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Published in: Journal of Neuroinflammation 1/2015

Open Access 01-12-2015 | Research

Pro-inflammatory TNFα and IL-1β differentially regulate the inflammatory phenotype of brain microvascular endothelial cells

Authors: Simon J. O’Carroll, Dan Ting Kho, Rachael Wiltshire, Vicky Nelson, Odunayo Rotimi, Rebecca Johnson, Catherine E. Angel, E. Scott Graham

Published in: Journal of Neuroinflammation | Issue 1/2015

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Abstract

Background

The vasculature of the brain is composed of endothelial cells, pericytes and astrocytic processes. The endothelial cells are the critical interface between the blood and the CNS parenchyma and are a critical component of the blood-brain barrier (BBB). These cells are innately programmed to respond to a myriad of inflammatory cytokines or other danger signals. IL-1β and TNFα are well recognised pro-inflammatory mediators, and here, we provide compelling evidence that they regulate the function and immune response profile of human cerebral microvascular endothelial cells (hCMVECs) differentially.

Methods

We used xCELLigence biosensor technology, which revealed global differences in the endothelial response between IL-1β and TNFα. xCELLigence is a label-free impedance-based biosensor, which is ideal for acute or long-term comparison of drug effects on cell behaviour. In addition, flow cytometry and multiplex cytokine arrays were used to show differences in the inflammatory responses from the endothelial cells.

Results

Extensive cytokine-secretion profiling and cell-surface immune phenotyping confirmed that the immune response of the hCMVEC to IL-1β was different to that of TNFα. Interestingly, of the 38 cytokines, chemokines and growth factors measured by cytometric bead array, the endothelial cells secreted only 13. Of importance was the observation that the majority of these cytokines were differentially regulated by either IL-1β or TNFα. Cell-surface expression of ICAM-1 and VCAM-1 were also differentially regulated by IL-1β or TNFα, where TNFα induced a substantially higher level of expression of both key leukocyte-adhesion molecules. A range of other cell-surface cellular and junctional adhesion molecules were basally expressed by the hCMVEC but were unaffected by IL-1β or TNFα.

Conclusions

To our knowledge, this is the most comprehensive analysis of the immunological profile of brain endothelial cells and the first direct evidence that human brain endothelial cells are differentially regulated by these two key pro-inflammatory mediators.
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Literature
1.
2.
go back to reference Correale J, Villa A. Cellular elements of the blood-brain barrier. Neurochem Res. 2009;34(12):2067–77.PubMedCrossRef Correale J, Villa A. Cellular elements of the blood-brain barrier. Neurochem Res. 2009;34(12):2067–77.PubMedCrossRef
3.
go back to reference Pardridge WM. Blood-brain barrier carrier-mediated transport and brain metabolism of amino acids. Neurochem Res. 1998;23(5):635–44.PubMedCrossRef Pardridge WM. Blood-brain barrier carrier-mediated transport and brain metabolism of amino acids. Neurochem Res. 1998;23(5):635–44.PubMedCrossRef
4.
go back to reference Wisniewski HM, Lossinsky AS. Structural and functional aspects of the interaction of inflammatory cells with the blood-brain barrier in experimental brain inflammation. Brain Pathol. 1991;1(2):89–96.PubMedCrossRef Wisniewski HM, Lossinsky AS. Structural and functional aspects of the interaction of inflammatory cells with the blood-brain barrier in experimental brain inflammation. Brain Pathol. 1991;1(2):89–96.PubMedCrossRef
5.
go back to reference Lossinsky AS, Shivers RR. Structural pathways for macromolecular and cellular transport across the blood-brain barrier during inflammatory conditions. Rev Histol Histopathol. 2004;19(2):535–64. Lossinsky AS, Shivers RR. Structural pathways for macromolecular and cellular transport across the blood-brain barrier during inflammatory conditions. Rev Histol Histopathol. 2004;19(2):535–64.
6.
go back to reference Rubin LL, Staddon JM. The cell biology of the blood-brain barrier. Annu Rev Neurosci. 1999;22:11–28.PubMedCrossRef Rubin LL, Staddon JM. The cell biology of the blood-brain barrier. Annu Rev Neurosci. 1999;22:11–28.PubMedCrossRef
7.
go back to reference Vorbrodt AW, Dobrogowska DH. Molecular anatomy of intercellular junctions in brain endothelial and epithelial barriers: electron microscopist’s view. Brain Res Brain Res Rev. 2003;42(3):221–42.PubMedCrossRef Vorbrodt AW, Dobrogowska DH. Molecular anatomy of intercellular junctions in brain endothelial and epithelial barriers: electron microscopist’s view. Brain Res Brain Res Rev. 2003;42(3):221–42.PubMedCrossRef
8.
go back to reference Tasaki A, Shimizu F, Sano Y, Fujisawa M, Takahashi T, Haruki H, et al. Autocrine MMP-2/9 secretion increases the BBB permeability in neuromyelitis optica. J Neurol Neurosurg Psychiatry. 2014;85(4):419–30.PubMedCrossRef Tasaki A, Shimizu F, Sano Y, Fujisawa M, Takahashi T, Haruki H, et al. Autocrine MMP-2/9 secretion increases the BBB permeability in neuromyelitis optica. J Neurol Neurosurg Psychiatry. 2014;85(4):419–30.PubMedCrossRef
9.
go back to reference Shimizu F, Tasaki A, Sano Y, Ju M, Nishihara H, Oishi M, et al. Sera from remitting and secondary progressive multiple sclerosis patients disrupt the blood-brain barrier. PLoS One. 2014;9(3), e92872.PubMedCentralPubMedCrossRef Shimizu F, Tasaki A, Sano Y, Ju M, Nishihara H, Oishi M, et al. Sera from remitting and secondary progressive multiple sclerosis patients disrupt the blood-brain barrier. PLoS One. 2014;9(3), e92872.PubMedCentralPubMedCrossRef
10.
go back to reference Moses AV, Nelson JA. HIV infection of human brain capillary endothelial cells–implications for AIDS dementia. Adv Neuroimmunol. 1994;4(3):239–47.PubMedCrossRef Moses AV, Nelson JA. HIV infection of human brain capillary endothelial cells–implications for AIDS dementia. Adv Neuroimmunol. 1994;4(3):239–47.PubMedCrossRef
11.
go back to reference Petito CK, Cash KS. Blood-brain barrier abnormalities in the acquired immunodeficiency syndrome: immunohistochemical localization of serum proteins in postmortem brain. Ann Neurol. 1992;32(5):658–66.PubMedCrossRef Petito CK, Cash KS. Blood-brain barrier abnormalities in the acquired immunodeficiency syndrome: immunohistochemical localization of serum proteins in postmortem brain. Ann Neurol. 1992;32(5):658–66.PubMedCrossRef
12.
go back to reference Jickling GC, Liu D, Stamova B, Ander BP, Zhan X, Lu A, et al. Hemorrhagic transformation after ischemic stroke in animals and humans. J Cereb Blood Flow Metab. 2014;34(2):185–99.PubMedCentralPubMedCrossRef Jickling GC, Liu D, Stamova B, Ander BP, Zhan X, Lu A, et al. Hemorrhagic transformation after ischemic stroke in animals and humans. J Cereb Blood Flow Metab. 2014;34(2):185–99.PubMedCentralPubMedCrossRef
13.
go back to reference Saito K, Shimizu F, Koga M, Sano Y, Tasaki A, Abe M, et al. Blood-brain barrier destruction determines Fisher/Bickerstaff clinical phenotypes: an in vitro study. J Neurol Neurosurg Psychiatry. 2013;84(7):756–65.PubMedCrossRef Saito K, Shimizu F, Koga M, Sano Y, Tasaki A, Abe M, et al. Blood-brain barrier destruction determines Fisher/Bickerstaff clinical phenotypes: an in vitro study. J Neurol Neurosurg Psychiatry. 2013;84(7):756–65.PubMedCrossRef
14.
go back to reference Kazmierski R, Michalak S, Wencel-Warot A, Nowinski WL. Serum tight-junction proteins predict hemorrhagic transformation in ischemic stroke patients. Neurology. 2012;79(16):1677–85.PubMedCrossRef Kazmierski R, Michalak S, Wencel-Warot A, Nowinski WL. Serum tight-junction proteins predict hemorrhagic transformation in ischemic stroke patients. Neurology. 2012;79(16):1677–85.PubMedCrossRef
15.
go back to reference Roux F, Couraud PO. Rat brain endothelial cell lines for the study of blood-brain barrier permeability and transport functions. Cell Mol Neurobiol. 2005;25(1):41–58.PubMedCrossRef Roux F, Couraud PO. Rat brain endothelial cell lines for the study of blood-brain barrier permeability and transport functions. Cell Mol Neurobiol. 2005;25(1):41–58.PubMedCrossRef
16.
go back to reference Zehendner CM, White R, Hedrich J, Luhmann HJ. A neurovascular blood-brain barrier in vitro model. Methods Mol Biol. 2014;1135:403–13.PubMedCrossRef Zehendner CM, White R, Hedrich J, Luhmann HJ. A neurovascular blood-brain barrier in vitro model. Methods Mol Biol. 2014;1135:403–13.PubMedCrossRef
17.
go back to reference Vorbrodt AW, Dobrogowska DH, Tarnawski M. Immunogold study of interendothelial junction-associated and glucose transporter proteins during postnatal maturation of the mouse blood-brain barrier. J Neurocytol. 2001;30(8):705–16.PubMedCrossRef Vorbrodt AW, Dobrogowska DH, Tarnawski M. Immunogold study of interendothelial junction-associated and glucose transporter proteins during postnatal maturation of the mouse blood-brain barrier. J Neurocytol. 2001;30(8):705–16.PubMedCrossRef
18.
go back to reference Jiang H, Williams GJ, Dhib-Jalbut S. The effect of interferon beta-1b on cytokine-induced adhesion molecule expression. Neurochem Int. 1997;30(4–5):449–53.PubMedCrossRef Jiang H, Williams GJ, Dhib-Jalbut S. The effect of interferon beta-1b on cytokine-induced adhesion molecule expression. Neurochem Int. 1997;30(4–5):449–53.PubMedCrossRef
19.
go back to reference Tsukada N, Matsuda M, Miyagi K, Yanagisawa N. Adhesion of cerebral endothelial cells to lymphocytes from patients with multiple sclerosis. Autoimmunity. 1993;14(4):329–33.PubMedCrossRef Tsukada N, Matsuda M, Miyagi K, Yanagisawa N. Adhesion of cerebral endothelial cells to lymphocytes from patients with multiple sclerosis. Autoimmunity. 1993;14(4):329–33.PubMedCrossRef
20.
go back to reference McCandless EE, Piccio L, Woerner BM, Schmidt RE, Rubin JB, Cross AH, et al. Pathological expression of CXCL12 at the blood-brain barrier correlates with severity of multiple sclerosis. Am J Pathol. 2008;172(3):799–808.PubMedCentralPubMedCrossRef McCandless EE, Piccio L, Woerner BM, Schmidt RE, Rubin JB, Cross AH, et al. Pathological expression of CXCL12 at the blood-brain barrier correlates with severity of multiple sclerosis. Am J Pathol. 2008;172(3):799–808.PubMedCentralPubMedCrossRef
21.
go back to reference Afonso PV, Ozden S, Prevost MC, Schmitt C, Seilhean D, Weksler B, et al. Human blood-brain barrier disruption by retroviral-infected lymphocytes: role of myosin light chain kinase in endothelial tight-junction disorganization. J Immunol. 2007;179(4):2576–83.PubMedCrossRef Afonso PV, Ozden S, Prevost MC, Schmitt C, Seilhean D, Weksler B, et al. Human blood-brain barrier disruption by retroviral-infected lymphocytes: role of myosin light chain kinase in endothelial tight-junction disorganization. J Immunol. 2007;179(4):2576–83.PubMedCrossRef
22.
go back to reference MacDonald C, Unsworth CP, Graham ES. Enrichment of differentiated hNT neurons and subsequent analysis using flow-cytometry and xCELLigence sensing. J Neurosci Methods. 2014;227:47–56.PubMedCrossRef MacDonald C, Unsworth CP, Graham ES. Enrichment of differentiated hNT neurons and subsequent analysis using flow-cytometry and xCELLigence sensing. J Neurosci Methods. 2014;227:47–56.PubMedCrossRef
23.
go back to reference van Kralingen C, Kho DT, Costa J, Angel CE, Graham ES. Exposure to inflammatory cytokines IL-1β and TNFα induces compromise and death of astrocytes. Implications for chronic neuroinflammation. PLoS One. 2013;8(12), e84269.PubMedCentralPubMedCrossRef van Kralingen C, Kho DT, Costa J, Angel CE, Graham ES. Exposure to inflammatory cytokines IL-1β and TNFα induces compromise and death of astrocytes. Implications for chronic neuroinflammation. PLoS One. 2013;8(12), e84269.PubMedCentralPubMedCrossRef
24.
go back to reference Szulcek R, Bogaard HJ, van Nieuw Amerongen GP. Electric cell-substrate impedance sensing for the quantification of endothelial proliferation, barrier function, and motility. J Vis Exp. 2014;85. Szulcek R, Bogaard HJ, van Nieuw Amerongen GP. Electric cell-substrate impedance sensing for the quantification of endothelial proliferation, barrier function, and motility. J Vis Exp. 2014;85.
25.
go back to reference Smith AM, Graham ES, Feng SX, Oldfield RL, Bergin PM, Mee EW, et al. Adult human glia, pericytes and meningeal fibroblasts respond similarly to IFNy but not to TGFbeta1 or M-CSF. PLoS One. 2013;8(12), e80463.PubMedCentralPubMedCrossRef Smith AM, Graham ES, Feng SX, Oldfield RL, Bergin PM, Mee EW, et al. Adult human glia, pericytes and meningeal fibroblasts respond similarly to IFNy but not to TGFbeta1 or M-CSF. PLoS One. 2013;8(12), e80463.PubMedCentralPubMedCrossRef
26.
go back to reference Burkert K, Moodley K, Angel CE, Brooks A, Graham ES. Detailed analysis of inflammatory and neuromodulatory cytokine secretion from human NT2 astrocytes using multiplex bead array. Neurochem Int. 2012;60(6):573–80.PubMedCrossRef Burkert K, Moodley K, Angel CE, Brooks A, Graham ES. Detailed analysis of inflammatory and neuromodulatory cytokine secretion from human NT2 astrocytes using multiplex bead array. Neurochem Int. 2012;60(6):573–80.PubMedCrossRef
27.
go back to reference Sajja RK, Prasad S, Cucullo L. Impact of altered glycaemia on blood-brain barrier endothelium: an in vitro study using the hCMEC/D3 cell line. Fluids Barriers CNS. 2014;11(1):8.PubMedCentralPubMedCrossRef Sajja RK, Prasad S, Cucullo L. Impact of altered glycaemia on blood-brain barrier endothelium: an in vitro study using the hCMEC/D3 cell line. Fluids Barriers CNS. 2014;11(1):8.PubMedCentralPubMedCrossRef
28.
go back to reference Naik P, Fofaria N, Prasad S, Sajja RK, Weksler B, Couraud PO, et al. Oxidative and pro-inflammatory impact of regular and denicotinized cigarettes on blood brain barrier endothelial cells: is smoking reduced or nicotine-free products really safe? BMC Neurosci. 2014;15:51.PubMedCentralPubMedCrossRef Naik P, Fofaria N, Prasad S, Sajja RK, Weksler B, Couraud PO, et al. Oxidative and pro-inflammatory impact of regular and denicotinized cigarettes on blood brain barrier endothelial cells: is smoking reduced or nicotine-free products really safe? BMC Neurosci. 2014;15:51.PubMedCentralPubMedCrossRef
29.
go back to reference Haarmann A, Deiss A, Prochaska J, Foerch C, Weksler B, Romero I, et al. Evaluation of soluble junctional adhesion molecule-A as a biomarker of human brain endothelial barrier breakdown. PLoS One. 2010;5(10), e13568.PubMedCentralPubMedCrossRef Haarmann A, Deiss A, Prochaska J, Foerch C, Weksler B, Romero I, et al. Evaluation of soluble junctional adhesion molecule-A as a biomarker of human brain endothelial barrier breakdown. PLoS One. 2010;5(10), e13568.PubMedCentralPubMedCrossRef
30.
go back to reference Forster C, Burek M, Romero IA, Weksler B, Couraud PO, Drenckhahn D. Differential effects of hydrocortisone and TNFalpha on tight junction proteins in an in vitro model of the human blood-brain barrier. J Physiol. 2008;586(7):1937–49.PubMedCentralPubMedCrossRef Forster C, Burek M, Romero IA, Weksler B, Couraud PO, Drenckhahn D. Differential effects of hydrocortisone and TNFalpha on tight junction proteins in an in vitro model of the human blood-brain barrier. J Physiol. 2008;586(7):1937–49.PubMedCentralPubMedCrossRef
31.
go back to reference Cunnea P, McMahon J, O'Connell E, Mashayekhi K, Fitzgerald U, McQuaid S. Gene expression analysis of the microvascular compartment in multiple sclerosis using laser microdissected blood vessels. Acta Neuropathol. 2010;119(5):601–15.PubMedCrossRef Cunnea P, McMahon J, O'Connell E, Mashayekhi K, Fitzgerald U, McQuaid S. Gene expression analysis of the microvascular compartment in multiple sclerosis using laser microdissected blood vessels. Acta Neuropathol. 2010;119(5):601–15.PubMedCrossRef
32.
go back to reference Shivanna M, Rajashekhar G, Srinivas SP. Barrier dysfunction of the corneal endothelium in response to TNF-alpha: role of p38 MAP kinase. Invest Ophthalmol Vis Sci. 2010;51(3):1575–82.PubMedCentralPubMedCrossRef Shivanna M, Rajashekhar G, Srinivas SP. Barrier dysfunction of the corneal endothelium in response to TNF-alpha: role of p38 MAP kinase. Invest Ophthalmol Vis Sci. 2010;51(3):1575–82.PubMedCentralPubMedCrossRef
33.
go back to reference Haines RJ, Beard Jr RS, Wu MH. Protein tyrosine kinase 6 mediates TNFalpha-induced endothelial barrier dysfunction. Biochem Biophys Res Commun. 2015;456(1):190–6.PubMedCrossRef Haines RJ, Beard Jr RS, Wu MH. Protein tyrosine kinase 6 mediates TNFalpha-induced endothelial barrier dysfunction. Biochem Biophys Res Commun. 2015;456(1):190–6.PubMedCrossRef
34.
go back to reference Weksler BB, Subileau EA, Perrière N, Charneau P, Holloway K, Leveque M, et al. Blood-brain barrier-specific properties of a human adult brain endothelial cell line. FASEB J. 2005;19(13):1872–4.PubMed Weksler BB, Subileau EA, Perrière N, Charneau P, Holloway K, Leveque M, et al. Blood-brain barrier-specific properties of a human adult brain endothelial cell line. FASEB J. 2005;19(13):1872–4.PubMed
35.
go back to reference Navone S, Marfia G, Nava S, Invernici G, Cristini S, Balbi S, et al. Human and mouse brain-derived endothelial cells require high levels of growth factors medium for their isolation, in vitro maintenance and survival. Vascular Cell. 2013;5(1):10.PubMedCentralPubMedCrossRef Navone S, Marfia G, Nava S, Invernici G, Cristini S, Balbi S, et al. Human and mouse brain-derived endothelial cells require high levels of growth factors medium for their isolation, in vitro maintenance and survival. Vascular Cell. 2013;5(1):10.PubMedCentralPubMedCrossRef
36.
go back to reference Floris S, van den Born J, van der Pol SM, Dijkstra CD, De Vries HE. Heparan sulfate proteoglycans modulate monocyte migration across cerebral endothelium. J Neuropathol Exp Neurol. 2003;62(7):780–90.PubMed Floris S, van den Born J, van der Pol SM, Dijkstra CD, De Vries HE. Heparan sulfate proteoglycans modulate monocyte migration across cerebral endothelium. J Neuropathol Exp Neurol. 2003;62(7):780–90.PubMed
37.
go back to reference Ishii H, Salem HH, Bell CE, Laposata EA, Majerus PW. Thrombomodulin, an endothelial anticoagulant protein, is absent from the human brain. Blood. 1986;67(2):362–5.PubMed Ishii H, Salem HH, Bell CE, Laposata EA, Majerus PW. Thrombomodulin, an endothelial anticoagulant protein, is absent from the human brain. Blood. 1986;67(2):362–5.PubMed
38.
go back to reference Wong VLY, Hofman FM, Ishii H, Fisher M. Regional distribution of thrombomodulin in human brain. Brain Res. 1991;556(1):1–5.PubMedCrossRef Wong VLY, Hofman FM, Ishii H, Fisher M. Regional distribution of thrombomodulin in human brain. Brain Res. 1991;556(1):1–5.PubMedCrossRef
39.
go back to reference Man S, Tucky B, Bagheri N, Li X, Kochar R, Ransohoff RM. α4 Integrin/FN-CS1 mediated leukocyte adhesion to brain microvascular endothelial cells under flow conditions. J Neuroimmunol. 2009;210(1–2):92–9.PubMedCentralPubMedCrossRef Man S, Tucky B, Bagheri N, Li X, Kochar R, Ransohoff RM. α4 Integrin/FN-CS1 mediated leukocyte adhesion to brain microvascular endothelial cells under flow conditions. J Neuroimmunol. 2009;210(1–2):92–9.PubMedCentralPubMedCrossRef
40.
go back to reference Vorbrodt AW, Dobrogowska DH. Molecular anatomy of interendothelial junctions in human blood-brain barrier microvessels. Folia Histochem Cytobiol. 2004;42(2):67–75.PubMed Vorbrodt AW, Dobrogowska DH. Molecular anatomy of interendothelial junctions in human blood-brain barrier microvessels. Folia Histochem Cytobiol. 2004;42(2):67–75.PubMed
41.
go back to reference Mey L, Hörmann M, Schleicher N, Reuter P, Dönges S, Kinscherf R, et al. Neuropilin-1 modulates vascular endothelial growth factor-induced poly(ADP-ribose)-polymerase leading to reduced cerebrovascular apoptosis. Neurobiol Dis. 2013;59:111–25.PubMedCrossRef Mey L, Hörmann M, Schleicher N, Reuter P, Dönges S, Kinscherf R, et al. Neuropilin-1 modulates vascular endothelial growth factor-induced poly(ADP-ribose)-polymerase leading to reduced cerebrovascular apoptosis. Neurobiol Dis. 2013;59:111–25.PubMedCrossRef
42.
go back to reference Akers SM, O'Leary HA, Minnear FL, Craig MD, Vos JA, Coad JE, et al. VE-cadherin and PECAM-1 enhance ALL migration across brain microvascular endothelial cell monolayers. Exp Hematol. 2010;38(9):733–43.PubMedCentralPubMedCrossRef Akers SM, O'Leary HA, Minnear FL, Craig MD, Vos JA, Coad JE, et al. VE-cadherin and PECAM-1 enhance ALL migration across brain microvascular endothelial cell monolayers. Exp Hematol. 2010;38(9):733–43.PubMedCentralPubMedCrossRef
43.
go back to reference Bo L, Peterson JW, Mørk S, Hoffman PA, Gallatin WM, Ransohoff RM, et al. Distribution of immunoglobulin superfamily members ICAM-1,−2,−3, and the beta 2 integrin LFA-1 in multiple sclerosis lesions. J Neuropathol Exp Neurol. 1996;55(10):1060–72.PubMedCrossRef Bo L, Peterson JW, Mørk S, Hoffman PA, Gallatin WM, Ransohoff RM, et al. Distribution of immunoglobulin superfamily members ICAM-1,−2,−3, and the beta 2 integrin LFA-1 in multiple sclerosis lesions. J Neuropathol Exp Neurol. 1996;55(10):1060–72.PubMedCrossRef
44.
go back to reference Muruganandam A, Herx LM, Monette R, Durkin JP, Stanimirovic DB. Development of immortalized human cerebromicrovascular endothelial cell line as an in vitro model of the human blood-brain barrier. FASEB J. 1997;11(13):1187–97.PubMed Muruganandam A, Herx LM, Monette R, Durkin JP, Stanimirovic DB. Development of immortalized human cerebromicrovascular endothelial cell line as an in vitro model of the human blood-brain barrier. FASEB J. 1997;11(13):1187–97.PubMed
45.
go back to reference McEver RP, Beckstead JH, Moore KL, Marshall-Carlson L, Bainton DF. GMP-140, a platelet alpha-granule membrane protein, is also synthesized by vascular endothelial cells and is localized in Weibel-Palade bodies. J Clin Invest. 1989;84(1):92–9.PubMedCentralPubMedCrossRef McEver RP, Beckstead JH, Moore KL, Marshall-Carlson L, Bainton DF. GMP-140, a platelet alpha-granule membrane protein, is also synthesized by vascular endothelial cells and is localized in Weibel-Palade bodies. J Clin Invest. 1989;84(1):92–9.PubMedCentralPubMedCrossRef
46.
go back to reference Lindsberg PJ, Carpén O, Paetau A, Karjalainen-Lindsberg ML, Kaste M. Endothelial ICAM-1 expression associated with inflammatory cell response in human ischemic stroke. Circulation. 1996;94(5):939–45.PubMedCrossRef Lindsberg PJ, Carpén O, Paetau A, Karjalainen-Lindsberg ML, Kaste M. Endothelial ICAM-1 expression associated with inflammatory cell response in human ischemic stroke. Circulation. 1996;94(5):939–45.PubMedCrossRef
Metadata
Title
Pro-inflammatory TNFα and IL-1β differentially regulate the inflammatory phenotype of brain microvascular endothelial cells
Authors
Simon J. O’Carroll
Dan Ting Kho
Rachael Wiltshire
Vicky Nelson
Odunayo Rotimi
Rebecca Johnson
Catherine E. Angel
E. Scott Graham
Publication date
01-12-2015
Publisher
BioMed Central
Published in
Journal of Neuroinflammation / Issue 1/2015
Electronic ISSN: 1742-2094
DOI
https://doi.org/10.1186/s12974-015-0346-0

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