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The blood-brain barrier of the rat choroid plexus.

Following intravenous injection, cytochrome c traverses the capillary endothelium of the rat choroid plexus and permeates the perivascular space and the extracellular space between epithelial cells. The tracer is incorporated into pinocytotic vesicles adjacent to the lateral and basal plasmalemmas. Thereafter, cytochrome c is incorporated into multivesicular and dense bodies. Tracerladen vesicles were not found to fuse with the apical plasmalemma and cytochrome c was not discharged into the cerebral ventricles. Acid phosphatase activity of the choroidal epithelium after the administration of cytochrome c was greatly increased and localized in the same intracellular sites shown for cytochrome c. These data suggest that cytochrome c and possibly other proteins that penetrate the choroidal stroma are taken up by the choroidal epithelium and subsequently degraded in lysosomal vesicles. This heterolytic mechanism may be an important means for preventing the entry of certain substances such as proteins into CSF and subsequently into nervous tissue.

Acid Phosphatase↗

Quantitative analysis of extracellular-superoxide dismutase in serum and urine by ELISA with monoclonal antibody.

The superoxide anion has been implicated in a wide range of diseases. The major protector against superoxide anion in the extracellular space is extracellular-superoxide dismutase (EC-SOD). EC-SOD is the major SOD isozyme in plasma and forms an equilibrium between the plasma phase and heparan sulfate proteoglycan on the surface of the endothelium. An ELISA method for the measurement of human EC-SOD with monoclonal antibody was established. The proposed method had a high sensitivity (assay range, 0.05-50 ng/ml), good recovery (recovery percentage, 96.9 +/- 5.6%) and reproducibility (within-day assay, C.V. = 8.6-10.2%; between-day assay, C.V. = 6.5-11.7%). EC-SOD levels in sera from healthy persons are clearly divided into two groups: a lower group (Group I, below 120 ng/ml, n = 146) and higher group (Group II, above 400 ng/ml, n = 10). The EC-SOD in Group I were almost normally distributed and the mean level was 55.8 +/- 18.8 ng/ml. The serum EC-SOD level assayed by ELISA correlated well with serum SOD activity. The serum EC-SOD in Group I is heterogeneous with regard to affinity for heparin-Sepharose and could be separated into three approximately equal fractions, whereas the EC-SOD in Group II is mainly one fraction with a high affinity for the column. The apparent molecular weight and carbohydrate structure of serum EC-SOD in Group II are identical to those in Group I. The high EC-SOD level in sera from some individuals may reflect the excessive stimulation of EC-SOD synthesis in vivo or the growth of selected cells in vivo, because EC-SOD is known to be expressed by a few cell types in vivo as a high-heparin-affinity subtype.

Adolescent↗

31P and 23Na NMR spectroscopy of normal and ischemic rat skeletal muscle. Use of a shift reagent in vivo.

23Na NMR spectroscopy was used 1, to define the distribution of the shift reagent for cations, triethylenetetraminehexaacetatedysprosium(III), DyTTHA3-, in the living rat; 2, to define the characteristics of the Na resonances reporting intra- and extracellular Na+ in skeletal muscle in vivo; and 3, to calculate the Na+ concentrations in the intra- and extracellular spaces of the gastrocnemius muscle during well-perfused and ischemic conditions. The concentration of DyTTHA3- infused intravenously into the jugular vein of the living rat reached a maximum value of 8-9 mM in the extracellular space of the muscle after ca 40 min of infusion. This allowed excellent discrimination of extra- and intracellular Na signals (Nao and Nai, respectively) and did not spoil the resolution of concurrent 31P NMR spectra. Infusion of shift reagent changed neither hemodynamic performance of the rat nor the high-energy phosphate content of skeletal muscle. Shift reagent enters ca 15% (v/w) of the rat body weight; this corresponds to almost all of the "fast" or rapidly permeable extracellular space. It is excreted from the body with a pseudo-first order rate constant of 0.0158 min-1. In resting muscle, we estimate that [Na+]i is 3-5 mM and, in muscle perfused with the sodium salt of the shift reagent, that [Na+]o in the fast exchangeable extracellular space is 166 mM. During 11 h of ischemia at 37 degrees C, the area of the Nai+ signal area monotonically increased sixfold. Based on estimates for maximum changes in fluid shifts reported by the decrease in the area of the Nao signal area, we calculate that the lower limit for [Na+]i after 11 h of ischemia is 27 mM. The NMR-visibility factors for the extracellular and intracellular Na+ signals are essentially the same. This study demonstrates that the shift reagent DyTTHA3- is acutely non-toxic and that the 23Na NMR spectra obtained can be used to quantitate [Na+]o and [Na+]i in tissues in vivo. Using this technique, we found that the transmembrane sodium gradient fell from ca 35 in well-perfused skeletal muscle to less than 6 during prolonged ischemia.

Animals↗

Unit membrane parameters of electrically syncytial tissues.

A change in the holding voltage, exposure to channel-blocking agents, and similar interventions will induce changes in the membrane properties of electrically syncytial tissues. The altered membrane characteristics will produce changes in the input resistance (RIN) and the phase angle (phi) of the complex admittance of the whole preparation. Exact geometry-independent formulas are derived that give the intervention-induced changes in the membrane capacitance and conductance in terms of the measured changes in RIN and phi. The formulas automatically account for the effects of extracellular resistance in tissues such as skeletal muscle fibers, cardiac Purkinje fibers, and small cardiac "aggregates." The size, shape, and resistance of the extracellular space may be arbitrary and need not be measured. The surface (invaginated) membranes, which face the bath (extracellular space), are assumed to be characterized by an RC circuit with specific capacity Cme (Cmi) and specific conductivity gme (gmi). It is assumed that the intracellular voltage gradient between the electrodes and the membranes is negligible or reliably calculable. The intervention is assumed to leave the geometry and resistivity of the extracellular space unchanged. Under these circumstances the intervention-induced changes in Cme, Cmi, gme, and gmi are determined exactly in terms of the corresponding changes in RIN and certain frequency domain integrals over phi. The technique is illustrated by synthetic data for RIN and phi generated by the "disk" model of a skeletal muscle fiber in which Cme and Cmi depend upon holding voltage. The corresponding voltage dependence of RIN and phi is successfully "inverted" to expose the underlying voltage dependence of Cme and Cmi. These computations suggest that the formulas for Cme and Cmi will be useful in realistic situations, since they are not too sensitive to experimental error in the data for RIN and phi. This method makes it possible to detect voltage-dependent capacity changes due to unit membrane processes (e.g., charge movement) as long as the intrinsic time constant of that process is very small (e.g., less than 1/30 ms). As a second example I consider a disk model that is exposed to increasing concentrations of a channel-blocking agent. The drug dependence of RIN and phi is used to calculate the drug dependence of the total membrane conductivity (the sum of gme and gmi, weighted by the areas of surface and invaginated membranes, respectively).

Cell Membrane↗

Dendritic spikes and their influence on extracellular calcium signaling.

Extracellular calcium is critical for many neural functions, including neurotransmission, cell adhesion, and neural plasticity. Experiments have shown that normal neural activity is associated with changes in extracellular calcium, which has motivated recent computational work that employs such fluctuations in an information-bearing role. This possibility suggests that a new style of computing is taking place in the mammalian brain in addition to current 'circuit' models that use only neurons and connections. Previous computational models of rapid external calcium changes used only rough approximations of calcium channel dynamics to compute the expected calcium decrements in the extracellular space. Using realistic calcium channel models, experimentally measured back-propagating action potentials, and a model of the extracellular space, we computed the fluctuations in external calcium that accrue during neural activity. In this realistic setting, we showed that rapid, significant changes in local external calcium can occur when dendrites are invaded by back-propagating spikes, even in the presence of an extracellular calcium buffer. We further showed how different geometric arrangements of calcium channels or dendrites prolong or amplify these fluctuations. Finally, we computed the influence of experimentally measured synaptic input on peridendritic calcium fluctuations. Remarkably, appropriately timed synaptic input can amplify significantly the decrement in external calcium. The model shows that the extracellular space and the calcium channels that access it provide a medium that naturally integrates coincident spike activity from different dendrites that intersect the same tissue volume.

Algorithms↗

[Interactions between cardiomyocytes and extracellular matrix in the failing human heart].

Numerous morphological changes can be observed in human myocardium failing because of dilated cardiomyopathy. These can be observed by electron microscopy and by immunofluorescence microscopy using monoclonal antibodies. These changes include: 1) the occurrence of hypertrophied and atrophied myocytes as well as cells of normal size, 2) degenerative changes in myocytes; these consist of nuclei of varying size and shape, lack of contractile material, disorganization of the cytoskeleton, and sequestration of cellular particles into the extracellular space and 3) an enlarged extracellular space, that is, fibrosis, which contains increased amounts of the different matrix proteins such as fibronectin and laminin, the various collagens, and chondroitin sulfate, in addition to cellular debris and numerous macrophages and fibroblasts. On the basis of these findings it is hypothetized that there exists an interaction between myocytes and the extracellular matrix. The cells of the latter may be stimulated to higher rates of proteins synthesis by the presence of cellular debris. This process, in turn, may be harmful for the structural integrity of myocytes which consequently sequester more cellular particles. In this manner, a vicious circle may be started that leads to further structural and functional deterioration of the myocardium, finally resulting in failure.

Cardiomyopathy, Dilated↗

Extracellular potassium in neuropile and nerve cell body region of the leech central nervous system.

Potassium-sensitive double-barrelled microelectrodes were used to measure the potassium content of extracellular spaces in leech ganglia, both intact and with the ganglion capsule opened. When the ganglion capsule was opened, the extracellular concentrations of potassium in the ganglion were similar to that of the bathing medium (4 mM). With intact ganglia the extracellular potassium concentration in the neuropile averaged 6.3 +/- 0.7 mM and in the nerve cell body region 5.8 +/- 0.6 mM. The potential measured in these parts of the ganglion was between +2 and -8 mV, averaging -1.9 mV. The change of potassium concentration in the extracellular spaces following increase or decrease in the concentration of potassium ions in the bath declined exponentially. This rate of change, which would be expected of a first-order diffusion process, was found in both the neuropile and the nerve cell body region. In a medium containing 5 x 10(-4) M ouabain, the potassium concentration in both parts of the ganglion increased transiently by an average of 3.8 +/- 1.0 mM in the neuropile and 1.2 +/- 0.4 mM in the nerve cell body region. Negatively charged polyelectrolytes in extracellular spaces of leech ganglia could affect the distribution of potassium ions to give a Donnan distribution. It is also possible, that the endothelial layer influences the extracellular potassium concentration in a ganglion under resting conditions.

Animals↗

[Electron microscopic observation of acoustic neurinoma].

The ultrastructural pattern of the acoustic neurinoma was studied with 10 excised tumors as well as one from the temporal bone. Under transmission electron microscope, the ultrastructural characteristics of the tumor were as follows: (1) The cytoplasm formed bundles of very thin, long processes in intimate contact with each other and/or with similar processes from neighboring cells. (2) All of these cells and their processes were surrounded by a basement membrane. (3) In the dense areas, the extracellular spaces were occupied by banded fusiform fibers (Luse bodies). (4) In some tumors, the extracellular space of the loose areas contained a moderate amount of collagen. (5) The extracellular space in many tumors appeared either "empty" or filled with fine granular material and small bundles of fine filaments. Fully and partially myelinated nerve fibers were found in some tumors. Pathological classification based on the ultrastructure of the acoustic neurinoma had been discussed.

Humans↗

On the ultrastructure and permeability of taste buds of the marine teleost Ciliata mustela.

The abundant taste buds of the barbels and free fin rays of the five bearded rockling, Ciliata mustela contain an average of 100-150 cells, falling into two types. Tubule-containing cells ('t-cells'), tentatively identified as receptor cells, and each surrounded by fibril-containing cells ('f-cells') in the central part of the bud. t-Cells also occur in two concentric shells separated by indifferent epithelial cells at the periphery of the bud. f-Cells are characterized by their concentrations of fine fibrils, and by granules or vesicles of 180-190 mmu diameter. The 100 or so receptor cells in a taste bud are innervated by some 250 axons. Lanthanum penetrates more deeply into the extracellular space of taste buds than into the extracellular space of the general epithelium, perhaps indicating that a greater area than the mere protruding tip of receptor cells may be accessible to chemical stimulation. Degenerating cells may provide an important route of entry for such external agents.

Animals↗

Model of potassium dynamics in the central nervous system.

A one-dimensional numerical model of potassium dynamics in the central nervous system is developed. The model incorporates the following physiological processes in computing spatial and temporal changes in extracellular K+ concentration, [K+]o: 1) the release of K+ from K+ sources into extracellular space, 2) diffusion of K+ through extracellular space, 3) active uptake of K+ into cells and blood vessels, 4) passive uptake of K+ into a cellular distribution space, and 5) the transfer of K+ by K+ spatial buffer current flow in glial cells. The following tissue parameters can be specified along the single spatial dimension of the model: 1) the volume fraction and tortuosity of extracellular and glial cell spaces, 2) the volume fraction of the cellular distribution space, 3) rate constants of active uptake and passive uptake processes, and 4) glial cell membrane conductance. The model computes variations in [K+]o and current flow through glial cells for three tissue geometries: 1) planar geometry (the retina and the surface of the brain), 2) cylindrical geometry (tissue surrounding a blood vessel), and 3) spherical geometry (tissue surrounding a point source of K+). For simple sources of K+, the performance of the model matches that predicted from analytical equations. Simulations of previous ion dynamics experiments indicate that the model can accurately predict ion diffusion and K+ current flow in the brain. Simulations of electroretinogram generation and K+ siphoning onto blood vessels suggest that unanticipated K+ dynamics mechanisms may be operating in the central nervous system.

Animals↗

Glycolytic and oxidative metabolic contributions to potassium ion transport in rat cerebral cortex.

Putative roles of glycolytic and oxidative metabolism in the removal of potassium ion from the extracellular space were examined in rat cerebral cortex. In response to direct electrical stimulation of the cerebral surface, the activity of extracellular potassium ion (Ko+) transiently increased. Inhibition of glycolysis with iodoacetate prolonged the time required for dissipation of the elevated Ko+. This slowing was most evident in the early period after stimulation, when Ko+ was relatively high. Levels of high-energy intermediates were unchanged by iodoacetate. In contrast, severe hypoxemia was without effect during the early phase of K+ removal but hypoxemia slowed the later restoration of the Ko+ baseline. These data demonstrate that the rapid removal of potassium ion from the extracellular space following intense neuronal activity is aided by the Embden-Myerhoff metabolic pathways and perhaps by direct coupling of ATP produced by glycolysis. We suggest that removal of potassium ion from the brain extracellular space depends on two ATP pools, one derived from oxidative phosphorylation, the other from glycolysis. The glycolytic ATP pool may be most involved in the early and rapid phase of potassium clearance; the oxidative ATP pool may be more associated with the second and slower phase of Ko+ clearance, and with the maintenance of the Ko+ baseline under 'resting' conditions.

Adenosine Triphosphate↗

Arachidonic acid is functioning as a second messenger in activating the Ca2+ entry process on H1-histaminoceptor stimulation in DDT1 MF-2 cells.

This study was carried out to identify the cellular component activating the histamine-stimulated Ca2+ entry in vas-deferens-derived DDT1 MF-2 cells. H1-histaminoceptor stimulation resulted in a rise in intracellular Ca2+ concentration, caused by Ca2+ release from inositol phosphate-sensitive Ca2+ stores and Ca2+ entry from the extracellular space, accompanied by a transient Ca(2+)-activated outward K+ current. The histamine-evoked K+ current was still observed after preventing inositol phosphate-induced Ca2+ mobilization by intracellularly applied heparin. This current was activated by Ca2+ entry from the extracellular space, because it was abolished in the presence of the Ca(2+)-channel blocker La3+ or under Ca(2+)-free conditions. H1-histaminoceptor-activated Ca2+ entry was also observed in the presence of intracellularly applied Ins(1,4,5)P3 and Ins(1,3,4,5)P4, depleting their respective Ca2+ stores and pre-activating the inositol phosphate-regulated Ca2+ entry. Thus the ability of histamine to activate Ca2+ entry independently of Ca2+ mobilization and the formation of inositol phosphates suggests that another component is involved to initiate the Ca(2+)-entry process. It was observed that H1-histaminoceptor stimulation resulted in a pronounced release of arachidonic acid (AA) in DDT1 MF-2 cells. Exogenously applied AA induced a concentration-dependent increase in internal Ca2+ due to activation of Ca2+ entry from the extracellular space. Slow inactivation of the AA-sensitive Ca2+ channels is suggested by the slow decline in Ca2+ entry. In accord, the histamine-induced Ca2+ entry was not observed with AA-pre-activated Ca2+ channels. Inhibition of the lipoxygenase and cyclo-oxygenase pathway did not affect the AA-induced Ca2+ and the concomitant K+ current were decreased in the presence of AA and caused by Ca2+ mobilization from internal stores. Blocking this internal Ca2+ release by heparin, in the presence of AA, resulted in abolition of the histamine-induced Ca(2+)-regulated K+ current. These observations show that AA, released on H1-histaminoceptor stimulation in DDT1 MF-2 cells, is functioning as a second messenger to activate plasma-membrane Ca2+ channels promoting Ca2+ entry from the extracellular space.

Arachidonic Acid↗

Extracellular matrix synthesis in blastula and gastrula stages of normal and hybrid frog embryos. II. Autoradiographic observations on the sites of synthesis and mode of transport of galactose- and glucosamine-labelled materials.

Pulse-chase labelling experiments and light- and electron-microscopic autoradiography were used to examine the sites of synthesis, mode of transport, and sites of deposition of galactose- and glucosamine-labelled materials in different developmental stages of normal developing Rana pipiens embryos and interspecific hybrid embryos formed by fertilizing the eggs of R. pipiens with the sperm of R. catesbeiana. In both normal and hybrid embryos, after 15-min pulse, grains are closely associated with juxtanuclear and cytoplasmic collections of membrane-bound vesicles which resemble the Golgi apparatus. In normal embryos following a 15-30 min pulse and a 60-min chase, grains are largely cleared from the cytoplasmic vesicles and deposited in the extracellular spaces or along cell surfaces where the extracellular spaces are relatively large. In contrast, arrested hybrid embryos given a 15-30-min pulse and a 60-min chase show a marked accumulation of grains over cytoplasmic structures such as the Golgi apparatus and vesicular elements in the cell cortex. Finally, early gastrula stage normal embryos are most active in the synthesis of galactose-labelled materials in cells above the dorsal lip of the blastopore, where cell migration is initiated.

Animals↗

Evaluation of multifrequency bioimpedance spectroscopy for measurement of the extracellular water space in critically ill patients.

The purpose of this study was to compare multifrequency bioimpedance spectroscopy (BIS) estimates of extracellular water volume (ECW) in critically ill patients with measurements by bromide dilution. Stable bromide dilution and BIS were performed in 37 critically ill patients as soon as haemodynamic stability was achieved (day 0) and again 10 days later. While BIS underestimated the dilution results on each day of measurement, the 10-day changes in ECW agreed closely for the two methods (4.42 +/- 4.25 (s.d.) vs 4.43 +/- 4.84 1).

Adolescent↗

Tracing of benzidine-reactive substances in ROS, RPE and choroid after light-induced peroxidation.

BACKGROUND: A new method for the ultrastructural localization of lipid peroxides as benzidine-reactive substances (BRS) was recently developed in our laboratory. The aim of the present study was to localize BRS in the eye after intense light exposure. The light protocol was chosen to either hamper disc shedding or to induce a shedding peak. METHODS: Long-Evans rats were either kept under constant irradiation to enhance lipid peroxidation or under physiological light conditions. The light-induced peroxidation was carried out either by constant irradiation for 24 h or by constant irradiation for 20 h followed by a dark period of 4 h. The eye cups were fixed by glutaraldehyde, incubated with or without tetramethylbenzidine and embedded for electron microscopy. RESULTS: After constant irradiation for 24 h smooth nonlamellar BRS appear exclusively intracellularly over the complete rod outer segments (ROS). After the initiation of disc shedding smooth BRS are localized in the extracellular space of the ROS and extracellularly in the basal labyrinth of the retinal pigment epithelium (RPE). Fine-lamellar BRS emerge in vacuoles of the RPE, in the basal labyrinth and in the lumen of choroidal capillaries. CONCLUSION: Light conditions that trigger the disc shedding possibly activate a mechanism to extrude peroxidative damaged material over the complete ROS into the extracellular space to diminish peroxidative damage inside the ROS. Indigestible residual material from the ROS degradation in the phagosomes consists of membranous lipids associated with peroxidative damaged proteins. The residual material seems to be transported through Bruch's membrane into the choriocapillaris.

Animals↗

Diffusion-weighted magnetic resonance imaging.

Diffusion-weighted magnetic resonance imaging is a specialized technique that measures the degree of diffusion of water molecules within extracellular space and between intracellular and extracellular space. Diffusion-weighted imaging signal is high (bright) when diffusion is restricted, as occurs in cytotoxic damage from ischemia, inflammation, trauma, or tumor. This technique, now available on most magnetic resonance imaging units, is especially helpful in detecting early ischemic stroke and multiple sclerosis and in differentiating arachnoid cyst from epidermoid tumor and brain abscess from neoplasm.

Brain↗