PubMed HealthSearch

Biomedical subjects

M Simionescu

Publications and source records attributed to M Simionescu.

At least 37 records · Page 2Linked to original sources

Fatty acids binding to albumin increases its uptake and transcytosis by the lung capillary endothelium.

To determine whether uptake and transcytosis of albumin (A) in continuous capillary endothelia are modified when this protein carries fatty acids, the transport of albumin-oleic acid and albumin-palmitic acid complexes was compared with that of defatted albumin. The probes, either radioiodinated or tagged with 5-nm gold particles (Au), or both, were perfused in situ or injected in vivo; after 3 or 30 min lung fragments were radioassayed or examined by electron microscopy. Both in situ and in vivo, the uptake of fatty acid-carrying albumin (A-FA) was consistently 2 to 3 times higher than that of defatted A. Electron microscopy revealed that A-FA complexes tagged with gold were taken up and transported across the endothelium by plasmalemmal vesicles. Morphometric analysis showed that as compared with A-Au, at 3 min the density of (A-FA)Au bound to plasmalemmal vesicles was 2 to 3 times higher, and the extent of transcytosis was increased. Uptake of the iodinated albumin was more effectively competed by A-FA complexes than by defatted A, suggesting a higher affinity of the former for the albumin binding sites of the endothelium. The results indicate that when carrying fatty acids, albumin is taken up specifically and with high affinity by the capillary endothelium, a process that may play a role in the transport of fatty acids from the plasma to the cells where they are metabolized.

Albumins

The cerebral microvasculature of the rat: structure and luminal surface properties during early development.

The development of the cerebral microvasculature of the rat was studied during three successive postnatal periods, namely: 1) neonatal period, i.e., 1 to 9 days after birth (capillary sprouting period); 2) myelinization period, i.e., 10 to 20 days; and 3) young adult period, i.e., 2 to 3 months. The survey covered structural aspects and distribution of binding sites for anionic or cationic probes and for albumin-gold complexes on the luminal surface of the microvascular endothelium. The salient results are: a) an extensive development of the endoplasmic reticulum of endothelial cells during the first period (presumably in relation with the production of basement membrane components); b) the high surface density of coated pits and coated vesicles that peaks during the myelinization period; c) the paucity of plasmalemmal vesicle and their differential distribution (their volume density is higher in the endothelium of arterioles than in that of capillaries and venules); d) the existence of an extensive smooth surface tubular system in the cytoplasm of endothelial cells, whose structural connections and functional significance remains to be established; and e) the presence of pericytes with elaborate interactions with endothelia in the early developmental periods. Labeling by perfused tracers indicates an uneven patchy distribution of binding sites for cationic ferritin (generally limited to the plasmalemma proper) and a more even distribution of binding sites for cationic and anionic hemeundecapeptides. Binding patterns did not change during the developmental periods studied. No binding sites were detected for albumin-gold complexes.

Animals

Cellular events in the development of valvular atherosclerotic lesions induced by experimental hypercholesterolemia.

The onset and evolution of ultrastructural changes in the cardiac valves induced by a cholesterol-rich diet were investigated in rabbit and hamster. In both animal models, the atrioventricular and sigmoid valves were comparably affected by lesions intermediary between fatty streak and fibrous plaque. The earliest detectable modification was the progressive accumulation in the subendothelium of extracellular liposome-like structures rich in unesterified cholesterol, associated with the proliferation of a basal lamina-like material. This was followed by the diapedesis of blood monocytes in the same location, which became macrophages increasingly loaded with lipid deposits. Resident interstitial cells accumulate lipids, as well. In advanced stages, the macrophage-derived foam cells clustered, deforming the valve leaflets. The resident macrophages accumulated lipids later and more slowly, while partly preserving their ultrastructure. The advanced lesions are characterized by marked stromal proliferation, massive intra- and extracellular deposition of lipids and cholesterol crystals and the appearance of a necrotic core. The salient findings of these studies were: (1) the appearance of extracellular liposomes as the earliest event in atherogenesis; (2) the capability of the valvular interstitial cells to accumulate lipids; and (3) the slow response of resident macrophages to the cholesterol-rich diet. The results revealed that hypercholesterolemia produces in the cardiac valves atherosclerotic lesions of an intermediate type, which can deform the leaflets thus altering their normal function.

Animals

Immunological detection of an analogue of the erythroid protein 4.1 in endothelial cells.

Endothelial cells (EC) of arterial and venous origin were investigated by indirect immunofluorescence and immunoautoradiography for the presence of red cell membrane 4.1-like protein. By immunofluorescence, EC exhibited a relatively uniform fluorescent staining sometimes of a reticular pattern, distributed over the entire cell. All controls were negative. Immunoblot analysis of EC revealed a cross reactive band of a molecular weight comparable to that of the erythrocyte band 4.1. These findings indicate that endothelial cells of arterial and venous origin express a polypeptide immunologically related to the erythrocyte protein 4.1, which may play an important role in membrane-cytoskeleton interactions.

Animals

Specific binding sites for albumin restricted to plasmalemmal vesicles of continuous capillary endothelium: receptor-mediated transcytosis.

The interaction of homologous and heterologous albumin-gold complex (Alb-Au) with capillary endothelium was investigated in the mouse lung, heart, and diaphragm. Perfusion of the tracer in situ for from 3 to 35 min was followed by washing with phosphate-buffered saline, fixation by perfusion, and processing for electron microscopy. From the earliest time examined, one and sometimes two rows of densely packed particles bound to some restricted plasma membrane microdomains that appeared as uncoated pits, and to plasmalemmal vesicles open on the luminal front. Morphometric analysis, using various albumin-gold concentrations, showed that the binding is saturable at a very low concentration of the ligand and short exposure. After 5 min, tracer-carrying vesicles appeared on the abluminal front, discharging their content into the subendothelial space. As a function of tracer concentration 1-10% of plasmalemmal vesicles contained Alb-Au particles in fluid phase; from 5 min on, multivesicular bodies were labeled by the tracer. Plasma membrane, coated pits, and coated vesicles were not significantly marked at any time interval. Heparin or high ionic strength did not displace the bound Alb-Au from vesicle membrane. No binding was obtained when Alb-Au was competed in situ with albumin or was injected in vivo. Gold complexes with fibrinogen, fibronectin, glucose oxidase, or polyethyleneglycol did not give a labeling comparable to that of albumin. These results suggest that on the capillary endothelia examined, the Alb-Au is adsorbed on specific binding sites restricted to uncoated pits and plasmalemmal vesicles. The tracer is transported in transcytotic vesicles across endothelium by receptor-mediated transcytosis, and to a lesser extent is taken up by pinocytotic vesicles. The existence of albumin receptors on these continuous capillary endothelia may provide a specific mechanism for the transport of albumin and other molecules carried by this protein.

Animals

Endothelial cells express a spectrin-like cytoskeletal protein.

Vascular endothelium was investigated by indirect immunofluorescence and immunoautoradiography for the possible presence of spectrin-like molecules. Antibodies were raised against electrophoretically purified rat, rabbit, and bovine red blood cell spectrin and against rabbit brain fodrin. Antibody specificity was assessed by immunoblotting and double-diffusion technique. Homogenates of endothelial cells freshly isolated from heart microvasculature or aorta, as well as cultured aortic endothelial cells, were analyzed by gel electrophoresis. Immunoautoradiograms of gels incubated with spectrin specific antibody, followed by radio-labeled protein A, revealed two bands of electrophoretic mobility similar to that of the alpha- and beta-subunits of spectrin. Indirect immunofluorescence of endothelial cells, both in situ and in vitro, showed the existence of a protein which cross-reacted with the antibodies against spectrin and fodrin. Controls, in which endothelial cells were exposed to spectrin antibody absorbed with pure spectrin or preimmune serum, were negative. These findings indicate that endothelial cells express a protein antigenically related to the spectrin family; both spectrin- and fodrin-like molecules, in various proportions, may coexist. In the endothelial cell, these proteins may play an important role in modulation of the cytoskeleton in response to various stimuli, and in maintaining the biochemically differentiated microdomains of plasmalemma.

Animals

Interstitial cells of the heart valves possess characteristics similar to smooth muscle cells.

Interstitial cells of heart atrioventricular and sigmoid valves were examined in several laboratory animals (rabbit, hamster, rat, and mouse) and in humans. These cells constitute a large fraction of the total cell population of the valve; in mouse atrioventricular valves, they amount to approximately 30% of the volumetric density. By their ultrastructural features and functional properties, valvular interstitial cells are intermediate between fibroblasts and vascular smooth muscle cells. Like fibroblasts, valvular interstitial cells lack a basal lamina establishing direct and extensive contacts with collagen fibers, elastin microfibrils, and proteoglycans of the matrix. The cells have numerous slender and long processes, connected to one another, forming a complex cellular framework spanning the entire valve. Similar to smooth muscle cells, valvular interstitial cells are extensively coupled by communicating junctions as shown by thin sections, freeze-fracture, lanthanum staining, and carboxyfluorescein microinjection. The cells contain numerous bundles of actin filaments, which are decorated by the S1 fragment of heavy meromyosin. Valvular interstitial cells also express cyclic guanosine-monophosphate-dependent protein kinase, as detected by immunofluorescence and immunoperoxidase histochemistry. Motor nerve endings are located closely apposed to valvular interstitial cells: structurally most of them appear to be of the adrenergic type. Valvular interstitial cells contract on epinephrine or angiotensin II stimulation as shown both in culture and in situ (valvular strips). Taken together these observations suggest that VIC may have contractile properties, which can account for a controlled tonus, actively correlated with the cyclically changing forces acting on valves during diastole and systole.

Actin Cytoskeleton

Uptake of low density lipoproteins by the hamster lung. Interactions with capillary endothelium.

The mechanism by which the circulating low density lipoproteins (LDL) contribute to the lung surfactant cholesterol was investigated by perfusing the hamster lung in situ with LDL either radiolabeled or coupled to gold, or both. Part of [125I]-LDL and [3H]-cholesterol LDL were taken up by a specific process which was time- and concentration-dependent and reached saturation within 20 to 30 min of perfusion. Competition experiments and removal of receptor-bound LDL by heparin suggested that about 50% of LDL uptake is receptor-independent. Experiments using double labeled LDL showed a preferential uptake of 3H-cholesterol versus 125I by the lung both in situ and in vivo. LDL-gold particles (LDL-Au), recirculated through the isolated lung, bound to the endothelial luminal plasma membrane and to features potentially involved in receptor-mediated endocytosis (coated pits, coated vesicles, lysosomelike structures) and in transcytosis (plasmalemmal vesicles). The results suggest that LDL uptake by the lung takes place by both receptor-mediated and receptor-independent mechanisms. Cholesterol may be in part transferred to the lung without the apoprotein moiety; the alveolar capillary endothelium appears to be the first monitor of this complex process.

Animals

Prelesional events in atherogenesis. Accumulation of extracellular cholesterol-rich liposomes in the arterial intima and cardiac valves of the hyperlipidemic rabbit.

Biochemical, physiologic, and ultrastructural modifications which appear in the aortic intima and atrioventricular valves before monocyte diapedesis and foam cell formation were investigated in rabbits fed a cholesterol-rich diet. In the first 2 weeks of the diet, while plasma beta-VLDL cholesterol was increased up to 15-fold, the intima showed an enhanced uptake and deposition of dietary 3H-cholesterol, 125I-beta-VLDL, and the fluorescent beta-VLDL-1,1'-dioctadecyl-3,3,3',3'-tetramethylindocarbocyanine conjugate. beta-VLDL-gold complex perfused in situ was transcytosed across endothelium by plasmalemmal vesicles. Concomitantly, within the intima, a progressive accumulation of extracellular densely packed uni- or multilamellar vesicles took place. These commonly occurred in cell-free subendothelial spaces and were not associated with any sign of cytolysis. In freeze-fracture preparations, these vesicles appeared as smooth surfaces, suggesting the absence of translamellar proteins. Upon incubation with filipin, these extracellular liposomes (EL) displayed characteristic approximately 20 nm filipin-sterol complexes, revealing the presence of preparations unesterified cholesterol in the phospholipid lamellas. EL deposition was paralleled by proliferation of basal lamina-like material, microfibrils, and proteoglycans, and continued to increase during foam cell formation. For the entire period of our experiments, the endothelium was morphologically intact, and no platelet involvement was detected. The results show that an early prelesional ultrastructural change in lesion-prone aortic and valvular areas is the accumulation of extracellular phospholipid liposomes rich in unesterified cholesterol.

Animals

Interactions of endogenous lipoproteins with capillary endothelium in spontaneously hyperlipoproteinemic rats.

In spontaneously hyperlipoproteinemic old Sprague-Dawley rats, endogenous lipoproteins (LP) in the size range of 15 to 40 nm were directly visualized within the blood vessels due to specimen mordanting with tannic acid. LP morphometric analysis at the level of the endothelium of diaphragm capillaries revealed that particles of the dimensions of low-density lipoproteins, high-density lipoproteins (HDL1), and very low density lipoproteins occur in endothelial structures involved in receptor-mediated endocytosis coated pits-vesicles, endosomes, lysosomes) and transcytosis (plasmalemmal vesicles and transendothelial channels). No such particles could be detected in the intercellular junctions. Intravenously injected cationized ferritin (CF) of pI 8.4 bound uniformly to LP forming an CF-LP complex. Examined at 5, 20, and 60 min after CF administration, the CF-LP complex was found to be taken up by endothelium only by endocytosis (adsorptive via coated pits-vesicles, and fluid phase through a fraction of plasmalemmal vesicles). CF-LP complexes are progressively accumulated within lysosomes. These findings reveal the importance of the net surface charge of macromolecular complexes for their intracellular sorting and fate.

Animals

Differentiated microdomains of the luminal plasmalemma of murine muscle capillaries: segmental variations in young and old animals.

We investigated the luminal surface of the continuous endothelium of the microvasculature of the murine heart and diaphragm to find out whether it has differentiated microdomains. The probes were ferritin molecules, cationized to pI's 6.8, 7.15, 7.6, 8.0 and 8.4, which were introduced by retrograde or anterograde perfusion through the aorta or vena cava after the blood was removed from the vasculature. The pattern of labeling was analyzed by electron microscopy and assessed quantitatively by morphometry in arterioles, capillaries, and venules identified in bipolar microvascular fields in the diaphragm. The results showed that the plasmalemma proper was heavily but discontinuously labeled by all cationized ferritins (CF) used, the labeling being less extensive on the venular endothelium. CF had access as individual molecules to a fraction of the vesicular population opened on the luminal front of the endothelium. Plasmalemmal vesicle labeling increased from approximately 10 to approximately 25% as the pI decreased from 8.4 to 6.8. Vesicle labeling also increased with CF concentration in the perfusate. All CF binding sites were removed by pronase and papain. Heparinase and heparitinase caused only a slight reduction in CF labeling. Neuraminidase decreased the extent and density of labeling, especially on the plasmalemma proper of the venular endothelium; this decrease was particularly pronounced in old animals.

Aging

Organization of the intercellular junctions in the endothelium of cardiac valves.

The intramembranous organization of valvular endothelial cells and the structure of their intercellular junctions were studied using both thin section and freeze fracture electron microscopy. Using the double replica method, large areas of fractured endothelial cell plasma membrane are exposed. On both faces, the intramembranous particles are randomly distributed, but they are 2-3 times more frequent on the P face than on the E face: on the former, their number varies from 340 to 1700 particles/micron 2. The density of vesicular openings seems to be slightly higher on the tissue front (29-43 openings/micron 2) than on the blood front (24-34 openings/micron 2). The vesicular stomata are absent in parajunctional areas. The intercellular junction structure appears as a variation to that described for arteries. The occluding junctions appear as a network of 1-6 (most frequently 3-4) interconnected ridges on P faces or grooves on E faces. Occasionally, the presence of strands formed by association of short bars can be observed on the P face ridge. In addition, there are a small number of occluding junctions with low profile ridges, free or marked by few particles, similar to those described for the venules. These junctions are probably involved in the inflammatory reaction occurring during clinically manifested valvular disease. The communicating (gap) junctions, small or large, are free, partially or completely associated. In all valves examined we observed a special kind of communicating junction the particles of which are disposed in 1-4 rows, forming branched or circular patterns. Intracellular injection of 6-carboxyfluorescein shows transfer of the dye to the neighboring cell, suggesting that the cells are coupled. In both atrioventricular and sigmoid valves, the endothelial junctions have a similar pattern with some differences in the degree of complexity. The ventricular aspect of the valves contains junctions with a larger number of junctional strands than the atrial or arterial aspect. This suggests a possible relationship between the number of strands and the stress factors (i.e. blood hydrostatic pressure). The presence of functionally communicating junctions of various dimensions and shapes suggests that the endothelial cells of valvular endocardium are metabolically coupled. At short exposure times (5-10 min), filipin-incubated valves exhibit characteristic filipin-sterol complexes (FSC) around the vesicular stomata of the endothelium. After a longer exposure (30-90 min) FSC labeled randomly the rest of plasma membrane except for coated pits, gap junction regions and area boundering tight junctional strands.

Animals

Partial chemical characterization of the anionic sites in the basal lamina of fenestrated capillaries.

The distribution of anionic sites in the basal laminae of the blood capillaries of the murine pancreas was studied in specimens fixed in ruthenium red (RR)-glutaraldehyde mixtures. The sites appeared as discrete, small (6 to 18 nm) particles distributed throughout the three laminae but concentrated primarily in the lamina rara externa, in which--spaced 80-100 nm apart--they formed a planar, partially ordered lattice comparable to that revealed by cationized ferritin in previous studies (M. Simionescu, N. Simionescu, and G. E. Palade, 1982, J. Cell Biol. 95, 425-434). The chemical nature of the anionic sites was explored by incubating fresh tissue specimens in solutions of selected enzymes before fixation in RR-glutaraldehyde mixtures. Pronase P and papain removed completely the anionic sites and left behind an extensively degraded and disorganized basal lamina. Trypsin caused the removal of anionic sites only, did not degrade the rest of the basal lamina, but detached it completely from the endothelium. Chondroitinase ABC reduced slightly the size and the surface density of RR-stainable particles, and detached focally the rest of the basal lamina from the endothelium and pericytes. Crude heparinase caused a nearly complete removal of anionic sites, and pure heparitinase gave comparable but less extensive results. Similar effects were recorded on the basal laminae of smooth muscle fibers and pancreatic acini and ducts. The results indicate that the anionic sites of all basal laminae examined are contributed primarily by heparin sulfate proteoglycans and trace amounts of chondroitin sulfate proteoglycans.

Animals

Differentiated distribution of the cell surface charge on the alveolar-capillary unit. Characteristic paucity of anionic sites on the air-blood barrier.

The distribution of the surface charge on the cells which constitute the air-blood barrier was investigated by perfusing cationized ferritin (CF) into the vasculature or into the airways of the mouse lung. Binding of CF is selective and defines highly differentiated domains. The most salient finding is that the air-blood barrier proper that includes type I epithelial cell and part of the corresponding avesicular area of the endothelial cell has very few or lacks anionic sites. In the vesicular area of endothelial cells the plasma membrane binds CF homogenously, with the exception of the membrane of plasmalemmal vesicles and transendothelial channels and their associated diaphragms. In contradistinction to the luminal surface of the type I epithelial cell, which is virtually devoid of anionic sites, CF decorates heavily the luminal surface of type II epithelial cells, up to the level of the junction with type I epithelial cells. Extruded lamellar bodies and tubular myelin also binds CF, presumably due to the phosphate groups of the dipalmitoyl phosphatidylcholine. The cell surface of the alveolar macrophages has relatively few binding sites for CF, but significant internalization of the latter occurs at early time intervals. The preferential distribution of anionic sites on cell surfaces of the alveolar-capillary unit may be influential in the transport of molecules and gases across various regions of the air-blood barrier.

Animals

Visualization of the binding, endocytosis, and transcytosis of low-density lipoprotein in the arterial endothelium in situ.

We investigated the interaction and transport of low-density lipoprotein (LDL) through the arterial endothelium in rat aorta and coronary artery, by perfusing in situ native, untagged human, and rat LDL. The latter was rendered electron-opaque after it interacted with the endothelial cell and was subsequently fixed within tissue. We achieved LDL electron-opacity by an improved fixation procedure using 3,3'-diaminobenzidine, and mordanting with tannic acid. The unequivocal identification of LDL was implemented by reacting immunocytochemically the perfused LDL with anti LDL-horseradish peroxidase conjugate. Results indicate that LDL is taken up and internalized through two parallel compartmented routes. (a) A relatively small amount of LDL is taken up by endocytosis via: (i) a receptor-mediated process (adsorptive endocytosis) that involved coated pits/vesicles, and endosomes, and, probably, (ii) a receptor-independent process (fluid endocytosis) carried out by a fraction of plasmalemmal vesicles. Both mechanisms bringing LDL to lysosomes supply cholesterol to the endothelial cell itself. (b) Most circulating LDL is transported across the endothelial cell by transcytosis via plasmalemmal vesicles which deliver LDL to the other cells of the vessel wall. Endocytosis is not enhanced by increasing LDL concentration, but the receptor-mediated internalization decreases at low temperature. Transcytosis is less modified by low temperature but is remarkably augmented at high concentration of LDL. While the endocytosis of homologous (rat) LDL is markedly more pronounced than that of heterologous (human) LDL, both types of LDL are similarly transported by transcytosis. These results indicate that the arterial endothelium possesses a dual mechanism for handling circulating LDL: by a high affinity process, endocytosis secures the endothelial cells' need for cholesterol; by a low-affinity nonsaturable uptake process, transcytosis supplies cholesterol to the other cells of the vascular wall, and can monitor an excessive accumulation of plasma LDL. Since in most of our experiments we used LDL concentrations above those found in normal rats, we presume that at low LDL concentrations saturable high-affinity uptake would be enhanced in relation to nonsaturable pathways.

Animals

Rings of membrane sterols surround the openings of vesicles and fenestrae, in capillary endothelium.

We investigated the distribution of sterols in the cell membrane of microvascular endothelium (mouse pancreas, diaphragm, brain, heart, lung, kidney, thyroid, adrenal, and liver) with the polyene antibiotic filipin, which reportedly has binding specificity for free 3-beta-hydroxysterols. In some experiments, concomitantly, cell-surface anionic sites were detected with cationized ferritin. Vessels were perfused in situ with PBS, followed by light fixation and filipin administration for 10 to 60 min. Tissues were further processed for thin-section and freeze-fracture electron microscopy. Short exposure (10 min) to filipin-glutaraldehyde solution resulted in the initial appearance, on many areas, of rings of characteristic filipin-sterol complexes within the rim surrounding stomata of most plasmalemmal vesicles, transendothelial channels, and fenestrae. Such rings were absent from the rims of the large openings of the sinusoid endothelium (liver, adrenal), coated pits and phagocytic vacuoles. After longer exposure (30-60 min), filipin-sterol complexes labeled randomly the rest of plasma membrane (except for coated pits, and partially the interstrand areas of junctions), and also marked most plasmalemmal vesicles. These peristomal rings of sterols were displayed mostly on the P face, and, at their full development, consisted of 6-8 units around a vesicle stoma, and 10-12 units around a fenestra. At their level, the intramembranous particles and the cell surface anionic sites were virtually excluded. Peristomal rings of sterols were also detected on the plasma membrane of pericytes and smooth muscle cells of the microvascular wall, which otherwise were poorly labeled with filipin-sterol complexes as compared to endothelial plasmalemma. It is presumed that the peristomal rings of cholesterol may represent important contributors to the local transient stabilization of plasma membrane and to the phase separation between cell membrane and vesicle membrane at a certain stage of their fusion/fission process.

Animals