Biomedical Engineering Reference
In-Depth Information
58. Stokes, K.Y., Cooper, D., Tailor, A., Granger, D.N.: Hypercholesterolemia promotes
inflammation and microvascular dysfunction: role of nitric oxide and superoxide. Free
Radical Biol. Med. 33(8), 1026-1036 (2002)
59. Stokes, K.Y., Granger, D.N.: The microcirculation: a motor for the systemic inflammatory
response and large vessel disease induced by hypercholesterolaemia? J. Physiol. 562(Pt 3),
647-653 (2005). doi: 10.1113/jphysiol.2004.079640
60. Scalia, R., Appel 3rd, J.Z., Lefer, A.M.: Leukocyte-endothelium interaction during the early
stages of hypercholesterolemia in the rabbit: role of P-selectin, ICAM-1, and VCAM-1.
Arterioscler. Thromb. Vasc. Biol. 18(7), 1093-1100 (1998)
61. Stokes, K.Y., Calahan, L., Russell, J.M., Gurwara, S., Granger, D.N.: Role of platelets in
hypercholesterolemia-induced
leukocyte
recruitment
and
arteriolar
dysfunction.
Microcirculation 13(5), 377-388 (2006). doi: 10.1080/10739680600745877
62. van Oostrom, A.J., Sijmonsma, T.P., Verseyden, C., Jansen, E.H., de Koning, E.J.,
Rabelink, T.J., Castro Cabezas, M.: Postprandial recruitment of neutrophils may contribute
to endothelial dysfunction. J. Lipid Res. 44(3), 576-583 (2003). doi: 10.1194/jlr.M200419-
JLR200
63. Terao, S., Yilmaz, G., Stokes, K.Y., Ishikawa, M., Kawase, T., Granger, D.N.: Inflammatory
and injury responses to ischemic stroke in obese mice. Stroke. J. Cereb. Circ. 39(3),
943-950 (2008). doi: 10.1161/STROKEAHA.107.494542
64. Drechsler, M., Megens, R.T., van Zandvoort, M., Weber, C., Soehnlein, O.: Hyperlipidemia-
triggered neutrophilia promotes early atherosclerosis. Circulation 122(18), 1837-1845
(2010). doi: 10.1161/CIRCULATIONAHA.110.961714
65. Kolaczkowska,
E.,
Kubes,
P.:
Neutrophil
recruitment
and
function
in
health
and
inflammation. Nat. Rev. Immunol. 13(3), 159-175 (2013). doi: 10.1038/nri3399
66. Faldt, J., Dahlgren, C., Ridell, M.: Difference in neutrophil cytokine production induced by
pathogenic and non-pathogenic mycobacteria. APMIS. Acta Pathol. Microbiol. Immunologica
Scand. 110(9), 593-600 (2002)
67. Simon, S.I., Goldsmith, H.L.: Leukocyte adhesion dynamics in shear flow. Ann. Biomed.
Eng. 30(3), 315-332 (2002)
68. Edwards, S.W.: Biochemistry and Physiology of the Neutrophil. Cambridge University
Press, New York (2005)
69. Cicchetti, G., Allen, P.G., Glogauer, M.: Chemotactic signaling pathways in neutrophils:
from receptor to actin assembly. Crit. Rev. Oral Biol. Med. 13(3), 220-228 (2002). Official
publication of the American Association of Oral Biologists
70. Ehrengruber, M.U., Deranleau, D.A., Coates, T.D.: Shape oscillations of human neutrophil
leukocytes: characterization and relationship to cell motility. J. Exp. Biol. 199(Pt 4),
741-747 (1996)
71. Hilmo, A., Howard, T.H.: F-actin content of neonate and adult neutrophils. Blood 69(3),
945-949 (1987)
72. Brown, K.K., Henson, P.M., Maclouf, J., Moyle, M., Ely, J.A., Worthen, G.S.: Neutrophil-
platelet adhesion: relative roles of platelet P-selectin and neutrophil beta2 (DC18) integrins.
Am. J. Respir. Cell Mol. Biol. 18(1), 100-110 (1998). doi: 10.1165/ajrcmb.18.1.2314
73. Hu, H., Varon, D., Hjemdahl, P., Savion, N., Schulman, S., Li, N.: Platelet-leukocyte
aggregation under shear stress: differential involvement of selectins and integrins. Thromb.
Haemost. 90(4), 679-687 (2003). doi: 10.1267/THRO03040679
74. Zarbock, A., Ley, K.: New insights into leukocyte recruitment by intravital microscopy.
Curr. Top. Microbiol. Immunol. 334, 129-152 (2009). doi: 10.1007/978-3-540-93864-4_6
75. Laudanna, C., Kim, J.Y., Constantin, G., Butcher, E.: Rapid leukocyte integrin activation by
chemokines. Immunol. Rev. 186, 37-46 (2002)
76. Luo, B.H., Carman, C.V., Springer, T.A.: Structural basis of integrin regulation and
signaling. Annu. Rev. Immunol. 25, 619-647 (2007). doi: 10.1146/annurev.immunol.25.
022106.141618
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