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A Reichenbach

Publications and source records attributed to A Reichenbach.

At least 109 records · Page 6Linked to original sources

Quantitative phylogenetic constancy of cerebellar Purkinje cell morphological complexity.

Golgi-stained material of cerebellar cortices from 17 species was examined by measuring the fractal dimensions of the borders of Purkinje cells, which is a quantitative, objective measure of morphological complexity. Nine species (from birds to man) were chosen for a comparison with ANOVA and no statistically significant differences were found in their fractal dimensions. In contrast, a wide range of differences was found in the membrane areas across species lines. The Sholl coefficient, a measure of branch formation and termination away from the soma, showed no consistent pattern for each cell. We interpret our results as indicating a constancy in morphological cellular complexity of Purkinje cells during late evolutionary time.

Analysis of Variance↗

Perineuronal nets provide a polyanionic, glia-associated form of microenvironment around certain neurons in many parts of the rat brain.

The nature and function of previously described perineuronal nets are still obscure. In the present study their polyanionic components were demonstrated in the rat brain using colloidal iron hydroxide (CIH) staining. In subcortical regions, such as the red nucleus, cerebellar, and vestibular nuclei, most neurons were ensheathed by CIH-binding material. In the cerebral cortex perineuronal nets were seen around numerous nonpyramidal neurons. Biotinylated hyaluronectin revealed that hyaluronan occurs in perineuronal nets. Two plant lectins [Wisteria floribunda agglutinin (WFA) and Vicia villosa agglutinin (VVA)] with affinity for N-acetylgalactosamine visualized perineuronal nets similar to those rich in anionic components. Glutamic acid decarboxylase (GAD)-immunoreactive synaptic boutons were shown to occupy numerous meshes of perineuronal VVA-positive nets. Electron microscopically, VVA binding sites were scattered throughout perisynaptic profiles, but accumulated at membranes and in the extracellular space except not in synaptic clefts. To investigate the spatial relationship between glial cell processes and perineuronal nets, two astrocytic markers (S100-protein and glutamine synthetase) were visualized at the light and electron microscopic level. Two methods to detect microglia by the use of Griffonia simplicifolia agglutinin (GSA I-B4) and the monoclonal antibody, OX-42, were also applied. Labelled structures forming perineuronal nets were observed with both astrocytic, but not with microglial, markers. It is concluded that perineuronal nets are composed of a specialized type of glia-associated extracellular matrix rich in polyanionic groups and N-acetylgalactosamine. The net-like appearance is due to perisynaptic arrangement of the astrocytic processes and these extracellular components. Similar to the ensheathment of nodes of Ranvier, perineuronal nets may provide a special ion buffering capacity required around various, perhaps highly active, types of neurons.

Acetylgalactosamine↗

Na+ channels are expressed by mammalian retinal glial (Müller) cells.

Müller cells constitute the principal glia of the vertebrate retina. Unlike other types of neuroglial cells such as astrocytes and Schwann cells, Müller cells have not yet been demonstrated to express Na+ channels. Here we present first evidence of Müller cell Na+ currents from voltage-clamp studies in enzymatically isolated cells. Some cells from retinae of cats and dogs, but none from rabbit or guinea-pig retinae, revealed fast and rapidly inactivating inward currents in response to depolarizing voltage steps. The currents reversibly disappeared in Na+ free solutions or under tetrodotoxin (TTX, 1 microM). Activation and inactivation characteristics of these currents were strikingly similar to those of neurone-type Na+ channels.

Animals↗

Two types of neuronal precursor cells in the mammalian retina--a short review.

This short review summarizes current evidence that the mammalian retina is populated by two distinct groups of retinal neurons. One of them (ganglion cells, cone photoreceptor cells, horizontal cells, and a subpopulation of amacrine cells) is generated early in ontogenesis, and may be phylogenetically old. The other group (rod photoreceptor cells, bipolar cells, and another subpopulation of amacrine cells) is born late in ontogenesis, and seems to have been acquired later in phylogeny. It is suggested that the two groups of neurons are generated by two different types of precursor cells that may result from an asymmetrical final division of the undifferentiated retinal stem cells. Qualitative and quantitative features of precursor cell proliferation and differentiation are discussed.

Aging↗

Optic tectum in congenitally monophthalmic fishes and chicks.

Morphometry of optic tectum layers was performed in fishes and birds that were congenitally monophthalmic (or had one very small or malformed eye). The optic chiasm was studied with regard to possible anomalies of the fiber distribution. In two very young fish larvae with only one ocular rudiment, no differences were found between the two tecta. In fishes and chicks with one normal and one eye of reduced size, the volume of superficial tectal layers contralateral to the small eye was significantly more affected (reduction by 40 to 70%) than that of the deep layers (reduction by 10 to 30%). Particularly pronounced differences between the superficial tectal layers of both sides were found in a fish where a thin optic nerve, originating in an unusually small eye, projected to the ipsilateral side of the brain. It is concluded that (1) the development of superficial tectal layers depends more strongly on optic innervation than that of deep layers; (2) obvious differences between tecta with and without optic innervation develop rather late in ontogeny; (3) there seems to be no measurable difference between effects of a poor (less than 25%) innervation of the tectum and a complete lack of this projection.

Anguilla↗

A comparative fractal analysis of various mammalian astroglial cell types.

Camera-lucida drawings of Golgi-impregnated astroglial cells and their processes are described by the fractal dimension of their borders, which is an objective, quantitative measure of morphological complexity. Protoplasmic astrocytes from human neocortex have fractal dimensions (D) that are larger than those of fibrous astrocytes from the cat optic nerve. Marginal astrocytes from monkey cerebropontile angle have two kinds of processes: (1) short, thick processes with endfeet abutting the pial surface, with relatively high D's, and (2) very long, thin processes extending into the neuronal tissue, with very low D's. These data indicate that short astrocytic processes may have a complex surface (and have a high D), whereas long processes are rather smooth (and have a low D). A comparison between transmission electron microscopy morphometry and measures of D at the light microscopic level, performed on different parts of rabbit retinal Müller glial cells, suggests that D is strongly correlated to the surface-to-volume ratio which, in part, determines the length constant of a cable for core-conductance of currents. We provide data supporting the hypothesis that astroglial cell geometry is adjusted to allow for sufficient spatial buffering K+ currents, even through very long processes.

Animals↗

K+ ion regulation in retina.

During onset and offset of illumination, considerable changes in extracellular K+ concentration ([K+]c) occur within particular retinal layers. There are two ways in which glial cells may control [K+]c: (1) by space-independent processes, for example, by K+ uptake due to the Na(+)-K+ ATPase, and (2) by space-dependent processes, that is, by spatial buffering currents flowing through K+ channels. Rabbit retinal Müller (glial) cells were studied for expression of mechanisms supporting both kinds of processes. This review demonstrates that rabbit Müller cells have Na-K pumps whose distribution and properties are highly adapted to meet the needs of efficient K+ clearance. Furthermore, spatial buffering currents through specialized K+ channels of Müller cells greatly accelerate retinal K+ clearance during and after stimulation.

Animals↗

Phagocytosis of latex beads by rabbit retinal Müller (glial) cells in vitro.

The ability of rabbit retinal Müller (glial) cells to perform phagocytosis was studied in vitro. Müller cells were feed with various kinds of latex beads either shortly after enzymatical isolation from adult retinae or in monolayer cell cultures derived from neonatal retinae and kept 14 days in vitro. Both types of Müller cell preparations showed intense phagocytosis of latex beads. Moreover, when entire retinae were isolated and exposed (sclerad side up) to latex beads in vitro for 30 min, Müller cells had picked up fluorescent beads and showed, after fixation, intense labeling in radial sections of such retinae. Effective phagocytosis by Müller cells was demonstrated 1.) by transmission electron microscopy, 2.) by bright-field light microscopy of unstained large beads (diameter 660 nm), or 3.) by fluorescence microscopy of small (diameter about 60 nm) and large latex beads labeled with rhodamine. These results suggest that both labeled and unlabeled latex beads are suitable tools to study the phagocytotic activity of retinal glial cells in vitro, thus providing information on important processes occurring in situ during ontogenesis, physiological renewal of retinal receptor cells, and pathological events. We found that movements of cells or cytoplasmic excrescences, and cell-cell interactions, play important roles in removal of foreign particles out of the fluid environment. Engulfed latex beads move through the elongated cells with velocities similar to slow axoplasmic transport.

Animals↗

Neuronal ectopia in tiger retina.

Ocular pathology in a ten week-old tiger is described. In the retinae of both glaucomatous eyes, venous congestion and scattered hemorrhages were observed; rare perivascular infiltrates were seen. The basal lamina of the inner limiting membrane was considerably thickened, and serous exudates were widely distributed within the vitreous body. The retina was studied with a series of specific antibodies. Müller (glial) cells were well developed and could be immuno-labelled by antibodies against both vimentin and glial fibrillary protein (GFAP). Neurofilament-specific antibodies revealed the presence of ganglion and horizontal cells, and of a nerve fibre layer which was unusually distant from the inner limiting membrane. Within both plexiform layers, scattered neuronal cells were found. The most important finding was the presence of cells between the nerve fibre layer and the inner limiting membrane, which could be immuno-labelled by neuron-specific antibodies, and which expressed thy typical morphology of migrating neuroblasts. It is suggested that this neuronal ectopia might be due to an inflammatory related reactive change in Müller cells which, in turn, might have lost their orderly guiding function for migrating neuroblasts.

Animals↗

Development of the rabbit retina: II. Müller cells.

Müller (glial) cells of the rabbit retina were stained with antibodies against the intermediate filament protein vimentin in retinal wholemounts from various developmental stages. Both the density of stained profiles and the mean diameter of these profiles were measured, with the microscope focus in the inner plexiform layer of the retinae. Within this retinal layer, every Müller cell possesses one stout vitread process; thus counts of the stained profiles allow an estimation of their number. After postnatal day (P) 9, the total number of stained cells was slightly above 4 million per retina; for the adult rabbit retina, this agrees well with earlier data obtained by our group based on another method, as well as with published data from other groups. We suggest that after P 9, only Müller cells are stained, and this population is numerically stable. In contrast, neonatal retinae contained significantly more stained profiles. This indicates that either the total number of Müller cells is reduced by "physiological cell death" or that additional cells are stained neonatally. We discuss why we favour the second possibility. After P 9, two peculiarities occur in the Müller cell population: (1) their density decreases gradually, to a greater extent in the retinal periphery than in the center (i.e., in the "visual streak"), and (2) Müller cell diameters increase, again more in the periphery than in the center. We argue that differential retinal expansion leads to dispersion of the pre-existing cell population and allows for widening of the Müller cell processes. We conclude that Müller cells can be used postnatally in the rabbit retina as "landmarks" of expansion.

Aging↗

Comparative morphometry of Bergmann glial (Golgi epithelial) cells. A Golgi study.

Bergmann glial (Golgi epithelial) cells were Golgi-impregnated in the cerebella of species with great differences in the thickness of the molecular layer, in small African native mouse, rat, rhesus monkey, and man. The thickness of the molecular layer determines the length of the radial Bergmann cell processes. Whereas the overall morphology of the cells was found to be strikingly similar in all species studied, there were great quantitative differences in length and diameter of the stem processes. Species with thick molecular layers (man, monkey) have thicker stem processes than species with short distances between Bergmann glial cell soma and pial surface (rat, mouse). This could mean that larger animals with longer gestation periods allow for prolonged growth of cell volumes. On the other hand, an increase in the diameter of long processes should reduce the cytoplasmic resistance against ionic currents; this would be important when Bergmann glial cells--like retinal Müller cells--would act as "cables" for spatial buffering of potassium ions released by electrically active neurons. By contrast, the fractal dimension--i.e., a quantitative measure of the complexity of the cell's border--of the cell processes was lower in species with long processes. In an age series of rat cells, the fractal dimension is shown to increase slightly up to a very old age.

Animals↗

Development of the rabbit retina. I. Size of eye and retina, and postnatal cell proliferation.

Measures of rabbit eyes and retinal wholemounts were used to evaluate the development of retinal area and shape. The retina is shown to have a horizontal axis about a third longer than the vertical axis just before birth, and to adopt an almost symmetrical shape during postnatal development to adulthood. In general, retinal thickness is shown to decrease after birth, but differently in particular retinal regions: the reduction is marked in the periphery, and less pronounced in the visual streak. As an exception, the myelinated region--after it becomes really myelinated, from 9 days p.p.--even increases in thickness. In all regions of the retina, the absolute and relative thickness of the nuclear layers decreases, whereas the relative thickness of plexiform and fibrous layers increases. Proliferation of cells within the rabbit retina was studied during the first three postnatal weeks. 3H-thymidine incorporation was used to demonstrate DNA synthesis autoradiographically in histological sections as well as in enzymatically isolated retinal cells. A first proliferation phase occurs in the neuroblastic cell layer and ceases shortly after birth in the retinal center, but lasts for about one week in the retinal periphery. We found, however, a few 3H-thymidine-labeled cells as late as in the third postnatal week. These late-labeled cells were found within the nerve fiber layer and in the inner plexiform layer. The latter cells were shown to express antigens detected by antibodies directed to the intermediate-sized filament protein vimentin, which are known to label Müller cells and neuroepithelial stem cells. This was confirmed in our preparation of enzymatically isolated cells; all cells with autoradiographically labeled nuclei revealed a characteristic elongated morphology typical for Müller radial glia (and also for early neuroepithelial stem cells). 3H-thymidine-labeled cells in the nerve fiber layer were most probably astrocytic. In analogy to the brain, we conclude that the mammalian retina undergoes a series of proliferation phases: first an early phase producing both neurons and glial cells, and then a late phase producing glial cells, e.g., in the nerve fiber layer. Most probably, the late phase within the inner nuclear layer is glial as well, i.e., consists of dividing Müller cells; it cannot be excluded, however, that there may remain some mitotically active stem cells.

Animals↗

Development of the rabbit retina. IV. Tissue tensility and elasticity in dependence on topographic specializations.

A method is introduced for the quantification of specific compliance and the elasticity of small pieces of living retinal tissue. These pieces are fixed at their margins by means of tissue glue, and loaded with a small iron spherule the bending force of which can be gradually enhanced by the action of an electromagnet. Retinal bending caused by such calibrated forces is measured by a horizontal light microscope, and used for estimations of specific compliance and elasticity of the tissue. Three different particular regions of the rabbit retina--periphery, visual streak, and (prospective) medullary rays--were tested at several post-natal developmental stages. From very early stages on (day 2 p.p.) up to adulthood the peripheral retina was found to be significantly more tensile than the two other central regions. This can be shown to depend greatly on the thickness of the tissue which is lower in the retinal periphery. During early post-natal development, all retinal regions except the (prospective) medullary rays become thinner. The tensility of the tissue increases, with the exception of the medullary rays which reduce their compliance strongly. In the adult retina, however, the tensility of all retinal regions is reduced as compared with the neonatal tissue. This seems to be caused by a constant gradual increase of the elasticity of the retina during development which, in turn, may be caused by several developmental parameters, e.g. the formation of synapses, the outgrowth of glial side branches ensheathing neighbouring neuronal cells, or a reduction in extracellular clefts. It is proposed that these differences in tensility between different retinal regions, may be the cause for differential retinal expansion driven by the intraocular pressure. Thus, simple mechanical features of the tissue may contribute to the formation of important topographic specializations of the retina, e.g. the visual streak as the site of highest visual acuity.

Aging↗

Rabbit retinal Müller cells in cell culture show gap and tight junctions which they do not express in situ.

Retinae of early postnatal rabbits were enzymatically dissociated and explanted in a culture system. The prospective myelinated region was discarded in order to avoid the presence of astrocytic or mesenchymal cells. After about 14 days in vitro (DIV), outgrowing glial (Müller) cells formed what light optically appeared to be confluent monolayers but by electron microscopy was shown to consist of flat epithelioid cells which overlapped considerably by extension of cytoplasmic tongues. Applying the freeze-fracture technique, apposed membranes of these cells were demonstrated to express infrequently but consistently both gap and tight junctions. This kind of junctions has never been observed on the membrane of rabbit Müller cells in situ. In comparison with Müller cell membranes in situ, the density of intramembrane particles was considerably reduced. Orthogonal arrays of particles which are characteristic elements of Müller cells in situ were not detected. Our results suggest that in homogeneous cell culture, Müller cells form some kind of epithelium-like specialized intercellular junctions. This situation resembles that of closely related glial cell types which form homogeneous layers in situ as e.g. retinal pigment epithelium cells expressing tight junctions, and marginal astrocytes being coupled by extensive gap junctions.

Animals↗

Orthogonal arrays of intramembranous particles in the Müller cell and astrocyte endfoot membrane of rabbit retina. Postnatal development and adulthood.

The freeze-fracture technique was applied to the retina of early postnatal and adult rabbits to investigate the distribution and density of orthogonal arrays of intramembrane particles (OAP) within the vitread endfoot membranes. In adult animals, two distinct types of endfoot membranes were observed within the central myelinated retina but not in the retinal periphery. One type of endfoot membranes contained low density of individual 'background' particles, and a more or less stripe-like pattern of OAP; this type was found only within the myelinated centre and is concluded to represent membranes of retinal astrocytes. The other type of endfoot membranes was rather tightly packed with individual 'background' particles, and contained OAP which formed rows only at the margins of footplates; this kind of membrane was found throughout the whole retina, and represents Müller cell endfeet. The density of OAP in both types of endfoot membranes was higher within the central myelinated retina than in the Müller cell endfeet of the retinal periphery. In early postnatal retinae, a discrimination between the two types of endfeet was impossible. At the day of birth, only very few OAP were observed, and the majority of footplates were free of OAP. Within the next 10 days, both density and size of OAP were found to increase but fail to reach adult levels. Quantitative data are presented with the hope of providing a basis for future correlation with functional maturation of rabbit retinal glia.

Animals↗

Membrane ultrastructure preservation and membrane potentials after isolation of rabbit retinal glial (Müller) cells by papain.

Enzymatically isolated retinal glial (Müller) cells have been the subject of many electrophysiological studies. Local high membrane conductivities for potassium ions have been speculated to correspond with local occurrence of orthogonal arrays of intramembranous particles (OAP) observed in freeze-fracture replicas of retinal Müller cells in situ. We studied whether such OAP are preserved after enzymatic digestion of the retinal tissue which is necessary for isolation of living cells for electrophysiology. We found that strong papain digestion leads not only to disturbances in the cell's ultrastructure as seen in ultrathin sections but evokes both a redistribution of intramembranous particles and a disappearance of OAP as seen in the freeze-fracture replica. Furthermore, such isolated cells have low membrane potentials and lose their topographical specialization in K+ conductance. If, however, the retinae were exposed to papain as short as possible to get just some isolated cells, their cytoplasmic and membranous ultrastructure was preserved very well, and high resting membrane potentials were recorded in cells with marked regional specialization of membrane conductivity. Our results show that indeed sites of high K+ conductance may correspond with the occurrence of OAP, even in isolated cells.

Animals↗

Determination of the extracellular tortuosity in nuclear layers of the central nervous system by resistance measurements on a geometrical model.

The electrical resistivity of nuclear layers within CNS tissues is simulated by a densely packed array of glass spherules with a thin silver layer on their surfaces. Various mean spherule diameters and different thicknesses of the silver layer are tested; the relations between spherule diameter and thickness of silver mantle are in the same range as those between cell soma diameters and width of the extracellular clefts. Measuring the contribution of the silver layers to the total volume--corresponding to the extracellular volume fraction alpha within CNS tissues--and the resistance of columns of silvered spherules, tortuosity factors lambda 2 are calculated. Means of lambda 2 are found to vary within 5.6 and 9.2, independent of both spherule diameters and thickness of the silver layer, but strongly dependent on the packing density of the spherules. This latter dependence is described by a simple formula. These results are used to calculate the resistivities of the nuclear layers of the retina and of the granular layer in the hippocampal area dentata, based on morphometric data gained from own studies and literature reports, respectively. It is shown that such layers with densely packed cells express very high resistivity because of both low extracellular volume fraction and high tortuosity. Implications for current source density analyses, and for pathological events like epileptogenesis, are discussed. In an appendix, an analytical solution of the problem is given for the case of a cubic array of surface-conducting spheres.

Animals↗