNF{alpha} increases tyrosine phosphorylation of vascular endothelial-cadherin and opens the paracellular pathway through fyn activation in human lung endothelia. Am J Physiol Lung Cell Mol Physiol 2006; 291: L1232–1245
  • Goldblum S, Ding X, Campbell-Washington J. TNF-a induces endothelial cell F-actin depolymerization, new actin synthesis, and barrier dysfunction. Am J Physiol 1993; 264: C894–905
  • Goldblum SE, Ding X, Brann TW, Campbell-Washington J. Bacterial lipopolysaccharide induces actin reorganization, intercellular gap formation, and endothelial barrier dysfunction in pulmonary vascular endothelial cells: Concurrent F-actin depolymerization and new actin synthesis. J Cell Physiol 1993; 157: 13–23
  • Goldblum SE, Ding X, Funk SE, Sage EH. SPARC (secreted protein acidic and rich in cysteine) regulates endothelial cell shape and barrier function. Proc Natl Acad Sci USA 1994; 91: 3448–3452
  • Shasby DM, Shasby SS, Sullivan JM, Peach MJ. Role of endothelial cell cytoskeleton in control of endothelial permeability. Circ Res 1982; 51: 657–661
  • Aberle H, Schwartz H, Kemler R. Cadherin-catenin complex: Protein interactions and their implications for cadherin function. J Cell Biochem 1996; 61: 514–523
  • Ridley AJ, Hall A. Signal transduction pathways regulating Rho-mediated stress fibre formation: Requirement for a tyrosine kinase. Embo J 1994; 13: 2600–2610
  • Kemler R. From cadherins to catenins: Cytoplasmic protein interactions and regulation of cell adhesion. Trends Genet 1993; 9: 317–321
  • Yamada KM, Geiger B. Molecular interactions in cell adhesion complexes. Curr Opin Cell Biol 1997; 9: 76–85
  • Hasday JD, Bannerman D, Sakarya S, Cross AS, Singh IS, Howard D, et al. Exposure to febrile temperature modifies endothelial cell response to tumor necrosis factor-α. J Appl Physiol 2001; 90: 90–98
  • Tulapurkar ME, Hasday JD, Singh IS, Prolonged exposure to hyperthermic stress augments neutrophil recruitment to lung during the extended post-exposure period. Int J Hyperthermia 2011;27:717–725
  • Tulapurkar ME, Almutairy EA, Shah NG, He JR, Puche AC, Shapiro P, et al. Febrile-range hyperthermia modifies endothelial and neutrophil functions to promote extravasation. Am J Respir Cell Molec Med 2012;46:807–814
  • Borbiev T, Verin AD, Birukova A, Liu F, Crow MT, Garcia JG. Role of CaM kinase II and ERK activation in thrombin-induced endothelial cell barrier dysfunction. Am J Physiol Lung Cell Mol Physiol 2003; 285: L43–54
  • Verin AD, Liu F, Bogatcheva N, Borbiev T, Hershenson MB, Wang P, et al. Role of ras-dependent ERK activation in phorbol ester-induced endothelial cell barrier dysfunction. Am J Physiol Lung Cell Mol Physiol 2000; 279: L360–370
  • Usatyuk PV, Natarajan V. Role of mitogen-activated protein kinases in 4-hydroxy-2-nonenal-induced actin remodeling and barrier function in endothelial cells. J Biol Chem 2004; 279: 11789–11797
  • Breslin JW, Pappas PJ, Cerveira JJ, Hobson RW, II, Duran WN. VEGF increases endothelial permeability by separate signaling pathways involving ERK-1/2 and nitric oxide. Am J Physiol Heart Circ Physiol 2003; 284: H92–100
  • Varma S, Breslin JW, Lal BK, Pappas PJ, Hobson RW, II, Duran WN. p42/44MAPK regulates baseline permeability and cGMP-induced hyperpermeability in endothelial cells. Microvasc Res 2002; 63: 172–178
  • Kevil CG, Oshima T, Alexander B, Coe LL, Alexander JS. H(2)O(2)-mediated permeability: Role of MAPK and occludin. Am J Physiol Cell Physiol 2000; 279: C21–30
  • Niwa K, Inanami O, Ohta T, Ito S, Karino T, Kuwabara M. p38 MAPK and Ca2+ contribute to hydrogen peroxide-induced increase of permeability in vascular endothelial cells but ERK does not. Free Radic Res 2001; 35: 519–527
  • Goldberg PL, MacNaughton DE, Clements RT, Minnear FL, Vincent PA. p38 MAPK activation by TGF-beta1 increases MLC phosphorylation and endothelial monolayer permeability. Am J Physiol Lung Cell Mol Physiol 2002; 282: L146–154
  • Usatyuk PV, Vepa S, Watkins T, He D, Parinandi NL, Natarajan V. Redox regulation of reactive oxygen species-induced p38 MAP kinase activation and barrier dysfunction in lung microvascular endothelial cells. Antioxid Redox Signal 2003; 5: 723–730
  • Birukova AA, Birukov KG, Gorshkov B, Liu F, Garcia JG, Verin AD. MAP kinases in lung endothelial permeability induced by microtubule disassembly. Am J Physiol Lung Cell Mol Physiol 2005; 289: L75–84
  • Hirano S, Rees RS, Yancy SL, Welsh MJ, Remick DG, Yamada T, et al. Endothelial barrier dysfunction caused by LPS correlates with phosphorylation of Hsp27 in vivo. Cell Biol Toxicol 2004; 20: 1–14
  • Shah NG, Tulapurkar ME, Almutairy EA, Hasday JD. Febrile-range hyperthermia augments TNF‐α induced permeability in human microvascular endothelial cells in the lung (hMVEC−L). Am J Respir Crit Care Med 2009; 179: A4014
  • Pober JS. Warner-Lambert/Parke-Davis award lecture. Cytokine-mediated activation of vascular endothelium. Physiology and pathology. Am J Pathol 1988; 133: 426–433
  • Konstantoulaki M, Kouklis P, Malik AB. Protein kinase C modifications of VE-cadherin, p120, and beta-catenin contribute to endothelial barrier dysregulation induced by thrombin. Am J Physiol Lung Cell Mol Physiol 2003; 285: L434–442
  • Lu Q, Harrington EO, Jackson H, Morin N, Shannon C, Rounds S. Transforming growth factor-beta1-induced endothelial barrier dysfunction involves Smad2-dependent p38 activation and subsequent RhoA activation. J Appl Physiol 2006; 101: 375–384
  • Bannerman DD, Goldblum SE. Endotoxin induces endothelial barrier dysfunction through protein tyrosine phosphorylation. Am J Physiol 1997; 273: L217–226
  • Damarla M, Hasan E, Boueiz A, Le A, Pae HH, Montouchet C, et al. Mitogen activated protein kinase activated protein kinase 2 regulates actin polymerization and vascular leak in ventilator associated lung injury. PLoS ONE 2009; 4: e4600
  • Kayyali US, Pennella CM, Trujillo C, Villa O, Gaestel M, Hassoun PM. Cytoskeletal changes in hypoxic pulmonary endothelial cells are dependent on MAPK-activated protein kinase MK2. J Biol Chem 2002; 277: 42596–42602
  • Friedl J, Turner E, Alexander HR, Jr. Augmentation of endothelial cell monolayer permeability by hyperthermia but not tumor necrosis factor: Evidence for disruption of vascular integrity via VE-cadherin down-regulation. Int J Oncol 2003; 23: 611–616
  • Sumagin R, Kuebel JM, Sarelius IH. Leukocyte rolling and adhesion both contribute to regulation of microvascular permeability to albumin via ligation of ICAM-1. Am J Physiol Cell Physiol 2011; 301: C804–813
  • Goldblum SE, Young BA, Wang P, Murphy-Ullrich JE. Thrombospondin-1 induces tyrosine phosphorylation of adherens junction proteins and regulates an endothelial paracellular pathway. Mol Biol Cell 1999; 10: 1537–1551
  • Garcia JG, Davis HW, Patterson CE. Regulation of endothelial cell gap formation and barrier dysfunction: Role of myosin light chain phosphorylation. J Cell Physiol 1995; 163: 510–522
  • Dudek SM, Garcia JG. Cytoskeletal regulation of pulmonary vascular permeability. J Appl Physiol 2001; 91: 1487–1500
  • Borbiev T, Birukova A, Liu F, Nurmukhambetova S, Gerthoffer WT, Garcia JG, et al. p38 MAP kinase-dependent regulation of endothelial cell permeability. Am J Physiol Lung Cell Mol Physiol 2004; 287: L911–918
  • Nwariaku FE, Rothenbach P, Liu Z, Zhu X, Turnage RH, Terada LS. Rho inhibition decreases TNF-induced endothelial MAPK activation and monolayer permeability. J Appl Physiol 2003; 95: 1889–1895
  • Wang Q, Doerschuk CM. The p38 mitogen-activated protein kinase mediates cytoskeletal remodeling in pulmonary microvascular endothelial cells upon intracellular adhesion molecule-1 ligation. J Immunol 2001; 166: 6877–6884
  • Liu T, Guevara OE, Warburton RR, Hill NS, Gaestel M, Kayyali US. Modulation of Hsp27 alters hypoxia-induced endothelial permeability and related signaling pathways. J Cell Physiol 2009; 220: 600–610
  • Ellis G, Carlson D, Hester L, Bagby G, Singh IS, Hasday J. G-CSF, but not corticosterone mediates circulating neutrophilia induced by febrile-range hyperthermia. J Appl Physiol 2005; 98: 1799–1804
  • Maity TK, Henry MM, Tulapurkar ME, Shah NG, Hasday JD, Singh IS. Distinct, gene-specific effect of heat shock on heat shock factor-1 recruitment and gene expression of CXC chemokine genes. Cytokine 2011; 54: 61–67
  • Singh IS, Gupta A, Nagarsekar A, Cooper Z, Manka C, Hester L, et al. Heat shock co-activates interleukin-8 transcription. Am J Respir Cell Molec Biol 2008; 39: 235–242
  • Laupland KB, Shahpori R, Kirkpatrick AW, Ross T, Gregson DB, Stelfox HT. Occurrence and outcome of fever in critically ill adults. Crit Care Med 2008; 36: 1531–1535
  • Cheuvront SN, Kenefick RW, Montain SJ, Sawka MN. Mechanisms of aerobic performance impairment with heat stress and dehydration. J Appl Physiol 2010; 109: 1989–1995
  • Dupuy DE. Image-guided thermal ablation of lung malignancies. Radiology 2011; 260: 633–655

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