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Retinal microvessels express less gamma-glutamyl transpeptidase than brain microvessels.

In this investigation we localized and compared the level of gamma-glutamyl transpeptidase (GGTP) activity in retinal and brain preparations using histochemical, enzymatic and in situ hybridization assays. We compared GGTP distribution to another microvessel specific enzyme, alkaline phosphatase (AP). In the rat brain, GGTP activity was observed in microvessels and choroid plexus by a histochemical method. Similar studies in the rat retina revealed activity in the pigment epithelium but only a very weak reaction in microvessels. Histochemical staining for alkaline phosphatase was observed in both retinal and brain microvessels choroid plexus and pigment epithelium. Biochemical analysis verified that GGTP activity was significantly lower in retinal than brain microvessels, while alkaline phosphatase activity was similar in both types of microvessels. GGTP specific activity of bovine brain and retinal microvessels was 185 +/- 39 mUnits and 8.5 +/- 1.5 mUnits (p less than 0.001), respectively. By contrast, alkaline phosphatase specific activity in brain and retinal microvessels was 732 +/- 139 and 471 +/- 114 (p greater than 0.1), respectively. Choroid plexus and retinal pigment epithelium exhibited similar levels of GGTP and alkaline phosphatase. Differences in GGTP expression between retinal and brain microvessels were also observed on the mRNA level. In situ hybridization studies revealed that brain microvessels expressed four times more GGTP specific mRNA than retinal microvessels. We conclude that retinal microvessels do not express high levels of GGTP which may make them more vulnerable than brain microvessels to injuries mediated by leukotrienes and oxidative stress.

Alkaline Phosphatase

Effects of selected vasoactive substances on adenylate cyclase activity in brain, isolated brain microvessels, and primary cultures of brain microvessel endothelial cells.

The specific activity of adenylate cyclase was assayed in homogenates of gray matter, freshly isolated and primary cultured microvessel endothelial cells from bovine cerebral cortex. Specific activities for the tissues were 14.6 +/- 2.1, 15.6 +/- 2.7, and 8.4 +/- 1.5 pmol cAMP/mg protein/min +/- SD for gray matter, cultured microvessels, and freshly isolated microvessels, respectively. Adenylate cyclase associated with gray matter and cultured microvessels was sensitive to histamine and selected catecholamines. Perhaps due to metabolic deficiencies, adenylate cyclase of freshly isolated microvessels exhibited little or no response to either the catecholamines or histamine. Angiotensin II stimulated adenylate cyclase of both freshly isolated and cultured microvessels but had no effect on gray matter. Bradykinin did not stimulate cAMP generation in any of the tissues. Overall results support the role of cAMP in regulating brain microvessel functions and suggest that primary cultures of brain microvessels may be useful in examining cAMP-mediated biochemical pathways at the blood-brain barrier.

Adenylyl Cyclases

Red cell velocity and microvessel diameter measurement by a two fluorescent tracer method under epifluorescence microscopy: application to cerebral microvessels of cats.

Fluorescein isothiocyanate (FITC)-labeled red blood cells (RBCs) and rhodamine-B isothiocyanate (RITC)-labeled dextran were used as two fluorescent tracers under intravital fluorescence microscopy. RBC velocity in cerebral microvessels of cats was measured with a dual window technique using FITC-labeled RBCs as a flow tracer. Measurement of the vessel diameter was performed using a digital image processor system by staining plasma with RITC-labeled dextran. The RBC velocity, obtained directly with digital cross-correlation of videodensitometric signals derived from the two windows, coincided with those obtained with the frame-by-frame analysis. The obtained RBC velocity ranged between 12.9 and 0.45 mm/sec in arterioles (< 60 microns) in diameter, 4.2 and 0.18 mm/sec in venules (< 60 microns in diameter), and 1.1 and 0.26 mm/sec in capillaries. The use of the labeled RBCs as the flow tracer enabled us to measure a wide range of RBC velocity (up to about 7 mm/sec) by setting the distance between the two windows beyond about 200 microns.

Animals

L-cysteine selectively potentiates nitroglycerin-induced dilation of small coronary microvessels.

Nitroglycerin potently dilates large coronary arteries but has minimal effect on coronary resistance vessels. Thus, nitroglycerin is not likely to be converted to vasoactive intermediates in small coronary microvessels (less than 100 microns diameter). Because nitroglycerin biotransformation may involve sulfhydryl groups, the effect of L-cysteine on the dilation caused by nitroglycerin (1 nM to 10 microM) was examined in small (80-100 microns in diameter) and large (190-300 microns in diameter) porcine coronary microvessels. Vessels were pressurized in a no-flow state and preconstricted with acetylcholine, then visualized by means of an in vitro microvessel imaging apparatus. Under control conditions, nitroglycerin caused potent dilations of large coronary microvessels, while having minimal effects on small coronary microvessels [peak relaxations 90 +/- 3 vs. 20 +/- 7% (mean +/- S.E.M.) of preconstricted diameter, respectively]. L-Cysteine (100 microM) markedly enhanced relaxations of small coronary microvessels (peak relaxation 96 +/- 2%), while having no effect on relaxations of large coronary microvessels. Ethacrynic acid, which alkylates sulfhydryl groups, markedly inhibited relaxations of large coronary microvessels (peak relaxation = 31 +/- 9%) yet had a minimal effect on the small relaxations of small coronary microvessels to nitroglycerin. Thus, when sulfhydryl groups are made available, small coronary microvessels are markedly responsive to nitroglycerin. This suggests that small coronary microvessels normally lack the reductive capacity to convert nitroglycerin to its active metabolites. Prussian blue stains of sulfhydryl groups in large and small coronary microvessels were qualitatively similar. Thus, small coronary microvessels do not lack sulfhydryl groups but may be deficient in a critical pool necessary for nitroglycerin biotransformation.

Animals

Role of the endothelium in modulation of the acetylcholine vasoconstrictor response in porcine coronary microvessels.

STUDY OBJECTIVE: The aim was to investigate the role of the endothelium in modulating the acetylcholine response in porcine coronary microvessels and compare the results with simultaneously studied large coronary arteries. DESIGN: Coronary microvessels [104 (SEM 3.3) microns; range 38-150] were removed from fresh porcine hearts and studied in vitro during no flow constant pressure conditions. Endothelium derived relaxing factor (EDRF) activity and the role of the endothelium in modulating the acetylcholine response in microvessels was assessed by measuring changes in intraluminal diameter using a video tracking device. Large coronary arteries were simultaneously studied using conventional isometric ring techniques. EXPERIMENTAL MATERIAL: Fresh porcine hearts were obtained from a local slaughterhouse. MEASUREMENTS AND MAIN RESULTS: Acetylcholine was a potent vasoconstrictor (EC50 = 0.17 microM) of passively distended microvessels. The effects of EDRF were studied by either inactivation with haemoglobin or inhibition of EDRF synthesis with N-omega-nitro-L-arginine. Preconstricted microvessels exposed to either N-omega-nitro-L-arginine or haemoglobin constricted further, consistent with basal release of EDRF. Neither drug affected passively distended microvessels. The acetylcholine vasoconstrictor response was potentiated after exposure of microvessels to either drug. Atropine, but not indomethacin, blocked the acetylcholine response in microvessels. As with microvessels, acetylcholine was a vasoconstrictor (EC50 = 0.3 microM) of large coronary arteries. In contrast to microvessels, indomethacin antagonised acetylcholine vasoconstriction in vessels with intact endothelium. Bioassay experiments using indomethacin-treated large epicardial donor artery segments showed basal release of EDRF but no EDRF release in response to acetylcholine. CONCLUSIONS: The results show the microvessels and large coronary arteries are similar in their vasoconstrictor response to acetylcholine, that both release EDRF basally, and that vasoconstriction to acetylcholine is importantly modulated by the endothelium. In large arteries, acetylcholine does not stimulate EDRF release and, in contrast to microvessels, a cyclo-oxygenase product influences the vasoconstrictor action of acetylcholine.

Acetylcholine

Cerebral microvessels and derived cells in tissue culture: isolation and preliminary characterization.

Microvessels isolated from mouse forebrain were used as the source material for the derivation of cerebral vascular endothelium and smooth-muscle cells in culture. The microvessels were isolated by a mechanical dispersion and filtration technique, and were maintained in vitro as organoid cultures. A microvessel classification system was developed and proved to be useful as a tool in monitoring culture progress and in predicting the type(s) of microvessel(s) that would give rise to migrating and/or proliferating cells. The isolated cerebral microvessels were heterogeneous in diameter, size of individual vascular isolate, and proliferative potential. The isolated microvessels ranged in diameter from 4 micron to 25 micron and in size from a single microvascular segment to a large multibranched plexus with mural cells. The initial viability, determined by erythrosin B exclusion, was approximately 50% on a per cell basis. All microvessel classes had proliferative potential although the rate and extent of proliferation were both microvessel class- and density-dependent. The smaller microvessels gave rise to endothelial cells, whereas the large microvessels gave rise to endothelial and smooth-muscle cells. The viability and progress of a microvessel toward derived cell proliferation seemed to be directly proportional to the number of mural cells present.

Animals

Microvessel quantitation and prognosis in invasive breast carcinoma.

The prognostic significance of microvessel quantitation in invasive breast carcinoma was analyzed in a study group that comprised 88 patients with axillary node-negative carcinoma and 32 patients with axillary node-positive carcinoma who had a minimum follow-up period of 9 years. Microvessels were identified by immunohistochemistry using antibodies to endothelial markers, including factor VIII-related antigen and blood group isoantigens (ABH). Factor VIII-related antigen staining provided more consistent results for microvessel quantitation than did staining for ABH isoantigens. The three most vascular areas within a tumor were selected, and the microvessels within a x200 microscopic field of each area were counted by two investigators simultaneously. Node-positive carcinomas demonstrated significantly higher microvessel counts than did node-negative carcinomas (mean +/- SD, 99 +/- 42 and 73 +/- 22, respectively; P less than .001). In node-negative carcinomas, tumors from patients who experienced distant recurrence had higher microvessel counts than did tumors from patients who were disease-free (84 +/- 19 and 70 +/- 22; P = .01). Similarly, in patients with node-positive carcinoma, microvessel counts were considerably higher in tumors from patients who experienced distant recurrence than in patients who did not, although the difference did not reach statistical significance (113 +/- 44 and 93 +/- 34, respectively). Among patients with node-negative carcinoma, those with a microvessel count of less than 84 had a recurrence rate of 20% compared with 57% in patients with counts greater than 84 (P = .003). Microvessel counts were independent of histologic parameters, ploidy status, and S-phase fraction but correlated with peritumoral vascular invasion. Both microvessel counts and vascular invasion were independent prognostic parameters by multivariate analysis. High vessel counts may represent increased tumor angiogenesis and are correlated with tumor aggressiveness. Microvessel quantitation may be an additional prognostic factor that, when used in conjunction with more established parameters, can help in appropriate patient management.

Breast Neoplasms

Vasomotor properties of porcine endocardial and epicardial microvessels.

We sought to compare the sensitivity of endocardial and epicardial microvessels to several important neurohumoral substances. Porcine endocardial microvessels (86-200 microns diam) from the anterior papillary muscle and epicardial microvessels of similar size from the left anterior descending distribution were studied in a pressurized state using an in vitro microvessel-imaging apparatus. Endothelium-dependent relaxations to bradykinin, ADP, A23187, and to the endothelium-independent vasodilator nitroprusside were identical between endocardial and epicardial microvessels. In contrast, the sensitivity of endocardial microvessels to adenosine was substantially greater than that of epicardial microvessels (ED50s of -6.59 +/- 0.05 vs. -5.66 +/- 0.11, P less than 0.001, endocardial vs. epicardial, respectively), although adenosine caused 100% relaxation of both groups of vessels at the highest concentrations. Adenosine vasorelaxation was not affected by inhibition of cyclooxygenase by indomethacin (1 microM) or depletion of guanosine 3',5'-cyclic monophosphate by LY 83583 (1 microM). Forskolin dilated both endocardial and epicardial vessels completely but was more potent in endocardial vessels. These data show that endocardial and epicardial microvessels exhibit similar sensitivity to most vasodilator agents. Endocardial microvessels, however, are more sensitive to both adenosine and forskolin. The enhanced responsiveness to adenosine may be related to adenosine 3',5'-cyclic monophosphate-mediated mechanisms and may have important implications regarding regulation of myocardial perfusion in deeper subendocardial layers.

Adenosine

Isolation and characterization of microvessels from normal brain and brain tumors.

We describe a new technique for isolating microvessels from both brain and brain tumors. This method is relatively quick and provides a microvessel preparation free of contamination by other brain tissue. Using this method, structurally intact microvessels from normal rat brain and from a malignant rat astrocytoma were isolated and characterized with light microscopy, scanning electron microscopy and transmission electron microscopy. In contrast to microvessels derived from normal rat brain, rat astrocytoma microvessels had endothelial cells with multilayered basement membranes, extensive microvilli on the cell surfaces, and a significant increase in the number of pinocytes in the cytoplasm. Furthermore, astrocytoma microvessel endothelial cells had pleomorphic electron dense nuclei with pale perichromatin, whereas the nuclei of endothelial cells of microvessels derived from normal brain tissue were finely granular and homogeneous with characteristically electron dense perichromatin. The morphologic characteristics of the astrocytoma microvessels are similar to the histologic changes seen in astrocytoma tissue in situ, and correlate well with the known altered functions of brain tumor neovasculature.

Animals

Identification of a stable fragment of the Alzheimer amyloid precursor containing the beta-protein in brain microvessels.

Altered proteolysis of the beta-amyloid precursor protein (beta APP) resulting in release of the approximately 40-residue amyloid beta-protein (A beta P) may be a seminal pathogenetic event in Alzheimer disease. Using region-specific beta APP antibodies, we searched for stable proteolytic intermediates containing the intact A beta P region in brain tissue. A 22-kDa beta APP fragment was selectively detected in microvessels purified from cerebral cortex and other brain regions. On immunoblots, the 22-kDa band is labeled by five distinct antisera to beta APP carboxyl-terminal peptides and by affinity-purified antibodies to the recombinant proteins beta APP444-592 and beta APP592-695, which flank the A beta P region. The protein is virtually undetectable in whole-brain homogenates or microvessel-free fractions of brain. The protein is extractable from microvessels in Triton X-100 and other detergents, indicating its membrane association. In comparison with cortical microvessels, microvessels purified from white matter, cerebellum, and nonneural tissues contain lower amounts of the 22-kDa protein. The protein is found in microvessels of both normal and Alzheimer disease brains and occurs in low amounts in microvessels from fresh bovine brain. The size and specific immunoreactivity of the 22-kDa protein indicate that it is a stable fragment of beta APP containing the intact A beta P. The occurrence of this potentially amyloidogenic intermediate in microvessels is consistent with a vascular or hematogenous origin for some A beta P deposits in Alzheimer disease.

Age Factors

Effects of oxygen tension on endothelium dependent responses in canine coronary microvessels.

STUDY OBJECTIVE: The aim was to determine the direct effects of oxygen tension on endothelium dependent vasodilator responses in canine coronary microvessels. DESIGN: Coronary microvessels were isolated and studied in vitro in a no flow constant pressure state using a video dimension analysing system. Microvessels were exposed to different partial pressures of oxygen. Endothelium dependent responses to acetylcholine and A23187 calcium ionophore were obtained with and without indomethacin during hyperoxia and normoxia, and compared to responses during hypoxia. Dose-response curves were also obtained to the direct smooth muscle dilator nitroprusside during normoxia and hypoxia. The reversibility of the effects of hypoxia on the acetylcholine response was studied after return to hyperoxic conditions following hypoxia. EXPERIMENTAL MATERIAL: Coronary microvessels (58-150 micron diameter) were obtained from adult mongrel dogs of either sex. MEASUREMENTS AND MAIN RESULTS: Exposure of preconstricted microvessels to hypoxia alone [PO2 5.8(0.4)kPa] resulted in a 25.9(SEM 6.8)% relaxation that was abolished by indomethacin [0.35(2.9)% relaxation]. Acetylcholine elicited dose dependent vasodilatation, with no significant differences in sensitivity between normoxia [PO2 14.6(0.04) kPa] and hypoxia: EC50 = 0.023 v 0.027 mumol.litre-1, respectively. During hyperoxia [PO2 80.2(6.0) kPa] there was a significant increase in the EC50 value to 0.09 mumol.litre-1 (hypoxia and normoxia v hyperoxia). After inhibition of prostaglandin synthesis with indomethacin, the sensitivity to acetylcholine was significantly decreased during hypoxia (EC50 = 0.16 mumol.litre-1) when compared to normoxia and hyperoxia. Indomethacin alone did not alter the acetylcholine response during normoxia and hyperoxia. As with acetylcholine, the sensitivity of indomethacin treated microvessels to A23187 was also decreased during hypoxia when compared to hyperoxia. There was no difference in the nitroprusside response during hypoxia and hyperoxia. The decreased vasodilator response to acetylcholine after hypoxia was persistent up to 2 h after return to hyperoxic conditions. CONCLUSIONS: Hypoxia decreases vasodilatation due to endothelium dependent relaxing factor, and oxygen tension has an important influence on both receptor dependent and receptor independent endothelium dependent vasodilator responses in coronary microvessels. Hypoxia also induces a prostaglandin mediated dilatation of preconstricted coronary microvessels. The effects of hypoxia on endothelium dependent responses are persistent up to 2 h.

Acetylcholine

Depolarization modulates endothelial cell calcium influx and microvessel permeability.

We investigated the mechanisms whereby high-potassium (57.9 mM) Ringer solutions attenuate the increase in permeability caused when microvessels are exposed to the calcium ionophores ionomycin and A23187 (5 microM). In single perfused microvessels we measured cytoplasmic calcium concentration, [Ca2+]i, in the cells forming the microvessel wall and the hydraulic conductivity, Lp, to follow changes in the permeability of the microvessel walls. In normal Ringer solution, [Ca2+]i was increased to an initial peak value of 226 +/- 12 nM after exposure to calcium ionophores; the corresponding increase in microvessel Lp was 10.3 +/- 2.6 times control. With high-potassium solutions, the peak value of [Ca2+]i was 133 +/- 12 nM and Lp was increased to only 2.5 +/- 0.7 times control. Increasing extracellular calcium from 1.1 to 5 mM with high potassium restored the initial peak value of [Ca2+]i to 303 +/- 38 nM. The increases in both [Ca2+]i and Lp were abolished in calcium-free solutions. If high-potassium solutions depolarize the cells forming the microvessel wall as indicated by the membrane potential-sensitive dye bisoxonol, then the magnitude of the initial increase in [Ca2+]i could be accounted for by changes in the electrochemical driving force through conductive channels for calcium ion. Our results conform to the hypothesis that the permeability properties of microvessels are modulated by changes in the membrane potential of the endothelial cells and/or pericytes forming the microvessel wall.

Animals

The effect of age on lipid composition and order of rat cerebral microvessels.

To determine if alterations in lipid composition and/or membrane order of cerebral microvessels may contribute to the age-related changes in blood-brain barrier (BBB) function, cerebral microvessels isolated from male Fischer 344 rats at 3 (young), 12 (intermediate age), and 24 (aged) months of age were studied. The steady state fluorescence polarization of diphenylhexatriene incorporated into isolated cerebral microvessel membranes at 35 degrees C, in aged rats was not different compared to young rats (0.2787 +/- 0.0029 vs 0.2847 +/- 0.0049). In addition, the thermotropic transition temperature of these membranes was not altered with age. Moreover, the fatty acid composition, the double bond index as well as cholesterol to phospholipid molar ratios were not significantly altered with age. In contrast, the concentration of conjugated dienes in lipid extracts of cerebral microvessels of aged rats (10.04 +/- 1.10 O.D./mg phospholipids) was significantly increased compared to the concentration in young rats (6.98 +/- 0.52 O.D./mg phospholipids) (p less than 0.01). It is concluded that aging is not associated with significant changes in lipid composition or membrane order of cerebral microvessels. However, the increased concentration of conjugated dienes in cerebral microvessels of aged rats is indicative on ongoing free radical damage in these microvessels which may contribute to the age-related changes in BBB function.

Aging

Serial reconstruction of beta-protein amyloid plaques: relationship to microvessels and size distribution.

The suggestion that the amyloid plaques in Alzheimer disease are formed by abnormal leakage from microvessels is mainly based on the finding that many plaques are topographically associated with microvessels. However, because the microvessel network is dense and amyloid plaques are numerous, the frequently observed association may result from chance contact, especially for larger plaques. Therefore, we determined the frequency of this association as a variable of plaque size. If all the amyloid plaques are associated with microvessels, a constant and high rate of association would be expected for all plaque sizes. On the other hand, if the association is a chance contact, larger plaques would show more frequent contact than smaller ones. Sections were double-immunostained for amyloid plaques and microvessels with antibodies raised against beta-protein and collagen type IV, respectively. Amyloid plaques were reconstructed using 12 serial sections (7 microns thick) from the entorhinal cortex of two Alzheimer patients. With reconstruction we determined the size distribution of amyloid plaques as well as the influence of size on vascular association. All the amyloid plaques larger than 42 microns were associated with microvessels, however, the smaller the amyloid plaques, the less frequently they were associated with microvessels. Interestingly, although diffuse amyloid plaques occur in all size classes, core-containing amyloid plaques have a more discrete size. We conclude that the topographical relationship between amyloid deposition and capillaries does not support the leakage theory for amyloid plaque formation.

Aged

Bradykinin receptors of cerebral microvessels stimulate phosphoinositide turnover.

We examined by ligand binding methods whether bradykinin (BK) receptors exist in rat and pig cerebral microvessels, and in the cerebral cortex from which the microvessels were isolated. We found a high-affinity and saturable BK receptor site in both rat and pig cerebral microvessels, but not in their cerebral cortex. The maximal density of binding and the dissociation constant were 8.0 +/- 4.1 and 6.8 +/- 1.5 fmol/mg of protein and 47 +/- 24 and 150 +/- 8 pM (mean +/- SD) in cerebral microvessels of the pig and rat, respectively. The high-affinity specific binding of BK was effectively displaced by des-Arg0[Hyp3-Thi5-8,D-Phe7]BK, a specific B2 receptor antagonist, but not by des-Arg9[Leu8]BK, a specific B1 antagonist. We also demonstrated that BK increases phosphatidylinositol hydrolysis in cerebral microvessels of the rat and pig. This effect was also blocked by the B2, but not by the B1, antagonist. Increased phosphatidylinositol hydrolysis was manifested by a rapid transient increase in inositol trisphosphate and the later slow accumulation of inositol bisphosphate and inositol monophosphate. Preincubation of microvessels with phorbol ester, stable GTP analogs, pertussis toxin, or in Ca(2+)-free buffer did not influence BK activation of phosphatidylinositol hydrolysis. These results demonstrate the existence of BK receptors of the B2 subtype in brain microvessels, which may play an important role in modulation of the brain microcirculation, probably via increased phosphoinositide turnover.

Animals

A method for measuring the rate of oxygen release from single microvessels.

A system determining the rate of oxygen release from erythrocytes flowing in single microvessels was constructed with an inverted microscope by connecting 1) a scanning/grating spectrophotometer equipped with a photon-counting detector through a thin light guide, to obtain the visible absorption spectrum of a spot (5 microns in diameter) focused on a microvessel, 2) two photomultipliers (connected to a microcomputer via an analog-to-digital converter) through two light guides, to determine the flow velocity of erythrocytes by calculating the cross correlation between the light-intensity changes of two spots (3 microns in diameter, 5 microns apart from each other) focused on the microvessel, and 3) an image processor through a video camera, to estimate the diameter of microvessel from the digitized video images. The rate of oxygen release from single microvessels 7-25 microns in diameter in rat mesentery was measured under the superfusion of deoxygenated solution: 1) The maximal rate was obtained in capillaries, and the rate in arterial microvessels was larger than that in venous microvessels, when similar diameters were compared. 2) The rate was maximum at pH 7.0-7.2, and it decreased in more acidic and alkaline pH values. 3) The rate decreased with a decrease in temperature. The reliability of the measurement using the present apparatus was tested in detail.

Animals

Effects of alpha and beta adrenergic blockade on coronary arterial microvessels in the beating canine heart.

OBJECTIVE: The aim was to clarify the effects of alpha and beta adrenergic blockade on coronary arterial microvessels and to assess the role of alpha and beta adrenergic tone in normally beating hearts. METHODS: 47 anaesthetised open chest dogs were studied. The diameters of epicardial arterial microvessels were measured in beating hearts using an incident light fluorescence microscope equipped with a floating objective. Drugs were infused into the left anterior descending coronary artery keeping the heart rate and aortic pressure at control levels. To examine the effect of alpha adrenergic blockade, phentolamine (100 micrograms.kg-1) was given in the absence or presence of beta adrenergic blockade (propranolol 50 micrograms.kg-1). To examine the effect of beta adrenergic blockade, propranolol (50 micrograms.kg-1) or three doses of ICI 118,551 (a selective beta 2 antagonist, 0.1, 0.5, and 1.0 microgram.kg-1.min-1) was given. RESULTS: Coronary arterial microvessels were divided into three groups according to the control diameters (D) of small (D less than 100 microns), medium (100 less than or equal to D less than 200 microns) and large (D greater than or equal to 200 microns) groups. In the absence of beta adrenergic blockade, phentolamine significantly dilated all vessel groups: small +19.6 (SEM 5.6)%, medium +5.8(2.3)%, large +5.3(0.9)%. In the presence of beta adrenergic blockade, the vasodilator effect of phentolamine was completely abolished. Propranolol constricted all vessel groups: small -3.6(1.1)%, medium -4.8(1.0)%, large -3.5(1.0)%. ICI 118,551 significantly constricted the large vessel group [-2.5(0.6)%] at the mid dose, and the medium and large vessel groups [medium -3.1(0.8)%, large -3.5(1.3)%] at the highest dose. CONCLUSIONS: These data indicate that (1) the vasodilator effect of phentolamine is induced by beta adrenergic stimulation; (2) resting alpha adrenergic tone of coronary arterial microvessels is minimal in normally beating hearts, and (3) resting beta adrenergic tone may play a physiological role in coronary arterial microvessels, and beta 2 adrenergic tone predominates in arterial microvessels greater than 100 microns in diameter.

Adrenergic alpha-Antagonists

Modulation of venular microvessel permeability by calcium influx into endothelial cells.

It has been proposed that calcium ion influx into endothelial cells modulates the permeability of venular microvessels via a calcium-dependent contractile process. The results of recent investigations using permeabilized endothelial cell monolayers conform to this hypothesis by demonstrating a calcium-dependent interaction of endothelial actin and myosin during the retraction of adjacent endothelial cells exposed to inflammatory agents. Little is known about the pathway for calcium influx into endothelial cells after exposure to mediators of inflammation, but evidence suggests that the properties of the calcium entry pathways are similar to the calcium entry pathways that regulate the release of endothelium-derived relaxing factor (EDRF). Substances that stimulate EDRF release from arterial endothelium also increase venular microvessel permeability. Recently developed methods to measure cytoplasmic calcium concentration in the endothelial cells forming the walls of individually perfused microvessels enable a direct investigation of the modulation of the permeability of venular microvessels by calcium influx. These experiments demonstrate that the magnitude of the initial increase in the permeability of microvessels after exposure to an agent that increases permeability, such as a calcium ionophore, is determined by the magnitude of calcium ion influx into the endothelial cells. Furthermore, the magnitude of the calcium influx into endothelial cells is modulated by the membrane potential of the endothelial cells. Depolarization of the endothelial cell membrane reduces calcium influx and attenuates increases in permeability whereas hyperpolarization of the endothelial membrane increases calcium influx and potentiates increases in permeability. These data conform to the hypothesis that a passive conductance channel for calcium is a major pathway for calcium ion flux responsible to eliciting an increase in the permeability of the endothelial barrier in microvessels.

Animals