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U Rutishauser

Publications and source records attributed to U Rutishauser.

At least 37 records · Page 2Linked to original sources

Spatio-temporal diversity in the microenvironments for neural cell adhesion molecule, neural cell adhesion molecule-polysialic acid, and L1-cell adhesion molecule expression by sensory neurons and their targets during cochleo-vestibular innervation.

Sixteen phases in the microenvironments were defined for the structural development and innervation of the cochleo-vestibular ganglion and its targets. In each phase the cell adhesion molecules, neural cell adhesion molecule, neural cell adhesion molecule-polysialic acid, and L1-cell adhesion molecule, were expressed differentially by cochleo-vestibular ganglion cells, their precursors, and the target cells on which they synapse. Detected by immunocytochemistry in staged chicken embryos, in the otocyst, neural cell adhesion molecule, but not L1-cell adhesion molecule, was localized to the ganglion and hair cell precursors. Ganglionic precursors, migrating from the otocyst, only weakly expressed neural cell adhesion molecule. Epithelial hair cell precursors, remaining in the otocyst, expressed neural cell adhesion molecule, but not L1-cell adhesion molecule. Post-migratory ganglion cell processes expressed both molecules in all stages. The cell adhesion molecules were most heavily expressed by axons penetrating the otic epithelium and accumulated in large amounts in the basal lamina. In the basilar papilla (cochlea), cell adhesion molecule expression followed the innervation gradient. Neural cell adhesion molecule and L1 were heavily concentrated on axonal endings peripherally and centrally. In the rhombencephalon, primitive epithelial cells expressed neural cell adhesion molecule, but not L1-cell adhesion molecule, except in the floorplate. The neuroblasts and their axons expressed L1-cell adhesion molecule, but not neural cell adhesion molecule, when they began to migrate and form the dorsal commissure. There was a stage-dependent, differential distribution of the cell adhesion molecules in the floorplate. Commissural axons expressed both cell adhesion molecules, but their polysialic acid disappeared within the floorplate at later stages. In conclusion, the cell adhesion molecules are expressed by the same cells at different times and places during their development. They are positioned to play different roles in migration, target penetration, and synapse formation by sensory neurons. A multiphasic model provides a morphological basis for experimental analyses of the molecules critical for the changing roles of the microenvironment in neuronal specification.

Animals↗

Multiple roles of neural cell adhesion molecule, neural cell adhesion molecule-polysialic acid, and L1 adhesion molecules during sensory innervation of the otic epithelium in vitro.

To explore the role of cell adhesion molecules in the innervation of the inner ear, antibody perturbation was used on histotypic co-cultures of the ganglionic and epithelial anlagen derived from the otocyst. When unperturbed, these tissues survived and differentiated in this culture system with outgrowth of fasciculated neuronal fibers which expressed neural cell adhesion molecule and L1. The fibers exhibited target choice and penetration, then branching and spreading within the otic epithelium as individual axons. Treatment of the co-cultures, or of the ganglionic anlagen alone, with anti-neural cell adhesion molecule or anti-L1 Fab fragments produced a defasciculation of fibers but did not affect neurite outgrowth. In the co-cultures this defasciculation was accompanied by a small increase in the number of fibers found in inappropriate tissues. However, the antibodies did not prevent fiber entry to the otic epithelium. In contrast, removal of polysialic acid from neural cell adhesion molecule with endoneuraminadase-N, while producing a similar fiber defasciculation, also increased the incidence of fibers entering the epithelium. Nevertheless, once within the target tissue, the individual fibers responded to either Fab or to desialylation by spreading out more rapidly, branching, and growing farther into the epithelium. The findings suggest that fasciculation is not essential for specific sensory fibers to seek out and penetrate the appropriate target, although it may improve their tracking efficiency. Polysialic acid on neural cell adhesion molecule appears to limit initial penetration of the target epithelium. Polysialic acid as well as neural cell adhesion molecule and L1 function are involved in fiber-target interactions that influence the arborization of sensory axons within the otic epithelium.

Animals↗

Role of neural cell adhesion molecule and polysialic acid in mouse circadian clock function.

The suprachiasmatic nuclei (SCN) express the highly polysialylated form of the neural cell adhesion molecule (NCAM) that has been proposed to promote plasticity in the adult brain. To investigate a role for NCAM in SCN circadian clock function, we examined the daily locomotor rhythm of mice homozygous for a mutation, Ncamtm1Cwr, which results in deletion of the NCAM-180 isoform that in brain carries polysialic acid (PSA). Mutant mice entrained well to a 12 hr light/dark cycle but exhibited a significantly shortened free-running period and longer activity duration under constant darkness (DD) than did wild-type mice. By the third week of DD treatment, circadian rhythmicity in the mutant was abolished. Immunocytochemical analyses of the mutant SCN revealed an abnormal number and distribution of vasoactive intestinal polypeptide-producing neurons, suggesting a developmental effect of the mutant phenotype; however, a direct physiological effect of the mutation on clock function was indicated by the fact that removal of PSA from adult wild-type SCN by microinjection of endoneuraminidase shortened the free-running period to a similar extent as in the mutant. Together, these data indicate critical roles for NCAM and PSA in the development and physiology of the mammalian SCN circadian clock.

Animals↗

Focal ventricular origin and migration of oligodendrocyte precursors into the chick optic nerve.

During central nervous system (CNS) development, oligodendrocyte precursors originate in specific locations and subsequently migrate to all regions of the CNS. Here, we demonstrate that the chick optic nerve is populated by oligodendrocyte precursors, which initially appeared in a focal region at the ventral midline of the third ventricle at stage 26-27. Oligodendrocyte precursors migrated into the chiasmal end of the nerve by stage 29 and became uniformly distributed by stage 35. Migrating precursors were restricted to the anterior region of the nerve, closely apposed to axons, and had a bipolar morphology. In contrast to the polysialic acid (PSA)-dependent cooperative streaming migration of olfactory neuronal precursors, the migration of oligodendrocyte precursors along the optic nerve appeared axophilic and unaffected by removal of neural cell adhesion molecule (N-CAM)-associated PSA. These data indicate that during development, defined domains of the ventricular zone give rise to distinct cell types that utilize discrete mechanisms to navigate specific migrational pathways.

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Spatially restricted increase in polysialic acid enhances corticospinal axon branching related to target recognition and innervation.

The polysialic acid (PSA) modification of the neural cell adhesion molecule (NCAM) has been shown to alter the responses of developing axons to their environment. We have studied the potential role of PSA in regulating the innervation of the spinal cord by corticospinal axons, which occurs by a delayed formation of collateral branches from the parent axons. Developmental changes in the distribution of PSA were examined immuno-histochemically using light and electron microscopy. Whereas NCAM is distributed along the entire pathway of rat corticospinal axons as they grow from the cortex to the spinal cord, PSA-modified NCAM does not become evident until later. When PSA becomes evident, it is restricted to the distal segment of these axons from the caudal hindbrain through the spinal cord. The increase in PSA on corticospinal axons coincides with the time that they begin to form collateral branches in the spinal cord. This unique spatiotemporal distribution of PSA suggests its involvement in corticospinal axon branching. To test this hypothesis, PSA was selectively removed by an in vivo injection of endoneuraminidase N. This treatment did not seem to interfere with the pathfinding of corticospinal axons; however, PSA removal delayed the onset of collateral branching by corticospinal axons within the spinal cord and later diminished the magnitude of branching. These findings indicate a role for PSA in the regulation of interstitial axon branching, a crucial step in the process of target recognition and innervation by corticospinal axons.

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Targeted mutation of Ncam to produce a secreted molecule results in a dominant embryonic lethality.

The neural cell adhesion molecule (NCAM) is a membrane-associated member of the immunoglobulin superfamily capable of both homophilic and heterophilic binding. To investigate the significance of this binding, a gene targeting strategy in embryonic stem (ES) cells was used to replace the membrane-associated forms of NCAM with a soluble, secreted form of its extracellular domain. Although the heterozygous mutant ES cells were able to generate low coat color chimeric mice, only the wild-type allele was transmitted, suggesting the possibility of dominant lethality. Analysis of chimeric embryos with high level of ES cell contribution revealed severe growth retardation and morphological defects by E8.5-E9.5. The second allele was also targeted, and embryos derived almost entirely from the homozygous mutant ES cells exhibited the same lethal phenotype as observed with heterozygous chimeras. Together, these results indicate that dominant lethality associated with the secreted NCAM does not require the presence of membrane-associated NCAM. Furthermore, the data indicate that potent bioactive cues or signals can be generated by NCAM.

Animals↗

Polysialic acid in the vertebrate nervous system: a promoter of plasticity in cell-cell interactions.

Polysialic acid (PSA), a homopolymer attached to the neural cell adhesion molecule (NCAM), serves as a modulator of cell interactions. Polysialic acid exhibits a highly regulated expression pattern. During embryonic development its abundant expression is closely correlated with axon pathfinding and targeting, and with certain aspects of muscle formation. Its level also can be altered by synaptic activity. During neonatal development and in the adult brain, PSA expression is more restricted, being primarily associated with regions capable of morphological or physiological plasticity. The ability to perturb PSA in vivo by a specific glycosidase and by the creation of NCAM-deficient mice has led to extensive analysis of its biological function. These studies suggest that the primary role of PSA is to promote changes in cell interactions and thereby facilitate plasticity in the structure and function of the nervous system.

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The role of polysialic acid in migration of olfactory bulb interneuron precursors in the subventricular zone.

Transplantation studies have been used to show that tangential migration of olfactory bulb interneuron precursors is retarded in NCAM-mutant mice, and that this defect reflects loss of NCAM polysialic acid (PSA). In contrast, radial migration of cells within the bulb did not require PSA. Reciprocal transplantations between wild-type and mutant mice have revealed that the mutation affects the in vivo migration environment in the subventricular zone, and not movement of individual cells. However, in vitro migration of the cells into a PSA-negative collagen matrix environment was also PSA dependent. The surprisingly similar results obtained in the in vivo and in vitro environments is consistent with the observation that migration of subventricular cells occurs as streams of closely apposed cells in which the PSA-positive cells appear to serve as their own migration substrate.

Animals↗

A septum-derived chemorepulsive factor for migrating olfactory interneuron precursors.

During mammalian brain development, immature neurons often migrate considerable distances. A dramatic example is the rostral migration of olfactory interneuron precursors from near the septum to the olfactory bulb via a subventricular pathway. Heterotopic transplantations establish that this migration is unidirectional and that guidance cues operate over a considerable distance. The guidance cues for this translocation have not been identified, and the present studies provide evidence that a diffusible chemorepulsive factor, secreted by caudal septum but not by other tissue regions surrounding the pathway, may be involved. This activity is functionally distinct from that produced by factors that influence vertebrate axon outgrowth, such as netrin-1, netrin-2, and collapsin-1/semaphorin-III. The presence of this activity in the floor plate/ventral spinal cord as well as the septum suggests that it may influence other types of cell migration.

Animals↗

Polysialic acid and the regulation of cell interactions.

Polysialic acid, a unique glycosylation of the neural cell adhesion molecule, is highly regulated in its expression. Its function is manifested in the modulation of cell interactions, probably through its unusual physical properties. Recent advances have clarified the enzymatic mechanism of polysialic acid biosynthesis, expanded its role in cell migration and axon guidance, and suggested that it promotes plasticity in the adult nervous system.

Adult↗

Properties and developmental regulation of polysialyltransferase activity in the chicken embryo brain.

The properties and developmental regulation of vertebrate polysialyltransferase (PST), an enzyme activity responsible for extension of alpha 2,8-linked sialic acid homopolymers (PSA) associated with the fifth Ig domain of the neural cell adhesion molecule (NCAM). have been studied. The assay for PST used exogenous NCAM as a substrate, with a PSA-specific endoneuraminidase as a control for specificity. Optimal conditions for PST activity at 37 degrees C were found to be pH 6.0 in the presence of divalent cations (Mn2+, 20mM). The enzyme Km was found to increase with increasing polymer length, ranging from 0.7 to 0.07 microns. The developmental regulation both of PST activity and of the addition of PSA to NCAM were studied in chick whole brain, tectum, and cerebellum and found to be precisely coordinated. In each tissue PSA and PST were highest during early stages of morphogenesis, followed by a decrease as development reached completion. The insertion of the VASE exon in the fourth Ig domain of NCAM was also found to parallel closely the developmental down-regulation of PSA, and on this basis could be considered a potential determinant in the specific polysialylation of NCAM. However in direct tests of this hypothesis in transfected cells the presence of VASE did not markedly alter the level of NCAM polysialylation or alter the affinity of PST for the NCAM substrate.

Alternative Splicing↗

Protein determinants for specific polysialylation of the neural cell adhesion molecule.

Expression of polysialic acid (PSA) involves its specific attachment to the neural cell adhesion molecule (NCAM). Here we identify the amino acid residues within NCAM that are polysialylated and structural domains of the NCAM polypeptide that are required for addition of PSA in cells. Chicken NCAM cDNAs containing amino acid mutations, domain deletions, and domain substitutions were expressed in the F11 rat/mouse hybrid cell line, which can produce polysialylated NCAM. Polysialylation of the chicken NCAM was evaluated by immunopurification and electrophoresis. Mutation of all three potential N-glycosylation sites within the fifth immunoglobulin domain (Ig5) abrogated polysialylation. Analysis of paired mutations revealed that Asn-459 is heavily polysialylated, Asn-430 has a lower level of substitution, and Asn-404 receives little or no PSA. Analysis of domain deletions established that the intracellular domain, Ig domains 1-3, and the COOH-terminal fibronectin-type III (FNIII) repeat are not required for polysialylation, but that deletion of either the adjacent Ig4 or FNIII-type domain prevented addition of PSA. Accordingly, a minimal polypeptide for polysialylation was found to contain Ig domains 4 and 5, the adjacent FNIII repeat, plus a membrane attachment. These results suggest that although all PSA is located within Ig5, regions outside Ig5 also play a role in PSA addition to NCAM. Furthermore, molecular modeling indicates spatial proximity of Asn-430 and Asn-459 and a tight-locking arrangement between Ig4, Ig5, and FNIII#1 that would be consistent with their formation of a spatially discrete enzyme recognition site for polysialylation.

Amino Acid Sequence↗

Posterior extension of the chick nephric (Wolffian) duct: the role of fibronectin and NCAM polysialic acid.

The nephric duct of the chick embryo starts to form at about stage 10 of Hamburger and Hamilton ([1951] J. Morphol. 88:49-92) and extends posteriorly, fusing with the cloaca at about the end of the third day of incubation (HH stage 17). Evidence from the literature suggests that the extension involves active migration of the posterior tip. This investigation concerned some molecules that might control this migration: fibronectin, vitronectin, the beta 1 integrin receptor, and NCAM polysialic acid. The concentration of fibronectin in the extracellular matrix was found by immunocytochemistry to be negligible at the posterior end of the duct; treatment of the living embryo with GRGDS failed to halt further extension of the duct; SEM examination of embryos treated with the synthetic peptides of fibronectin GRGDS, GRDGS, SDGR, and GRGES, or with vitronectin, revealed negligible morphological effects on the duct. It is concluded that there is yet no evidence that fibronectin is an important factor in duct migration. NCAM polysialic acid had a similar distribution to fibronectin, but treatment of the living embryo with Endo-N caused cessation of extension of the duct. Endo-N is an enzyme that specifically degrades PSA without affecting the NCAM polypeptide itself. It is suggested therefore that PSA may play an important role in duct extension. The synthetic peptides of fibronectin each produced distinctive patterns of blebbing on the surfaces of cells in trunk mesoderm, but the duct cells were unaffected. GRGES and SDGR caused blebbing on cells in the somites and the anterior segmental plate, though not on cells in the posterior segmental plate. This suggests that integrin receptors change in the anterior segmental plate as the mesoderm forms somites from somitomeres.

Amino Acid Sequence↗

Unique changes of ganglion cell growth cone behavior following cell adhesion molecule perturbations: a time-lapse study of the living retina.

In the mammalian retina, multiple mechanisms are responsible for guiding retinal ganglion cell axons to the optic fissure. In the present study we have used time-lapse videomicroscopy to show that, within the center of the retinal neuroepithelium, growth cones use a scaffold of previously formed axons as a substrate for guidance. High magnification time-lapse videomicroscopy of normal growth cones in the midretina have shown that they have the ability to alter their shape from long, streamlined forms that hug other axons to more flattened forms that move between axons or neuroepithelial endfeet. In studies on the role of specific cell interactions in these events, Fab fragments against L1 and NCAM, administered either alone or in combination, were found to have dramatic and distinct effects on retinal ganglion cell growth cones. Anti-L1 Fab fragments severely disrupted radial growth cone orientation and rate of outgrowth. The anti-L1-treated growth cones initially stalled for 2 h, then changed direction and, thereafter, resumed an elongation rate twice as fast as in control preparations. By contrast, anti-NCAM Fab did not affect growth cone direction, but caused subsets of growth cones to speed up initially, then to dramatically increase in size, stall, and eventually halt. These results imply that L1 and NCAM play different roles in the promotion and direction of axon growth and, along with repulsive molecules and physical channels, provide essential information for the unidirectional growth of retinal axons into the optic fissure.

Animals↗

Effect of polysialic acid on the behavior of retinal ganglion cell axons during growth into the optic tract and tectum.

We have demonstrated previously that the polysialic acid (PSA) moiety of the neural cell adhesion molecule (NCAM) can regulate peripheral nerve branching during development. In particular, it was found that specific enzymatic removal of PSA from motor axons causes them to form tight fascicles that are less responsive to normal guidance cues. In the present study, the role of PSA in the behavior of axons in the central nervous system has been examined through an analysis of chick optic axons during development. Unlike peripheral axons, which generally grow in a PSA-free environment, PSA was found to be present both on retinal ganglion cell axons and their environment in the tract and tectum. Furthermore, the enzymatic removal of PSA from the optic axons caused them to defasciculate in the tract/tectal region. This response was morphologically similar to targeting corrections made by these axons at a later stage when PSA levels have decreased, suggesting that the PSA may serve to shield them from responding prematurely to some guidance cues in their target region.

Animals↗

Early development and dispersal of oligodendrocyte precursors in the embryonic chick spinal cord.

Oligodendrocytes, the myelinating cells of the vertebrate CNS, originally develop from cells of the neuroepithelium. Recent studies suggest that spinal cord oligodendrocyte precursors are initially localized in the region of the ventral ventricular zone and subsequently disperse throughout the spinal cord. The characteristics of these early oligodendrocyte precursors and their subsequent migration has been difficult to assay directly in the rodent spinal cord due to a lack of appropriate reagents. In the developing chick spinal cord, we show that oligodendrocyte precursors can be specifically identified by labeling with O4 monoclonal antibody. In contrast to rodent oligodendrocyte precursors, which express O4 immunoreactivity only during the later stages of maturation, in the chick O4 immunoreactivity appears very early and its expression is retained through cellular maturation. In embryos older than stage 35, O4+ cells represent the most immature, self-renewing, cells of the chick spinal cord oligodendrocyte lineage. In the intact chick spinal cord, the earliest O4+ cells are located at the ventral ventricular zone where they actually contribute to the ventricular lining of the central canal. The subsequent migration of O4+ cells into the dorsal region of the spinal cord temporally correlates with the capacity of isolated dorsal spinal cord to generate oligodendrocytes in vitro. Biochemical analysis suggests O4 labels a POA-like antigen on the surface of chick spinal cord oligodendrocyte precursors. These studies provide direct evidence for the ventral ventricular origin of spinal cord oligodendrocytes, and suggest that this focal source of oligodendrocytes is a general characteristic of vertebrate development.

Animals↗

NCAM-associated polysialic acid on ciliary ganglion neurons is regulated by polysialytransferase levels and interaction with muscle.

NCAM in its high polysialic acid (PSA) form is expressed on chick hindlimb motoneurons during their growth, and then decreases at about the time that synaptogenesis is completed. In order to characterize this regulation at the cell and molecular level, the present studies use the chick ciliary ganglion (CG) system, which constitutes a homogeneous and developmentally synchronized population of motoneurons that can be used for in vitro studies. Levels of PSA in the CG were evaluated both by SDS-PAGE immunoblot analysis of total NCAM and by pulse radiolabeling of newly synthesized NCAM. Up- and downregulation of PSA expression on newly synthesized NCAM in the CG was found to be closely correlated with in vivo innervation and synaptogenesis, respectively. Moreover, the downregulation observed at synaptogenesis was prevented by in vivo blockade of neuromuscular activity with alpha-bungarotoxin. The developmental regulation of PSA expression was found to coincide precisely with an increase and decrease in levels of specific polysialyltransferase activity. By contrast, the expression of the VASE exon in NCAM, which in CNS is temporally correlated with PSA downregulation, was not expressed in the CG. Cocultures of CG neurons with myotubes were used to provide direct evidence that neuron-muscle interaction can cause a specific downregulation of both neuronal PSA and polysialyltransferase activity.

Animals↗

Role of charge and hydration in effects of polysialic acid on molecular interactions on and between cell membranes.

Previous studies have shown that the polysialic acid (PSA) moiety associated with the neural cell adhesion molecule (NCAM) has strong antiadhesive properties that can influence a variety of cell-cell interactions. Based on the size and structure of this long linear homopolymer, we have proposed that the activity of PSA results from its physical properties. In the present study, the premise that the charge and hydration properties of PSA underlie its effects on membrane vesicle aggregation is investigated through the manipulation of ionic strength. The results establish that the antiadhesive properties of PSA are accentuated at low ionic strength, where charge and hydration cause expansion of the polymer size, and are absent at high ionic strengths, where the polymer size collapses. These large effects of PSA on aggregation were shown not to result from changes in the osmolarity of the solvent or from the relatively small effect of ionic strength on the intrinsic functional properties of the adhesion receptors. In addition to this influence on overall membrane-membrane interaction, PSA was found to have a highly localized and ionic strength-sensitive effect on the binding of monoclonal antibodies to NCAM. Together these results suggest that the charge and hydration properties of PSA can impede both molecular interactions between apposing membranes and more direct contact of NCAM with other proteins at the cell surface.

Animals↗