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Research Article

Superoxide Dismutase Restores Impaired Histamine-Induced Increase in Venular Macromolecular Efflux During Diabetes Mellitus

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Pages 211-218 | Published online: 10 Jul 2009

References

  • Alsip NL, Schuschke DA, Wead WB, Harris PD. (1992). Alteration of microvascular responses to se-rotonin in the diabetic rat. Int J Microcirc Clin Exp 11:263–275.
  • Arfors KE, Rutili G, Svensjo E. (1979). Microvascular transport of macromolecules in normal and inflam-matory conditions. Acta Physiol Scand 463:93–103.
  • Bohlen HG, Niggl BA. (1979). Arteriolar anatomical and functional abnormalities in juvenile mice with genetic or streptozotocin induced diabetes mellitus. Circ Res 45:390–396.
  • Cohen RA. (1993). Dysfunction of vascular endothe-lium in diabetes mellitus. Circ 87:V-67-V–76.
  • Colantuoni A, Berardi PG, Orefice G. (1979). In-creased permeability of the microcirculation to high molecular weight dextran in experimental diabetes, shownby intravital microfluorimetry. J Nucl Med Al-lied Sci 23:49–54.
  • Colwell JA, Halushka PV, Sarji KE, Lopes-Virella MF, Sagel J. (1979). Vascular diseases in diabetes: Pathophysiological mechanisms and therapy. Arch Int Med 139:225–230.
  • Corbett JA, Tilton RG, Chang K, Hasan KS, Ido Y, Wang JL, Sweetland MA, Lancaster JR, Jr., William-son JR, McDaniel ML. (1992). Aminoguanidine, a novel inhibitor of nitric oxide formation, prevents diabetic vascular dysfunction. Diabetes 41:552–556.
  • Dai FX, Diederich A, Skopec J, Diederich D. (1993). Diabetes-induced endothelial dysfunction in strepto-zotocin-treated rats: Role of prostaglandin endoper-oxides and free radicals. J Am Soc Nephrol 4:1327–1336.
  • Del Maestro RF, Bjork J, Arfors KE. (1981). Increase in microvascular permeability induced by enzymati-cally generated free radicals. Microvasc Res 22:255–270.
  • Del Maestro RF, Bjork J, Arfors KE. (1981). Increase in microvascular permeability induced by enzymati-cally generated free radicals. Microvasc Res 22:239–254.
  • Diederich D, Skopec J, Diederich A, Dai FX. (1994). Endothelial dysfunction in mesenteric resistance ar-teries of diabetic rats: Role of free radicals. Am J Physiol 266:H1153–H1161.
  • Garcia-Leme J, Bohm GM, Migliorini RH, De Souza MZA. (1974). Possible participation of insulin in the control of vascular permeability. Eur J Pharmacol 29: 298–306.
  • Garcia-Leme J, Hamamura L, Migliorini RH, Leite MP. (1973). Influence of diabetes upon the inflam-matory response of the rat. A pharmacological analy-sis. Eur J Pharmacol 23 :74–81.
  • Hattori Y, Kawasaki H, Abe K, Kanno M. (1991). Superoxide dismutase recovers altered endothelium-dependent relaxation in diabetic rat aorta. Am J Phys-iol 261:H1086–H1094.
  • He P, Zhang X, Curry FE. (1996). Ca2+ entry through conductive pathway modulates receptor me-diated increase in microvessel permeability. Am J Physiol 271:H2377–H2387.
  • Hsueh WA, Anderson PW. (1992). Hypertension, the endothelial cell, and the vascular complications of diabetes mellitus. Hypertension 20:253–263.
  • Johnson PC, Brendel K, Meezan E. (1982). Thick-ened cerebral cortical capillary basement membranes in diabetes. Arch Pathol Lab Med 106:214–217.
  • Joyner WL, Mayhan WG, Johnson RL, Phares CK. (1981). Microvascular alterations develop in syrian hamsters after the induction of diabetes mellitus by streptozotocin. Diabetes 30:93–100.
  • Knudsen GM, Jakobsen J, Barry DI, Compton AM, Tomlinson DR. (1989). Myo-inositol normalizes de-creased sodium permeability of the blood-brain bar-rier in streptozotocin diabetes. Neuroscience 29:773–777.
  • Llorach MAS, Bohm GM, Garcia-Leme J. (1976). De-creased vascular reactions to permeability factors in experimental diabetes. Br J Exp Path 57:747–754.
  • Mathison R, Davison JS. (1993). Altered vascular permeability responses to substance P in diabetic rats: Interactions with a nitric oxide synthesis inhibitor. Eur J Pharmacol 240:163–168.
  • Mayhan WG. (1992). Role of nitric oxide in modu-lating permeability of the hamster cheek pouch in response to adenosine 5'-diphosphate and bradyki-nin. Inflammation 16:295–305.
  • Mayhan WG. (1993). Cerebral circulation during diabetes mellitus. Pharmacol Therap 57:377–391.
  • Mayhan WG. (1993). Role of nitric oxide in leukotri-ene C4-induced increases in microvascular transport. Am J Physiol 265:H409–H414.
  • Mayhan WG. (1994). Nitric oxide accounts for hista-mine-induced increases in macromolecular extrava-sation. Am J Physiol 266:H2369–H2373.
  • Mayhan WG, Joyner WL. (1984). The effect of alter-ing the external calcium concentration and a calcium channel blocker, verapamil, on microvascular leaky sites and dextran clearance in the hamster cheek pouch. Microvasc Res 28:159–179.
  • Mayhan WG, Sahagun G, Spector R, Heistad DD. (1986). Effects of leukotriene C4 on the cerebral mi-crovasculature. Am J Physiol 251:H471–H474.
  • Mayhan WG, Simmons LK, Sharpe GM. (1991). Mechanism of impaired responses of cerebral arteri-oles during diabetes mellitus. Am J Physiol 260: H319–H326.
  • Murray MA, Heistad DD, Mayhan WG. (1991). Role of protein kinase C in bradykinin-induced increases in microvascular permeability. Circ Res 68:1340–1348.
  • Nathan DM. (1993). Long-term complications of dia-betes mellitus. New Eng J Med 328:1676–1685.
  • Ohishi K, Carmines PK. (1995). Superoxide dismu-tase restores the influence of nitric oxide on renal arterioles in diabetes mellitus. J Am Soc Nephrol 5: 1559–1566.
  • Parving H. (1976). Increased microvascular perme-ability to plasma proteins in short- and long-term juvenile diabetes. Diabetes 25:884–889.
  • Phares CK. (1980). Streptozotocin-induced diabetes in Syrian hamsters: New model of diabetes mellitus. Experientia 36:681–682.
  • Pieper GM, Gross GJ. (1988). Oxygen free radicals abolish endothelium dependent relaxation in diabetic rat aorta. Am J Physiol 255:H825–H833.
  • Pieper GM, Gross GJ. (1991). Endothelial dysfunc-tion in diabetes. In Cardiovascular Significance ofEn-dothelium-Derived Vasoactive Factors. (GM Rub anyi Ed.) Futura Publishing. Mount Kisco, NY. 223-249.
  • Pieper GM, Langenstroer P, Gross GJ. (1993). Hy-droxyl radicals mediate injury to endothelium-dependent relaxation in diabetic rat. Mol Cell Bio-chem 122:139–145.
  • Pieper GM, Mei DA, Langenstroer P. O'Rourke ST. (1992). Bioassay of endothelium-derived relaxing factor in diabetic rat aorta. Am J Physiol Heart Circ Physiol 263:H676–H680.
  • Pieper GM, Peltier BA. (1995). Amelioration by L-arginine of a dysfunctional argininetnitric oxide path-way in diabetic endothelium. J Cardiovasc Pharmacol 25:397–403.
  • Svensjo E. (1978). Bradykinin and prostaglandin El, E2, and F2 alpha induced macromolecular leakage in the hamster cheek pouch. Prostaglandins and Medi-cine 1:397–410.
  • Svensjo E. (1978). Characterization of leakage of macromolecules in postcapillary venules. Acta Uni-versitatis Upsaliensis 34:1–42.
  • Taylor PD, Poston L. (1994). The effect of hypergly-cemia on function of rat isolated mesenteric resistance artery. Br J Pharmac 113:80–808.
  • Taylor PD, Wickenden AD, Mirrlees DJ, Poston L. (1994). Endothelial function in the isolated perfused mesentery and aortae of rats with streptozotocin in-duced diabetes: Effect of treatment with the aldose reductase inhibitor, ponalrestat. Br J Pharmac 111: 42–48.
  • Tesfamariam B. (1994). Free radicals in diabetic en-dothelial cell dysfunction. Free Radical Biol Med 16: 383–391.
  • Tesfamariam B, Cohen RA. (1992). Free radicals me-diate endothelial cell dysfunction caused by elevated glucose. Am J Physiol Heart Circ Physiol 263:H321–H326.
  • Tesfamariam B, Jakubowski JA, Cohen RA. (1989). Contraction of diabetic rabbit aorta caused by endo-thelium-derived PGH2-TxA2. Am J Physiol 257: H1327–H1333.
  • Tilton RG, Chang K, Hasan KS, Smith SR, Petrash JM, Misko TP, Moore WM, Currie MG, Corbett JA, McDaniel ML, Williamson JR. (1993). Prevention of diabetic vascular dysfunction by guanidines. Inhibi-tion of nitric oxide synthase versus advanced glyca-tion end-product formation. Diabetes 42:221–232.
  • Tomlinson KC, Gardiner SM, Hebden RA, Bennett T. (1992). Functional consequences of streptozotocin-induced diabetes mellitus, with particular reference to the cardiovascular system. Pharmacol Rev 44:103–150.
  • Tooke JE. (1989). Microcirculation and diabetes. Brit Med Bull 45:206–223.
  • Yong T, Mayhan WG. (1992). Effect of prostaglanin El on leukotriene C4-induced increases in vascular permeability of hamster cheek pouch. Inflammation 16:159–167.
  • Yuan Y, Granger HJ, Zawieja DC, Chilian WM. (1992). Flow modulates coronary venular permeabil-ity by a nitric oxide-related mechanism. Am J Physiol Heart Circ Physiol 263:H641–H646.
  • Yuan Y, Granger HJ, Zawieja DC, DeFily DV, Chilian WM. (1993). Histamine increases venular permeabil-ity via a phospholipase C-NO synthase-guanylate cy-clase cascade. Am J Physiol Heart Circ Physiol 264:H1734–H1739.

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