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The neural cell adhesion molecule and synaptic plasticity.

Highly stereotyped patterns of neuronal connections are laid down during the development of the nervous system via a range of activity independent and activity dependent mechanisms. Whereas the coarse hard-wiring of the nervous system appears to rely on molecular recognition events between the neuron, its pathway, and its target, the establishment of precisely patterned functional circuits is thought to be driven by neuronal activity. In this review we discuss the role that the neuronal cell adhesion molecule (NCAM) plays in morphological plasticity. Recent studies on NCAM and its probable species homologue in Aplysia (apCAM) suggests that an individual CAM can function to both promote synaptic plasticity and maintain the structure of the synapse. In the adult brain, changes between stability and plasticity are likely to underlie dynamic morphological changes in synaptic structures associated with learning and memory. In this review we use NCAM as an example to illustrate mechanisms that can change the function of an individual CAM from a molecule that promotes plasticity to one that does not. We also discuss evidence that NCAM promotes plasticity by activating a conventional signal transduction cascade, rather than by modulating adhesion per se. Finally, we consider the evidence that supports a role for NCAM in learning and memory.

Animals↗

Synaptic clefts are made to be crossed: neurotransmitter signaling in the central nervous system.

The primary means of communication between neurons in the mammalian central nervous system (CNS) is via release of chemical transmitters. Although the first transmitters to be discovered were the biogenic amines, such as acetylcholine and norepinephrine, involved in transmission in the autonomic nervous system, the contribution of other types of transmitters, such as amino acids and peptides, to CNS transmission has been the subject of recent study. Part of this interest stems from the relatively large percentage of neuronal connections that make use of amino acid transmitters such as gamma-aminobutyric acid and glutamate and also from the tremendous diversity possible when peptides are used as transmitters. Several disorders of CNS transmission are related to the degeneration of neuronal pathways in the brain. Two of the most prevalent neurologic disorders that result from degeneration are Alzheimer's and Parkinson's diseases. Aspects of these disorders related to chemical neurotransmission are discussed, along with implications with regard to therapeutic strategies. Functions of and possible abnormalities in amino acid transmission that may be associated with CNS disorders are examined. Several peptides are postulated to play a role in neurotransmission and concepts regarding the significance of the coexistence and release of biogenic amines and peptides at the same neuronal terminals are presented.

Animals↗

Functional connectivity in the thalamus and hippocampus studied with functional MR imaging.

BACKGROUND AND PURPOSE: With functional connectivity functional MR imaging, co-variance in signal intensity has been shown in functionally related regions of brain in participants instructed to perform no cognitive task. These changes are thought to represent synchronous fluctuations in blood flow, which imply neuronal connections between the regions. The purpose of this study was to map functional connectivity in subcortical nuclei with functional connectivity functional MR imaging. METHODS: Imaging data were acquired with an echo-planar sequence from six volunteers who performed no specific cognitive task. For functional connectivity functional MR imaging, a "seed" voxel or group of voxels was selected from the resting data set in the thalamus or in the hippocampus. Control voxels in gray matter presumed not to be eloquent cortex were also chosen. The correlation coefficient of the seed voxels and the control voxels with every other voxel in the resting data set was calculated. The voxels with correlation coefficients greater than or equal to 0.5 were mapped onto anatomic images for the functional connectivity functional MR images. The anatomic location of these voxels was determined by conventional parcellation methods. RESULTS: For each participant, functional connectivity functional MR imaging maps based on four seed voxels in the thalamus or hippocampus showed clusters of voxels in the ipsilateral and contralateral thalamus or hippocampus. For control voxels, few voxels in the hippocampus or thalamus showed significant correlation. Significantly more pixels in the ipsilateral hippocampus correlated with the seed voxel than in the contralateral hippocampus. The differences between numbers of functionally connected voxels in ipsilateral thalamus and those in contralateral thalamus were not significant. CONCLUSIONS: The thalamus and hippocampus show functional connectivity, presumably representing synchronous changes in blood flow.

Adult↗

Zebrafish touch-insensitive mutants reveal an essential role for the developmental regulation of sodium current.

Developmental changes in neuronal connectivity and membrane properties underlie the stage-specific appearance of embryonic behaviors. The behavioral response of embryonic zebrafish to tactile stimulation first appears at 27 hr postfertilization. Because the touch response requires the activation of mechanosensory Rohon-Beard neurons, we have used whole-cell recordings in semi-intact preparations to characterize Rohon-Beard cell electrical membrane properties in several touch-insensitive mutants and then to correlate the development of excitability in these cells with changes in wild-type behavior. Electrophysiological analysis of mechanosensory neurons of touch-insensitive zebrafish mutants indicates that in three mutant lines that have been examined the sodium current amplitudes are reduced, and action potentials either have diminished overshoots or are not generated. In macho mutants the action potential never overshoots, and the sodium current remains small; alligator and steifftier show similar but weaker effects. The effects are specific to sodium channel function; resting membrane potentials are unaffected, and outward currents of normal amplitude are present. Developmental analysis of sodium current expression in mechanosensory neurons of wild-type embryos indicates that, during the transition from a touch-insensitive to a touch-sensitive embryo, action potentials acquire larger overshoots and briefer durations as both sodium and potassium currents increase in amplitude. However, in macho touch-insensitive mutants, developmental changes in action potential overshoot and sodium current are absent despite the normal regulation of action potential duration and potassium current. Thus, the maturation of a voltage-dependent sodium current promotes a behavioral response to touch. A study of these mutants will allow insight into the genes controlling the maturation of the affected sodium current.

Action Potentials↗

Localized synaptic actions of neurotrophin-4.

Neurotrophins secreted by the postsynaptic target cell may participate in activity-dependent synaptic modification during development and in the mature brain. A fundamental question of how neurotrophins can sculpt synaptic connections is whether neurotrophin-induced synaptic changes are spatially restricted to the site of neurotrophin secretion or whether they can spread to neighboring synapses. Using a model system of nerve-muscle coculture in which neurotrophin-4 (NT-4) is overexpressed in a subpopulation of postsynaptic myocytes, we demonstrated that presynaptic potentiation is restricted to synapses on myocytes overexpressing NT-4 without affecting nearby synapses formed by the same neuron on control myocytes. Likewise, postsynaptic modulation of acetylcholine channels by secreted NT-4 is spatially restricted to <60 micron from the site of NT-4 secretion. Therefore, activity-dependent secretion of neurotrophins can result in highly localized modification of neuronal connections.

Animals↗

Motor "binding:" do functional assemblies in primary motor cortex have a role?

In this issue of Neuron, Jackson and colleagues describe a functional correlate of neural synchrony related to movement control. Synchrony strength in cortico-motoneuronal output neurons in primary motor cortex depended upon similarity of these neurons' connectivity pattern with the spinal cord. These results could form the foundation for subsequent investigations of motor binding.

Animals↗

[Quantitative study of the reticular-motor neuronal contacts in the spinal cord of the lampern].

The number and location of contacts which are made by two HRP-labelled motoneurons with the individual Müller axons in lamprey was investigated. Each motoneuron had contacting zones with the ventromedial and ventrolateral Müller axons, but had no contacts with the dorsolateral Müller axon. The contacting zones which were extended for 0.5-27 microns were revealed on the motoneuron dendrites at a distance of 42-195 microns from the soma. Each motoneuron made 1 to 3 contacts with a single Müller axon. The specificity of the structure and function of reticular-motor neuronal connections in the spinal cord of lamprey is discussed.

Animals↗

A cytoarchitectonic atlas of the mouse hypothalamus.

A description of the organization, areas, and cell groups within the hypothalamus of the mouse is presented in detail. Photomicrographs of cell-stained serial sections through the hypothalamus in frontal, sagittal and horizontal planes are included. The hypothalamus has been divided basically into medial and lateral parts with most well-defined cell groups or nuclei lying within the medial subdivision and surrounded by diffuse collections of cells referred to as areas. The heterogenetiy of cell types within most hypothalamic nuclei and areas has been emphasized with the consequent implications for heterogeneity of neuronal connections and of functions. Recently introduced neuroanatomical techniques permitting increased attention to the cellular level of organization have demonstrated precise connections and functional localization of cells within the hypothalamus. While cytoarchitectonic distinctions imply functional distinctions, morphological and experimental evidence suggest the existence also of systems of cells which transcend conventional cytoarchitectonic boundaries, the cells within each system being interconnected functionally or neuronally.

Animals↗

The need for integrating neuronal morphology databases and computational environments in exploring neuronal structure and function.

Neurons connect to each other through a myriad of dendritic and axonal arborisations. Dendritic structures provide the substrate for integration of postsynaptic potentials and control of action potential generation. Axonal structures provide the substrate for action potential dissemination and signalling to target neurons. The morphological complexity of dendritic arborisations is assumed to play a critical role in the transformation of spatio-temporal patterns of postsynaptic potentials into time-structured series of action potentials. Although these transformations lie at the basis of information processing in the brain, it is still far from understood how their details are influenced by dendritic shape. To facilitate research in this area, it is necessary that data on both the morphology and electrical properties of neurons, as well as computational tools for analysis, become available in an integrated way. This requires a combined effort from the fields of informatics and neurosciences (together called neuroinformatics) in order to create data acquisition, databasing and computational tools. Focusing on neuronal morphology, this chapter will give a brief review of the current neuroinformatics developments in both reconstruction techniques, morphological quantification, modeling of morphological complexity, modeling of function and the need for databasing neuronal morphologies. Additionally, one of the dendritic modeling approaches is described in more detail in the Appendix.

Animals↗

Investigation of the complex descending innervation of the dorsal cochlear nucleus in the rat: a transneuronal tract-tracing study using pseudorabies virus.

The afferent neuronal connections of the dorsal cochlear nucleus were investigated in rats by using a trans-synaptic retrograde tract-tracing method. The neurotropic viral tracer, the Bartha strain of the pseudorabies virus was stereotaxically injected into the dorsal cochlear nucleus, ipsilaterally. Neurons, which project directly or indirectly (one or multiple relays by other neurons) to the dorsal cochlear nucleus were infected and visualized by immunohistochemistry. Labeled neurons were found in each components of the auditory pathway, some of the monoaminergic cell groups in the lower brainstem, the hypothalamus and in some limbic areas.

Animals↗

Information transmission and recovery in neural communication channels revisited.

Nerve cells in the brain generate all-or-none electric events-spikes-that are transmitted to other nerve cells via chemical synapses. An important issue in neuroscience is how neurons encode and transmit information using spike trains. Recently, signal transduction through two neurons connected by an excitatory chemical synapse was studied by Eguia et al. [Phys. Rev. E 62, 7111 (2000)]. They reported an apparent violation of the data processing inequality: The mutual information between the input signal and the output of the first neuron can be lower than the mutual information between the input signal and the output of the second neuron, that only receives input from the first neuron. We investigate whether it is possible, using a different method, to retrieve, from the first neuron's spike train, all the information about the input that is present in the second neuron's output. We find that single interspike intervals (ISI's) from the first neuron, at a resolution of 0.5 time units, contain more information about the input signal than those of the second neuron. Using a classification procedure based on the ISI return map, we recover 71% of the input entropy using the first neuron's spike train, and only 42% using the second neuron's spike train. Hence for these spike-train observables the data processing inequality is not violated.

Action Potentials↗

Synaptic connections between identified neuron types in the antennal lobe glomeruli of the cockroach, Periplaneta americana: I. Uniglomerular projection neurons.

A combination of three different labels was used to demonstrate synapses between three types of neurons within the glomeruli: 1) antennal receptor cells, 2) gamma-aminobutyric acid (GABA)-immunoreactive neurons, and 3) uniglomerular projection neurons. Receptor cell axons were experimentally severed and caused to degenerate; uniglomerular projection neurons, a subgroup of glomerular output neurons, were labeled by intracellular horseradish peroxidase (HRP) injection and GABA-containing neurons by postembedding immunogold staining. The following synaptic connections were identified: 1) Receptor cell axons form monosynaptic contacts in a dyadic fashion onto a dendritic process of a uniglomerular projection neuron and in addition onto a GABA-immunoreactive neuron. 2) Receptor cell axons form polysynaptic connections with dendrites of uniglomerular projection neurons via GABA-immunoreactive neurons. 3) GABA-immunoreactive neurons form dyadic output synapses onto receptor cell axons and in addition onto projection neuron dendrites. These findings provide further evidence that signal transfer from receptor cells onto uniglomerular projection neurons is mediated by two different paths: first, a monosynaptic and presumably excitatory route and, second, an inhibitory polysynaptic route via GABAergic, most likely multiglomerular interneurons. The output synapses of GABA-immunoreactive neurons onto both receptor cells and uniglomerular projection neurons are assumed to exert control functions in regulating the neuronal activity within the glomeruli.

Animals↗

Morphodynamic hair bundles arising from sensory cell/supporting cell complexes frequency-tune nematocyst discharge in sea anemones.

Discharge of nematocysts from cnidocytes occurs in response to appropriate chemical and mechanical stimulation. In sea anemone tentacles, activating chemoreceptors for N-acetylated sugars shifts maximal discharge into vibrating targets to low frequencies corresponding to prey movements and induces hair bundles to elongate by approximately 1-2 microns. Until now, only indirect, correlative evidence linked these two events. Using cytochalasin D, we provide evidence that bundle elongation is necessary for the frequency shift. Moreover, we find that only bundles associated with sensory cell/supporting cell complexes elongate with chemosensitization, and not bundles associated with cnidocyte/supporting cell complexes as was previously thought. Cytochemical labeling of sensory cells, purported to be bipolar neurons connected to the nerve net, suggests that sensory cells may interconnect with each other and with cnidocytes. Taken together, these findings are incompatible with the classical view that cnidocytes are independent effectors of nematocyst discharge and, furthermore, implicate the involvement of morphodynamic neurons in fine-tuning vibration-dependent discharge of nematocysts into swimming prey.

Animals↗

Postural interneurons in the abdominal nervous system of lobster. I. Organization, morphologies and motor programs for flexion, extension and inhibition.

Using intracellular recording and dye-filling techniques, a survey of postural interneurons was undertaken by impaling their somata in the 2nd abdominal ganglion of lobster. During the course of study approximately fourty different intersegmental interneurons in this ganglion were sampled. Of these, 8 evoked unique, patterned responses in the postural (superficial) motoneurons; each could be identified morphologically. Five of the 8 interneurons had caudally directed axons; 4 of these projected beyond the 4th abdominal ganglion. The remainder projected rostrally, beyond the 1st abdominal ganglion. The postural interneurons were classified according to the motor program they elicited. Five were flexion producing interneurons (FPIs), one was extension producing (EPI), and two generated only inhibitory motor outputs. All motor responses were bilateral and occurred in several segments, including A2. Two neurons, FPIs 201 and 301, produced the full motor reciprocity that typically is observed when flexion command fibers are stimulated. However, three of the FPIs and the single EPI did not express complete reciprocity in synergistic and antagonistic motoneurons. The results indicate that some interneurons displaying all of the properties of command neurons are located entirely within the abdominal nervous system. The overall organization of posture-evoking interneurons appears to be similar to that found in crayfish, suggesting an even more fundamental homology in the neuronal connectivities of these two species than has been established previously.

Abdomen↗

Computer assisted three-dimensional reconstruction of brain regions from serial section digitized images. Application to the organization of striato-nigral relationships in the rat.

We have developed a software which allows the three-dimensional reconstruction of brain regions from serial section digitized images. This software, which generates wire-frame three dimensional models, requires at least a 486 PC microcomputer running Microsoft Windows (3.x or 95). Mosaics of high resolution images, covering large brain areas, digitized by means of a camera fitted on a microscope equipped with a motorized stage, are handled by our software as single high resolution images. Serial sets of such images may be segmented and manually aligned. We have utilized this software to study the organization of striatal efferences within the substantia nigra pars reticulata, as well as the distribution of neuronal cell bodies within the substantia nigra pars compacta after micro-ionophoretic application of wheat germ agglutinin conjugated to horseradish peroxidase into the orofacial sensorimotor region of the striatum. The three dimensional representation of anterogradely labeled striatal efferences confirmed and determined the lamellar organization previously postulated from serial plane section micrographs. The distribution in the rat brain of retrogradely labeled nigro-striatal cell bodies, which had not yet been studied after injection of tracer into functionally identified regions of the striatum, revealed two subpopulations: a first one rather dense, located in the anterior half of the substantia nigra pars compacta, which was in close register with the striatal efferences, and a second one, much more scattered and less numerous, located in the posterior part of the structure which extended far from the substantia nigra along the medio-lateral axis. Our three dimensional reconstruction software will now be used to study the neuronal connectivity within the basal ganglia and other brain regions.

Animals↗

Modulation of dendritic differentiation by corticotropin-releasing factor in the developing hippocampus.

The interplay of environmental and genetic factors in the developmental organization of the hippocampus has not been fully elucidated. The neuropeptide corticotropin-releasing factor (CRF) is released from hippocampal interneurons by environmental signals, including stress, to increase synaptic efficacy. In the early postnatal hippocampus, we have previously characterized a transient population of CRF-expressing Cajal-Retzius-like cells. Here we queried whether this stress-activated neuromodulator influences connectivity in the developing hippocampal network. Using mice deficient in the principal hippocampal CRF receptor [CRF(1)(-/-)] and organotypic cultures grown in the presence of synthetic CRF, or CRF receptor antagonists, we found robust effects of CRF on dendritic differentiation in hippocampal neurons. In CRF(1)(-/-) mice, the dendritic trees of hippocampal principal cells were exuberant, an effect that was induced in normal hippocampi in vitro by the presence of CRF(1) antagonists. In both cases, total dendritic length and dendritic branching were significantly increased. In contrast, exogenous synthetic CRF blunted the dendritic growth in hippocampal organotypic cultures. Taken together, these findings suggest that endogenous CRF, if released excessively by previous early postnatal stress, might influence neuronal connectivity and thus function of the immature hippocampus.

Animals↗

A hamster model of equine herpesvirus 9 induced encephalitis.

An acute and lethal infection of equine herpesvirus 9 (EHV-9), a new type of equine herpesvirus, was established in Syrian hamsters by intranasal inoculation. Clinical symptoms included the loss of body weight, nasal and ocular discharges and apparent neurological symptoms. Both LD50 and ID50 were equal at 33 plaque forming units. Histological and immunohistochemical examination demonstrated that the virus replicated in the olfactory mucosal cells and in the neurons of the olfactory bulbs, cerebrum and mesencephalon. The induction of encephalitis by intranasal but not by other routes of inoculation (i.v., i.p., i.m.) indicated that EHV-9 entered the brain via the olfactory nerve and then spread trans-synaptically to connecting neurons along the olfactory tract. This animal model should be useful for studying the pathogenesis and neurovirulence of this newly discovered neurotropic virus as well as other neurotropic herpesviruses.

Animals↗

Integrative properties of the Pe1 neuron, a unique mushroom body output neuron.

A mushroom body extrinsic neuron, the Pe1 neuron, connects the peduncle of the mushroom body (MB) with two areas of the protocerebrum in the honeybee brain, the lateral protocerebral lobe (LPL) and the ring neuropil around the alpha-lobe. Each side of the bee brain contains only one Pe1 neuron. Using a combination of intracellular recording and neuroanatomical techniques we analyzed its properties of integrative processing of the different sensory modalities. The Pe1 neuron responds to visual, mechanosensory, and olfactory stimuli. The responses are broadly tuned, consisting of a sustained increase of spike frequency to the onset and offset of light flashes, to horizontal and vertical movements of extended objects, to mechanical stimuli applied to the antennae or mouth parts, and to all olfactory stimuli tested (29 chemicals). These multisensory properties are reflected in its dendritic organization. Serial reconstructions of intracellularly stained Pe1 neurons using confocal microscopy reveal that the Pe1 neuron arborizes throughout all layers of MB peduncle with finger-like, vertically oriented dendrites. The peduncle of the MB is formed by the axons of Kenyon cells, whose dendritic inputs are organized in modality-specific subcompartments of the calyx region. The peduncular arborization indicates that the Pe1 neuron receives input from Kenyon cells of all calycal subcompartments. Because the Pe1 neuron changes its odor responses transiently as a consequence of olfactory learning, we hypothesize that the multimodal response properties might have a role in memory consolidation and help to establish contextual references in the long-term trace.

Adaptation, Physiological↗