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Research Article

Adaptation of Resistance Arteries to Increases in Pressure

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Pages 295-304 | Published online: 10 Jul 2009

REFERENCES

  • Allen SP, Liang HM, Hill MA, Prewitt RL. (1996). Elevated pressure stimulates protooncogene expression in isolated mesenteric arteries. Am J Physiol 271:H1517–H1523.
  • Allen SP, Wade SS, Prewitt RL. (1997). Myogenic tone attenuates pressure-induced gene expression in isolated small arteries. Hypertension 30:203–208.
  • Amaral SL, Zorn TM, Michelini LC. (2000). Exercise training normalizes wall-to-lumen ratio of the gracilis muscle arterioles and reduces pressure in spontaneously hypertensive rats. J Hypertension 18:1563–1572.
  • Bakker EN, van Der Meulen ET, Spaan JA, VanBavel E. (2000). Organoid culture of cannulated rat resistance arteries: effect of serum factors on vasoactivity and remodeling. Am J Physiol Heart Circ Physiol 278:H1233–H1240.
  • Bakker EN, van Der Meulen ET, van Den Berg BM, Everts V, Spaan JA, VanBavel E. (2002). Inward remodeling follows chronic vasoconstriction in isolated resistance arteries. J Vasc Res 39:12–20.
  • Bardy N, Karillon GJ, Merval R, Samuel JL, Tedgui A. (1995). Differential effects of pressure and flow on DNA and protein synthesis and on fibronectin expression by arteries in a novel organ culture system. Circ Res 77:684–694.
  • Bardy N, Merval R, Benessiano J, Samuel JL, Tedgui A. (1996). Pressure and angiotensin II synergistically induce aortic fibronectin expression in organ culture model of rabbit aorta. Evidence for a pressure-induced tissue renin-angiotensin system. Circ Res 79: 70–78.
  • Berk BC, Vallega G, Muslin AJ, Gordon HM, Canessa M, Alexander RW. (1989). Spontaneously hypertensive rat vascular smooth muscle cells in culture exhibit increased growth and Na+/H+ exchange [published erratum appears in J Clin Invest 1989 84(6): 2029]. J Clin Invest 83:822–829.
  • Bhalla RC, Sharma RV. (1993). Induction of c-fos and elastin gene in response to mechanical stretch of vascular smooth muscle cells. J Vasc Med Biol 4:135–142.
  • Birukov KG, Shirinsky VP, Stepanova OV, Tkachuk VA, Hahn AW, Resink TJ, Smirnov VN. (1995). Stretch affects phenotype and proliferation of vascular smooth muscle cells. Mol Cell Biochem 144:131–139.
  • Bohlen HG, Lobach D. (1978). In vivo study of mi-crovascular wall characteristics and resting control in young and mature spontaneously hypertensive rats. Blood Vessels 15:322–330.
  • Bund SJ, West KP, Heagerty AM. (1991). Effects of protection from pressure on resistance artery morphology and reactivity in spontaneously hypertensive and Wistar-Kyoto rats. Circ Res 68:1230–1240.
  • Chapman GB, Durante W, Hellums JD, Schafer AI. (2000). Physiological cyclic stretch causes cell cycle arrest in cultured vascular smooth muscle cells. Am J Physiol Heart Circ Physiol 278:H748–H754.
  • Christensen KL, Mulvany MJ. (2001). Vasodilatation, not hypotension, improves resistance vessel design during treatment of essential hypertension: a literature survey. J Hypertension 19:1001–1006.
  • Coats P, Johnston F, MacDonald J, McMurray JJ, Hillier C. (2001). Signalling mechanisms underlying the myogenic response in human subcutaneous resistance arteries. Cardiovasc Res 49:828–837.
  • Cowley AW Jr. (1992). Long-term control of arterial blood pressure. Physiol Rev 72:231–300.
  • Davies PF, Robotewskyj A, Griem ML. (1994). Quantitative studies of endothelial cell adhesion. Directional remodeling of focal adhesion sites in response to flow forces. J Clin Invest 93:2031–2038.
  • Davis MJ, Wu X, Nurkiewicz TR, Kawasaki J, Davis GE, Hill MA, Meininger GA. (2001). Integrins and mechanotransduction of the vascular myogenic response. Am J Physiol Heart Circ Physiol 280:H1427–H1433.
  • Dobrian A, Wade SS, Prewitt RL. (1999). PDGF-A expression correlates with blood pressure and remod- eling in 1K1C hypertensive rat arteries. Am J Physiol 276:H2159–H2167.
  • Eccleston-Joyner CA, Gray SD. (1988). Arterial hypertrophy in the fetal and neonatal spontaneously hypertensive rat. Hypertension 12:513–518.
  • Folkow B, Gurevich M, Hallback M, Lundgren Y, Weiss L. (1971). The hemodynamic consequences of regional hypotension in spontaneously hypertensive and normotensive rats. Acta Physiol Scand 83:532–541.
  • Folkow B, Hallback M, Lundgren Y, Sivertsson R, Weiss L. (1973). Importance of adaptive changes in vascular design for establishment of primary hypertension, studied in man and in spontaneously hypertensive rats. Circ Res 32(Suppl 1):2–16.
  • Franchini KG, Torsoni AS, Soares PH, Saad MJ. (2000). Early activation of the multicomponent signaling complex associated with focal adhesion kinase induced by pressure overload in the rat heart. Circ Res 87:558–565.
  • Giancotti FG, Ruoslahti E. (1999). Integrin signaling. Science 285:1028–1032.
  • Hansen TR, Bohr DF. (1975). Hypertension, transmural pressure, and vascular smooth muscle response in rats. Circ Res 36:590–598.
  • Hashimoto H, Prewitt RL, Efaw CW. (1987). Alterations in the microvasculature of one-kidney, one-clip hypertensive rats. Am J Physiol 253:H933–H940.
  • Hu Y, Bock G, Wick G, Xu Q. (1998). Activation of PDGF receptor a: in vascular smooth muscle cells by mechanical stress. FASEB J 12:1135–1142.
  • Huang A, Sun D, Kaley G, Koller A. (1998). Superoxide released to high intra-arteriolar pressure reduces nitric oxide-mediated shear stress- and agonist-induced dilations. Circ Res 83:960–965.
  • Korsgaard N, Aalkjaer C, Heagerty AM, Izzard AS, Mulvany MJ. (1993). Histology of subcutaneous small arteries from patients with essential hypertension. Hypertension 22:523–526.
  • Korsgaard N, Mulvany MJ. (1988). Cellular hypertrophy in mesenteric resistance vessels from renal hypertensive rats. Hypertension 12:162–167.
  • Langille BL, Bendeck MP, Keeley FW. (1989). Adaptations of carotid arteries of young and mature rabbits to reduced carotid blood flow. Am J Physiol 256:H931–H939.
  • Laser M, Willey CD, Jiang W, Cooper GI, Menick DR, Zile MR, Kuppuswamy D. (2000). Integrin activation and focal complex formation in cardiac hypertrophy. J Biol Chem 275:35624–35630.
  • le Noble JL, Tangelder GJ, Slaaf DW, van Essen H, Reneman RS, Struyker-Boudier HA. (1990). A functional morphometric study of the cremaster muscle microcirculation in young spontaneously hypertensive rats. J Hypertension 8:741–748.
  • MacKennaDA, Dolfi F, Vuori K, Ruoslahti E. (1998). Extracellular signal-regulated kinase and c-Jun NH2- terminal kinase activation by mechanical stretch is integrin-dependent and matrix-specific in rat cardiac fibroblasts. J Clin Invest 101:301–310.
  • Majesky MW, Benditt EP, Schwartz SM. (1988). Expression and developmental control of platelet-derived growth factor A-chain and B-chain/Sis genes in rat aortic smooth muscle cells. Proc Natl Acad Sci USA 85:1524–1528.
  • Majesky MW, Daemen MJ, Schwartz SM. (1990). Α1-Adrenergic stimulation of platelet-derived growth factor A-chain gene expression in rat aorta. J Biol Chem 265:1082–1088.
  • Mattei P, Virdis A, Ghiadoni L, Taddei S, Salvetti A. (1997). Endothelial function in hypertension. J Nephrol 10:192–197.
  • Meininger GA, Lubrano VM, Granger HJ. (1984). Hemodynamic and microvascular responses in the hindquarters during the development of renal hypertension in rats. Evidence for the involvement of an autoregulatory component. Circ Res 55:609–622.
  • Miriel VA, Allen SP, Schriver SD, Prewitt RL. (1999). Genistein inhibits pressure-induced expression of c-fos in isolated mesenteric arteries. Hypertension 34: 132–137.
  • Miyamoto S, Katz BZ, Lafrenie RM, Yamada KM. (1998). Fibronectin and integrins in cell adhesion, signaling, and morphogenesis. Ann N Y Acad Sci 857: 119–129.
  • Mulvany MJ, Baumbach GL, Aalkjaer C, Heagerty AM, Korsgaard N, Schiffrin EL, Heistad DD. (1996). Vascular remodeling. Hypertension 28:505–506.
  • Negoro N, Kanayama Y, Haraguchi M, Umetani N, Nishimura M, Konishi Y, Iwai J, Okamura M, Inoue T, Takeda T. (1995). Blood pressure regulates platelet-derived growth factor A-chain gene expression in vascular smooth muscle cells in vivo. An autocrine mechanism promoting hypertensive vascular hypertrophy. J Clin Invest 95:1140–1150.
  • Ono Z, Prewitt RL, Stacy DL. (1989). Arteriolar changes in developing and chronic stages of two-kidney, one clip hypertension. Hypertension 14:36–43.
  • Osol G, Laher I, Cipolla M. (1991). Protein kinase C modulates basal myogenic tone in resistance arteries from the cerebral circulation. Circ Res 68:359–367.
  • Osol G, Laher I, Kelley M. (1993). Myogenic tone is coupled to phospholipase C and G protein activation in small cerebral arteries. Am J Physiol 265:H415- H420.
  • Owens GK, Rabinovitch PS, Schwartz SM. (1981). Smooth muscle cell hypertrophy versus hyperplasia in hypertension. Proc Natl Acad Sci USA 78:7759–7763.
  • Owens GK, Schwartz SM. (1983). Vascular smooth muscle cell hypertrophy and hyperploidy in the Gold-blatt hypertensive rat. Circ Res 53:491–501.
  • Parker SB, Dobrian AD, Wade SS, Prewitt RL. (2000). AT(1) receptor inhibition does not reduce ar- terial wall hypertrophy or PDGF-A expression in renal hypertension. Am J Physiol Heart Circ Physiol 278:H613–H622.
  • Parker SB, Wade SS, Prewitt RL. (1998). Pressure mediates angiotensin II-induced arterial hypertrophy and PDGF-A expression. Hypertension 32:452–458.
  • Prasad A, Dunnill GS, Mortimer PS, MacGregor GA. (1995). Capillary rarefaction in the forearm skin in essential hypertension. J Hypertension 13:265–268.
  • Prewitt RL, Chen II, Dowell RF. (1984). Microvascular alterations in the one-kidney, one-clip renal hypertensive rat. Am J Physiol 246:H728–H732.
  • Prewitt RL, Reilly CK, Wang DH. (1994). Pressure-flow curves reflect arteriolar responses in perfused rat hindquarters. Hypertension 23:223–228.
  • Price RJ, Skalak TC. (1996). Chronic a1-adrenergic blockade stimulates terminal and arcade arteriolar development. Am J Physiol 271:H752–H759.
  • Price RJ, Skalak TC. (1994). Circumferential wall stress as a mechanism for arteriolar rarefaction and proliferation in a network model. Microvasc Res 47: 188–202.
  • Reusch P, Wagdy H, Reusch R, Wilson E, Ives HE. (1996). Mechanical strain increases smooth muscle and decreases nonmuscle myosin expression in rat vascular smooth muscle cells. Circ Res 79:1046–1053.
  • Rice DC, Dobrian AD, Schriver SD, Prewitt RL. (2002). Src autophosphorylation is an early event in pressure-mediated signaling pathways in isolated resistance arteries. Hypertension 39:502–507.
  • Rizzoni D, Porteri E, Castellano M, Bettoni G, Muie-san ML, Muiesan P, Giulini SM, Agabiti-Rosei E. (1996). Vascular hypertrophy and remodeling in secondary hypertension. Hypertension 28:785–790.
  • Sachinidis A, Schulte K, Ko Y, Meyer zu Brickwedde MK, Hoppe V, Hoppe J, Vetter H. (1993). The induction of early response genes in rat smooth muscle cells by PDGF-AA is not sufficient to stimulate DNA-synthesis. FEBS Lett 319:221–224.
  • Sadoshima J, Qiu Z, Morgan JP, Izumo S. (1996). Tyrosine kinase activation is an immediate and essential step in hypotonic cell swelling-induced ERK activation and c-fos gene expression in cardiac myocytes. EMBO J 15:5535–5546.
  • Saito Y, Haendeler J, Hojo Y, Yamamoto K, Berk BC. (2001). Receptor heterodimerization: essential mechanism for platelet-derived growth factor-induced epidermal growth factor receptor transacti-vation. Mol Cell Biol 21:6387–6394.
  • Schaller MD, Hildebrand JD, Shannon JD, Fox JW, Vines RR, Parsons JT. (1994). Autophosphorylation of the focal adhesion kinase, pp125FAK, directs SH2-dependent binding of pp60src. Mol Cell Biol 14: 1680–1688.
  • Schiffrin EL. (1995). Remodeling of resistance arteries in human hypertension: effects of cilazapril, an angiotensin-I-converting enzyme inhibitor. Cardiology 86:16–22.
  • Schlaepfer DD, Hanks SK, Hunter T, van der Geer P. (1994). Integrin-mediated signal transduction linked to Ras pathway by GRB2 binding to focal adhesion kinase. Nature 372:786–791.
  • Scott-Burden T, Resink TJ, Buhler FR. (1989). Enhanced growth and growth factor responsiveness of vascular smooth muscle cells from hypertensive rats. J Cardiovasc Pharmacol 14:S16–S21.
  • Serne EH, Gans RO, ter Maaten JC, Tangelder GJ, Donker AJ, Stehouwer CD. (2001). Impaired skin capillary recruitment in essential hypertension is caused by both functional and structural capillary rarefaction. Hypertension 38:238–242.
  • Short DS, Thompson AD. (1959). The arteries of the small intestine in systemic hypertension. J Pathol Bacteriol 78:321–334.
  • Stacy DL, Prewitt RL. (1989). Attenuated microvas-cular alterations in coarctation hypertension. Am J Physiol 256:H213–H221.
  • Stacy DL, Prewitt RL. (1989). Effects of chronic hypertension and its reversal on arteries and arterioles. Circ Res 65:869–879.
  • Stover DR, Furet P, Lydon NB. (1996). Modulation of the SH2 binding specificity and kinase activity of Src by tyrosine phosphorylation within its SH2 domain. J Biol Chem 271:12481–12487.
  • Sumpio BE, Banes AJ. (1988). Response of porcine aortic smooth muscle cells to cyclic tensional deformation in culture. J Surg Res 44:696–701.
  • Ward DT, Alder AC, Ohanian J, Ohanian V. (2002). Noradrenaline-induced paxillin phosphorylation, ERK activation and MEK-regulated contraction in intact rat mesenteric arteries. J Vasc Res 39:1–11.
  • Ward MR, Pasterkamp G, Yeung AC, Borst C. (2000). Arterial remodeling. Mechanisms and clinical implications. Circulation 102:1186–1191.
  • Wesselman JP, Dobrian AD, Schriver SD, Prewitt RL. (2001). Src tyrosine kinases and extracellular signal-regulated kinase 1/2 mitogen-activated protein ki-nases mediate pressure-induced c-Fos expression in cannulated rat mesenteric small arteries. Hypertension 37:955–960.
  • Wilson E, Mai Q, Sudhir K, Weiss RH, Ives HE. (1993). Mechanical strain induces growth of vascular smooth muscle cells via autocrine action of PDGF. J Cell Biol 123:741–747.
  • Wilson E, Sudhir K, Ives HE. (1995). Mechanical strain of rat vascular smooth muscle cells is sensed by specific extracellular matrix/integrin interactions. J Clin Invest 96:2364–2372.

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