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Biomedical subjects

H van Essen

Publications and source records attributed to H van Essen.

At least 19 recordsLinked to original sources

Altered flow-induced arterial remodeling in vimentin-deficient mice.

The endothelial cytoskeleton plays a key role in arterial responses to acute changes in shear stress. We evaluated whether the intermediate filament protein vimentin is involved in the structural responses of arteries to chronic changes in blood flow (BF). In wild-type mice (V+/+) and in vimentin-deficient mice (V-/-), the left common carotid artery (LCA) was ligated near its bifurcation, and 4 weeks later, the structures of the occluded and of the contralateral arteries were evaluated and compared with the structures of arteries from sham-operated mice. Body weight and mean carotid artery BF did not differ between the strains, but LCA and right carotid artery (RCA) diameter (737+/-14 microm [LCA] and 723+/-14 microm [RCA] for V-/- versus 808+/-20 microm [LCA] and 796+/-20 microm [RCA] for V+/+) and medial cross-sectional area (CSAm) were significantly smaller in V-/- (21+/-1 and 22+/-2 x 10(3) microm(2) for LCA and RCA, respectively) than in V+/+ (28+/-2 and 28+/-3 x 10(3) microm(2) for LCA and RCA, respectively). In V+/+, LCA ligation eliminated BF in the occluded vessel (before ligation, 0. 35+/-0.02 mL/min) and increased BF from 0.34+/-0.02 to 0.68+/-0.04 mL/min in the RCA. In V-/-, the BF change in the occluded LCA was comparable (from 0.38+/-0.05 mL/min to zero-flow rates), but the BF increase in the RCA was less pronounced (from 0.33+/-0.02 to 0. 50+/-0.05 mL/min). In the occluded LCA of V+/+, arterial diameter was markedly reduced (-162 microm), and CSAm was significantly increased (5 x 10(3) microm(2)), whereas in the high-flow RCA of V+/+, carotid artery diameter and CSAm were not significantly modified. In the occluded LCA of V-/-, arterial diameter was reduced to a lesser extent (-77 microm) and CSAm was increased to a larger extent (10 x 10(3) microm(2)) than in V+/+. In contrast to V+/+, the high-flow RCA of V-/- displayed a significant increase in diameter (52 microm) and a significant increase in CSAm (5 x 10(3) microm(2)). These observations provide the first direct evidence for a role of the cytoskeleton in flow-induced arterial remodeling. Furthermore, they dissociate (1) between acute and chronic arterial responses to altered BF, (2) between alterations of lumen diameter and wall mass during arterial remodeling, and (3) between developmental and imposed flow-induced arterial remodeling.

Animals↗

Angiogenic potential of malignant and non-malignant human breast tissues in an in vivo angiogenesis model.

Tumors need to acquire an angiogenic phenotype for outgrowth and metastasis formation. Limited information on the angiogenic potential of specific tissues, especially human breast tissues is available. Here we describe an in vivo model, using the dorsal skin fold chamber in immunodeficient nude mice, where various tissues of human breast origin were xenografted and evaluated for their angiogenesis-inducing potential. We found that angiogenesis was abundantly induced by all breast carcinoma tissue samples. Similar angiogenesis was induced by tissue samples from breasts with hyperplasia and apocrine metaplasia. Histologically normal tissues adjacent to the tumor induced angiogenesis in 66% of the cases. Angiogenesis was not induced by control tissues from normal healthy breasts, obtained after cosmetic breast reduction. Angiogenesis induction parallelled VEGF production by the tumor cells. The tissue induced neovascularization, found both around and in the human tissue, was functional since a tail vein injection of albumin-FITC revealed positive tumor microcirculation within 5 min, while the tumor tissue still consisted of vital human epithelial cells after 14 days.

Animals↗

Disproportional arterial hypertrophy in hypertensive mRen-2 transgenic rats.

In the present study, we investigated the role of enhanced vascular renin-angiotensin activity in vascular hypertrophy. We used transgenic (mRen-2)27 (renin TGR) rats, spontaneously hypertensive rats (SHR), and their respective normotensive control rats to study in situ pressure-diameter relationships in second-generation mesenteric arterial branches (in vivo diameter, 400 to 500 microns) over a pressure range of 0 to 200 mm Hg. We studied pressure-diameter curves under both control (Tyrode's solution) and fully relaxed (Tyrode's solution containing 100 mg/L potassium cyanide) conditions. From these curves, we determined mechanical properties at operating blood pressure. In both hypertensive strains, mesenteric arterial media cross-sectional area was increased, with a significantly (P < .05) stronger degree of hypertrophy in renin TGR rats. Arterial distensibility of relaxed vessels was decreased to an equal degree in both hypertensive strains. Under control conditions, distensibility was higher in SHR than in renin TGR rats but still significantly reduced compared with distensibility in normotensive rats. Wall tension was increased to an equal degree in both hypertensive strains, whereas circumferential wall stress was normal in SHR but significantly (P < .05) reduced in renin TGR rats. These results indicate that whereas vascular hypertrophy in SHR causes adaptive normalization of arterial wall stress, enhanced vascular renin-angiotensin activity causes vascular hypertrophy in excess of the hypertrophy associated with pressure elevation alone.

Animals↗

Effects of prolonged blockade of the renin angiotensin system on striated muscle microcirculation of spontaneously hypertensive rats.

Changes in microcirculation play an important role in the pathogenesis and maintenance of hypertension. The changes can be due to an alteration in vessel diameter or in the number of small blood vessels. In this study, the effects of prolonged administration of different blockers of the renin angiotensin system on the microcirculation of the cutaneous maximus muscle of young spontaneously hypertensive rats were determined by using the dorsal microcirculatory chamber model. Animals were treated with the angiotensin-converting enzyme inhibitor (ACE inhibitor) benazeprilat (3 mg/kg/d) or the specific angiotensin II AT1 receptor antagonist valsartan (3 mg/kg/d) for 4 weeks. Blood pressure was significantly lowered by 22 to 33% and to a similar extent in both treatment groups, whereas blood pressure in the control group continued to rise. Microvascular diameters and density were measured before and during the drug treatment and compared with those in the control group. There was no significant effect of either of the drug treatments on vascular diameters when compared with the control group for any vessel type (arterioles or venules). In contrast, there was a significant decrease in small arteriolar and venular density and in large venular density after treatment with the ACE inhibitor, whereas the angiotensin II AT1 receptor antagonist had no significant effect. The data do not suggest a role for angiotensin II in the long-term control of striated muscle microvascular tone. However, angiotensin II may be involved in microvascular growth via a non-AT1 receptor-mediated mechanism, or other vasoactive peptides degraded by ACE may contribute to the effects of the ACE inhibitor.

Angiotensin Receptor Antagonists↗

The human E48 antigen, highly homologous to the murine Ly-6 antigen ThB, is a GPI-anchored molecule apparently involved in keratinocyte cell-cell adhesion.

The E48 antigen, a putative human homologue of the 20-kD protein present in desmosomal preparations of bovine muzzle, and formerly called desmoglein III (dg4), is a promising target antigen for antibody-based therapy of squamous cell carcinoma in man. To anticipate the effect of high antibody dose treatment, and to evaluate the possible biological involvement of the antigen in carcinogenesis, we set out to molecularly characterize the antigen. A cDNA clone encoding the E48 antigen was isolated by expression cloning in COS cells. Sequence analysis revealed that the clone contained an open reading frame of 128 amino acids, encoding a core protein of 13,286 kD. Database searching showed that the E48 antigen has a high level of sequence similarity with the mouse ThB antigen, a member of the Ly-6 antigen family. Phosphatidylinositol-specific (PI-specific) phospholipase-C treatment indicated that the E48 antigen is glycosylphosphatidylinositol-anchored (GPI-anchored) to the plasma membrane. The gene encoding the E48 antigen is a single copy gene, located on human chromosome 8 in the 8q24-qter region. The expression of the gene is confined to keratinocytes and squamous tumor cells. The putative mouse homologue, the ThB antigen, originally identified as an antigen on cells of the lymphocyte lineage, was shown to be highly expressed in squamous mouse epithelia. Moreover, the ThB expression level is in keratinocytes, in contrast to that in lymphocytes, not mouse strain related. Transfection of mouse SV40-polyoma transformed mouse NIH/3T3 cells with the E48 cDNA confirmed that the antigen is likely to be involved in cell-cell adhesion.

Amino Acid Sequence↗

Regional haemodynamic effects of dopamine and its prodrugs L-dopa and gludopa in the rat and in the glycerol-treated rat as a model for acute renal failure.

1. In this study the renal selectivity of dopamine and its prodrugs L-dopa and gludopa, with respect to their effects on regional blood flow, vascular resistance and central haemodynamics was investigated in normal rats and in rats with glycerol-induced acute renal failure (ARF). 2. In normal, anaesthetized rats, dopamine as well as its prodrugs caused a dose-dependent reduction of vascular resistance in the kidney (RR), mesentery (MR) and hindquarters (HQR) (dose range: dopamine: 0.1-5 mumol kg-1 h-1; L-dopa and gludopa: 1-200 mumol kg-1 h-1). Blood pressure and heart rate were affected at the highest dose only. 3. Administration of glycerol induced a preferential renal vasoconstriction; renal blood flow (-60%) and vascular resistance (+190%) were significantly more affected than MR (+40%) and HQR (+60%). This was only ameliorated by a low rate (10 mumol kg-1 h-1) infusion of gludopa: the glycerol-induced reduction of renal flow and increase in RR were significantly attenuated. A high dose of gludopa (100 mumol kg-1 h-1) or any dose of L-dopa or dopamine did not induce this beneficial effect. The glycerol-induced increase in MR and HQR was not attenuated by any of the treatments used. 4. The results indicate that gludopa is not renally selective at a pharmacodynamic level in normal, anaesthetized rats. Contrary to this, a low dose of gludopa does cause a renal selective vasodilatation and reduction of RR in rats with glycerol-induced ARF. This difference could be explained by a difference in renal vascular tone between normal rats and glycerol-induced ARF rats. A high dose ofgludopa does not cause these renal-selective effects: renal resistance and renal flow are at the same level as following glycerol and saline. This is probably due to the systemic effects of the released dopamine.

Acute Kidney Injury↗

Preferential small arteriolar vasodilatation by the potassium channel opener, BRL 38227, in conscious spontaneously hypertensive rats.

The microvascular effects of the potassium channel opener, BRL 38227 (the active enantiomer of cromakalim), were investigated in conscious spontaneously hypertensive rats (SHR) provided with a chronic dorsal microcirculatory chamber. BRL 38227 decreased blood pressure and increased heart rate in a dose-dependent manner. It dilated arterioles of different sizes, with the most pronounced effect on the smallest precapillary arterioles. Venule diameters were not significantly affected by BRL 38227. The data show a preferential sensitivity of small precapillary arterioles for potassium channel opening.

Animals↗

The microcirculation and hypertension.

AIM: To review published evidence on the effects of arteriolar changes in primary and secondary hypertension. BACKGROUND: Pressure profile analyses have shown that the microcirculation is a major site of vascular resistance. With the recent refinement of intravital microscopy techniques detailed information has become available on mechanisms of the microvascular resistance increase in hypertension. Three mechanisms play an important role: (1) a decrease in arteriolar diameter; (2) arteriolar vessel wall hypertrophy; and (3) small arteriolar and capillary rarefaction. METHOD: The evidence was synthesized into a hypothesis on the role of the microcirculation in primary forms of hypertension. HYPOTHESIS: The hypothesis formulated contains two important elements in that (1) diminished outgrowth of the microvascular bed in different tissues is seen as an important early pathogenic mechanism; and (2) the decreases in arteriolar diameter and vessel wall hypertrophy are seen as adaptive mechanisms that maintain a constant wall stress. The three factors together maintain the increase in vascular resistance that is common to all established forms of primary hypertension.

Animals↗

A functional morphometric study of the cremaster muscle microcirculation in young spontaneously hypertensive rats.

Increased vascular resistance in spontaneous hypertension has been attributed to a reduced arteriolar lumen and a decrease in the number of arterioles and capillaries. In the present study, microvascular mechanisms for increased resistance were investigated in the cremaster muscle of 5-6-week-old spontaneously hypertensive rats (SHR) and age-matched Wistar-Kyoto rats (WKY) using intravital microscopy. Vessels were classified on the basis of their location in the network relative to their branching order and function (A1-A4). In each preparation, one vessel of each category was observed for its side-branches, using bright-field microscopy. By comparing the number of side-branches seen under control conditions and after maximal vasodilatation (10(-3) mol/l adenosine, topically) we assessed their functional reserve. Capillary density was investigated using incident fluorescence microscopy. Both under control conditions and after vasodilatation, mean arterial pressure and heart rate were increased in SHR (mean arterial pressure: SHR 103 +/- 4 mmHg, WKY 89 +/- 3 mmHg, P less than 0.05; heart rate: SHR 380 +/- 16 beats/min, WKY 343 +/- 12 beats/min, P less than 0.05). Arterioles (A1-A4) of SHR and WKY were equal in diameter (SHR: 75.8 +/- 3.2, 48.7 +/- 1.1, 21.4 +/- 0.9, 10.0 +/- 0.04 microns; WKY: 71.6 +/- 2.4, 48.9 +/- 1.1, 18.5 +/- 0.9, 9.8 +/- 0.3 microns; A1-A4, respectively). After adenosine, the relative increase in diameter was similar in both groups. The number of side-branches under control conditions was similar in A1 and A2 vessels. SHR had fewer A3 vessels per A2 and fewer A4 vessels per A3 (per unit length), indicating a diminished arteriolar reserve.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Hypertension, the microcirculation and serotonin.

Essential hypertension in humans and most experimental animal models of hypertension is hemodynamically characterized by an increased vascular resistance. The site of resistance increase has been localized by recent intravital microscopic studies in most vascular beds primarily in the microcirculation, i.e. in arterioles smaller than 150 microns. Three mechanisms are held responsible for the resistance increase: (1) a rarefaction of the smallest arterioles and capillaries, (2) an increased wall to lumen ratio and (3) a decreased internal diameter. The latter two effects have been localized primarily in the larger arterioles and arteries. The contribution of each of the three factors to the rise in total peripheral resistance depends on the vascular bed, the model of hypertension and its stage of development. Serotonin is one of the endogenous mediators of vascular tone. Its effects have thus far been mostly studied in relation to alterations of internal vascular diameter. Larger arterioles and arteries constrict, but resistance-sized smaller arterioles dilate in response to the exogenous application of serotonin.

Aging↗

Liver blood flow measurement in the rat. The electromagnetic versus the microsphere and the clearance methods.

This study describes the simultaneous measurement of hepatic arterial and portal venous blood flow in the pentobarbital anesthetized rat by means of electromagnetic flowmeters. Hepatic arterial flow was 0.21 +/- 0.02 mL/min/g liver, and portal venous flow was 1.53 +/- 0.19 mL/min/g liver (n = 20). Flows remained stable for more than 3 hr. A clear advantage of the electromagnetic technique is that it allows the continuous simultaneous separate measurement of hepatic arterial and portal venous blood flow. Simultaneous measurement of hepatic blood flow by the electromagnetic method and the microsphere method yielded almost identical results. Adenosine infusion (100 micrograms/min) did not affect hepatic blood flow measured electromagnetically nor via the microsphere technique. The suitability of indocyanine green (ICG) as an indicator of hepatic blood flow was evaluated by comparing the ICG clearance at steady-state conditions to the values of liver flow obtained by direct electromagnetic measurement. ICG clearance was only 30% of the electromagnetically measured blood flow. These data strongly suggest that ICG clearance does not reflect liver flow in the rat. Intravenous infusion of the vasoactive agents phenylephrine (2, 4, 10 micrograms/min during 5 min) and adenosine (20, 40, 200 micrograms/min) did not affect portal venous nor hepatic arterial flow, measured by the electromagnetic method, although brisk effects on mean arterial blood pressure were observed. This suggests autoregulatory responses of the hepatic vascular bed. The data suggest that electromagnetic flowmeters may be used to measure portal venous and hepatic arterial flow simultaneously in anesthetized rats. The continuous measurement of both flows simultaneously offers a clear advantage over other methods of hepatic flow measurement.

Adenosine↗

Effects of complete renal denervation and selective afferent renal denervation on the hypertension induced by intrarenal norepinephrine infusion in conscious rats.

To test the hypothesis that continuous intrarenal norepinephrine (NE) infusions produce hypertension via activation of afferent renal nerves (ARN), rats were subjected to complete renal denervation (RN-x), selective renal deafferentation (ARN-x) or sham surgery, prior to infusion of NE. In the pre-infusion period, mean arterial pressure (MAP) was significantly lower in RN-x than in ARN-x or sham-operated rats. Plasma renin concentration (PRC) was significantly reduced following ARN-x, but not RN-x. During 5-day intrarenal infusions of 4, 12 or 36 micrograms NE/kg per h, MAP rose to similar levels in RN-x and sham-RN-x rats. However, RN-x rats exhibited significantly elevated PRC levels, suggesting that denervation supersensitivity masked the possible effects of RN-x. In sham-RN-x rats, MAP increased significantly more during intrarenal infusion of 12 micrograms NE/kg per h than during intravenous infusion of the same amount. In ARN-x rats, MAP rose to a similar degree during intravenous and intrarenal infusions. The pressor responses in the ARN-x rats, however, were not significantly smaller at any point than those in intact rats. PRC rose to comparable levels in ARN-x and intact rats. Thus, in normotensive rats, efferent renal nerves (ERN) but not ARN are of functional significance in maintaining basal blood pressure. ARN may be involved in the control of renin release. Since neither RN-x nor ARN-x attenuated the development of hypertension, renal nerves are not necessary for the full expression of hypertension in this model.

Afferent Pathways↗

Hemodynamic effects of activation of renal and mesenteric sensory nerves in rats.

Afferent nerves from the kidney and mesentery reflexly influence the cardiovascular system when activated. To examine the specificity of these reflexes, comparisons were made of the regional hemodynamic responses elicited by intra-arterial infusion of various agents into the renal (ir) and mesenteric (im) circulation. Experiments were performed in conscious rats, chronically instrumented with Doppler flow probes. Local ir as well as im infusions of bradykinin caused a hemodynamic reflex pattern characterized by a dose-dependent increase in arterial pressure, heart rate, and resistance in the renal and mesenteric vascular beds, whereas hindquarter resistance did not change. Similar hemodynamic reflex patterns were evoked by ir and im infusions of adenosine and 5-hydroxytryptamine. Thus neither application of different chemicals nor their route of infusion resulted in qualitatively different hemodynamic reflex patterns. This suggests that afferent nerve fibers from the kidney and mesentery share a common physiological function.

Adenosine↗

Role of afferent renal nerves in spontaneous hypertension in rats.

In the present study we examined sympathetic function and baroreceptor reflex sensitivity in adult spontaneously hypertensive rats (SHR) after a selective transection of afferent renal nerves in the prehypertensive and established phases of hypertension. Renal deafferentation performed between 3 and 4 weeks after birth did not influence the course of the development of high blood pressure when compared with sham-operated rats. Mean arterial pressure, heart rate, and plasma norepinephrine concentrations were similar in both groups when measured at 13 weeks after renal deafferentation. However, blood pressure responses to ganglionic blockade with hexamethonium were significantly reduced in the renal deafferented SHR. Baroreceptor reflex sensitivity, assessed by heart rate responses to blood pressure changes induced by phenylephrine and nitroprusside, was significantly enhanced in these rats. When renal deafferentation was performed in adult SHR with established hypertension, mean arterial pressure decreased slightly but significantly by 5%. Heart rate, plasma norepinephrine concentrations, and responses to hexamethonium were not affected by this procedure. However, in the renal deafferented adult SHR, heart rate responses to phenylephrine but not to nitroprusside were significantly increased. Thus, in contrast to efferent renal nerves, afferent renal nerves do not play an important role in the development and maintenance of high blood pressure in SHR, but may contribute to the mechanisms that alter sympathetic function and baroreceptor reflex sensitivity in SHR during the development of hypertension.

Afferent Pathways↗

Effects of ketanserin on hemodynamics and baroreflex effects in conscious spontaneously hypertensive rats.

Ketanserin is an antihypertensive compound that binds to 5-HT2 receptors as well as to alpha 1-adrenoceptors. The relative importance of the two pharmacological interactions is still unclear. In the present study we compared the central hemodynamic effects of ketanserin with those of the alpha 1-adrenoceptor antagonist prazosin in conscious, unrestrained spontaneously hypertensive rats (SHR). Both drugs rapidly reduced mean arterial pressure (0.1 mg/kg prazosin, -22 +/- 3%; 3 mg/kg ketanserin, -27 +/- 4%) and total peripheral resistance (30 +/- 4 and 26 +/- 4%, respectively). The compounds differed with respect to their effects on heart rate and cardiac output, which increased following prazosin treatment and did not change following ketanserin administration. To investigate involvement of the baroreflex in the latter phenomenon, SHR were challenged with angiotensin II and sodium nitroprusside to increase and decrease blood pressure. Ketanserin did not influence bradycardia following elevation of blood pressure. However, reduction of blood pressure with nitroprusside following ketanserin treatment resulted in extreme vagal bradycardia. This phenomenon was not observed following administration of other antihypertensive agents or serotonin antagonists in SHR. We conclude that this latter interaction with the baroreflex is specific for ketanserin and that it may substantially contribute to its antihypertensive effect. The exact pharmacological mechanism underlying this effect is still under investigation.

Angiotensin II↗

Lack of renal vasodilation during intrarenal infusion of synthetic atriopeptin II in conscious intact SHR.

Synthetic atriopeptin II (APII) was infused directly into the right renal artery of intact conscious SHR at rates of 0.25-1 microgram/kg/min, while simultaneously measuring blood pressure (MAP) and selected regional blood flows. The latter were measured using chronically implanted miniaturized Doppler flowprobes that were placed on the right and left renal artery, superior mesenteric artery and abdominal aorta. The effects of intrarenally (i.r.) infused APII on these vascular beds were compared to the effects of the same amounts of APII given intravenously (i.v.) in the same SHR. I.r. and i.v. infusions caused similar reductions of MAP and all four blood flows. Also effects on calculated resistances were comparable, implying that resistance increased most in the mesentery and least in the two kidneys. The increase in right renal resistance during i.v. infusions of APII was not different from the effect during i.r. infusions. Also, during i.r. infusions into the right kidney, effects on the left and right kidney were not different. Our observations suggest that synthetic APII has no direct effects on the renal vasculature of intact conscious SHR.

Animals↗