Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Target plasticity”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 379 records · Page 21Linked to original sources

Protein targeting in the analysis of learning and memory: a potential alternative to gene targeting.

Gene targeting using homologous recombination in embryonic stem (ES) cells offers unprecedented precision with which one may manipulate single genes and investigate the in vivo effects of defined mutations in the mouse. Geneticists argue that this technique abrogates the lack of highly specific pharmacological tools in the study of brain function and behavior. However, by now it has become clear that gene targeting has some limitations too. One problem is spatial and temporal specificity of the generated mutation, which may appear in multiple brain regions or even in other organs and may also be present throughout development, giving rise to complex, secondary phenotypical alterations. This may be a disadvantage in the functional analysis of a number of genes associated with learning and memory processes. For example, several proteins, including neurotrophins--cell-adhesion molecules--and protein kinases, that play a significant developmental role have recently been suggested to be also involved in neural and behavioral plasticity. Knocking out genes of such proteins may lead to developmental alterations or even embryonic lethality in the mouse, making it difficult to study their function in neural plasticity, learning, and memory. Therefore, alternative strategies to gene targeting may be needed. Here, we suggest a potentially useful in vivo strategy based on systemic application of immunoadhesins, genetically engineered fusion proteins possessing the Fc portion of the human IgG molecule and, for example, a binding domain of a receptor of interest. These proteins are stable in vivo and exhibit high binding specificity and affinity for the endogenous ligand of the receptor, but lack the ability to signal. Thus, if delivered to the brain, immunoadhesins may specifically block signalling of the receptor of interest. Using osmotic minipumps, the protein can be infused in a localized region of the brain for a specified period of time (days or weeks). Thus, the location and timing of delivery are controlled. Here, we present methodological details of this novel approach and argue that infusion of immunoadhesins will be useful for studying the role particular receptors play in behavioral and neural plasticity.

Animals↗

Enhanced group II mGluR-mediated inhibition of pain-related synaptic plasticity in the amygdala.

BACKGROUND: The latero-capsular part of the central nucleus of the amygdala (CeLC) is the target of the spino-parabrachio-amygdaloid pain pathway. Our previous studies showed that CeLC neurons develop synaptic plasticity and increased neuronal excitability in the kaolin/carrageenan model of arthritic pain. These pain-related changes involve presynaptic group I metabotropic glutamate receptors (mGluRs) and postsynaptic NMDA and calcitonin gene-related peptide (CGRP1) receptors. Here we address the role of group II mGluRs. RESULTS: Whole-cell current- and voltage-clamp recordings were made from CeLC neurons in brain slices from control rats and arthritic rats (>6 h postinjection of kaolin/carrageenan into the knee). Monosynaptic excitatory postsynaptic currents (EPSCs) were evoked by electrical stimulation of afferents from the pontine parabrachial (PB) area. A selective group II mGluR agonist (LY354740) decreased the amplitude of EPSCs more potently in CeLC neurons from arthritic rats (IC50 = 0.59 nM) than in control animals (IC50 = 15.0 nM). The inhibitory effect of LY354740 was reversed by a group II mGluR antagonist (EGLU) but not a GABAA receptor antagonist (bicuculline). LY354740 decreased frequency, but not amplitude, of miniature EPSCs in the presence of TTX. No significant changes of neuronal excitability measures (membrane slope conductance and action potential firing rate) were detected. CONCLUSION: Our data suggest that group II mGluRs act presynaptically to modulate synaptic plasticity in the amygdala in a model of arthritic pain.

Amygdala↗

Peripheral blood mononuclear cell-mediated cytolytic activity during cytomegalovirus (CMV) infection of guinea pigs.

Inbred Strain-2 guinea pigs exhibited endogenous peripheral blood mononuclear cell (PBMC)-mediated cytolytic activity against xenogeneic MA104 targets and guinea pig cytomegalovirus (gpCMV)-infected syngeneic and allogeneic targets. This endogenous cytolysis was unaffected by monoclonal T-cell antibody depletion but was diminished by removal of plastic adherent cells. In nonadherent effector populations, cytolysis was mediated predominately by large granular lymphocytes (LGL). During gpCMV infection, cytolysis of both target types was augmented (MA 104 for 3 weeks and gpCMV targets for 10-14 weeks). Augmented cytolysis of gpCMV targets was MHC-unrestricted and was diminished by removal of plastic adherent cells or monoclonal antibody depletion of T-cells, being found largely in LGL enriched populations. A role for this augmented activity in limiting gpCMV infection in inbred guinea pigs is suggested by the temporal association of augmented cytolysis of gpCMV targets with the cessation of viremia and clinical recovery.

Animals↗

Polarized epithelial membrane traffic: conservation and plasticity.

Most cells are polarized and have distinct plasma membrane domains, which are the result of polarized trafficking of proteins and lipids. Great progress has been made in elucidating the highly conserved polarized targeting machinery. A pre-eminent challenge now is to understand the plasticity of polarized traffic, how it is altered by differentiation and dedifferentiation during development, as well as the adaptation of differentiated cells to meet changing physiological needs.

Animals↗

The endosomal protein NEEP21 regulates AMPA receptor-mediated synaptic transmission and plasticity in the hippocampus.

The neuron-enriched endosomal protein 21 (NEEP21) has recently been implicated in the regulation of AMPA receptor (AMPAR) trafficking and proposed to participate in the control of synaptic strength. We tested here this possibility at CA3-CA1 synapses in hippocampal slice cultures using antisense-mediated down-regulation of NEEP21 expression or transfection of a fragment of the cytosolic domain of NEEP21. We found that NEEP21 suppression or expression of the dominant-negative fragment reduced spontaneous and evoked AMPAR-mediated synaptic currents without affecting presynaptic properties. The effect specifically resulted from a reduction of currents mediated by AMPA as opposed to NMDA receptors. Blockade of endocytosis, using a peptide interfering with dynamin, revealed a progressive increase of AMPAR responses due to receptor accumulation in control cells, but not following NEEP21 suppression or expression of the fragment. Also, the enhanced receptor cycling induced by bath application of NMDA resulted in a depression that was enhanced following interference with NEEP21 function. Finally, LTP induction, which involves expression of new synaptic receptors, was abolished in NEEP21-depleted cells or cells expressing the dominant-negative fragment. Together, we conclude that NEEP21 contributes to the regulation of synaptic transmission and plasticity in slice cultures by affecting the recycling and targeting of AMPA receptors to the synapse.

Animals↗

Change in the shape and density of dendritic spines caused by overexpression of acidic calponin in cultured hippocampal neurons.

Dendritic spines are morphing structures believed to provide a cellular substrate for synaptic plasticity. It has been suggested that the actin cytoskeleton is the target of molecular mechanisms regulating spine morphology. Here we hypothesized that acidic calponin, an actin-binding protein, is one of the key regulators of actin filaments during spine plasticity. Our data showed that the overexpression of acidic calponin-GFP (green fluorescent protein) in primary cultures of rat hippocampal neurons causes an elongation of spines and an increase of their density as compared with those of GFP-expressing neurons. These effects required the actin-binding domains of acidic calponin. The close apposition of the presynatic marker synaptophysin to these long spines and the presence of specific postsynaptic markers actin, PSD-95, NR1, and GluR1 suggested the existence of functional excitatory synaptic contacts. Indeed, electrophysiological data showed that the postsynaptic overexpression of acidic calponin enhanced the frequency of miniature excitatory postsynaptic currents as compared with that of GFP-expressing neurons, but did not affect their properties such as amplitude, rise time, and half width. Studies in heterologous cells revealed that acidic calponin reorganized the actin filaments and stabilized them. Taken together, these findings show that acidic calponin regulates dendritic spine morphology and density, likely via regulation of the actin cytoskeleton reorganization and dynamic. Furthermore, the acidic calponin-induced spines are able to establish functional glutamatergic synapses. Such data suggest that acidic calponin is a key factor in the regulation of spine plasticity and synaptic activity.

Actins↗

Brain plasticity and functional losses in the aged: scientific bases for a novel intervention.

Aging is associated with progressive losses in function across multiple systems, including sensation, cognition, memory, motor control, and affect. The traditional view has been that functional decline in aging is unavoidable because it is a direct consequence of brain machinery wearing down over time. In recent years, an alternative perspective has emerged, which elaborates on this traditional view of age-related functional decline. This new viewpoint--based upon decades of research in neuroscience, experimental psychology, and other related fields--argues that as people age, brain plasticity processes with negative consequences begin to dominate brain functioning. Four core factors--reduced schedules of brain activity, noisy processing, weakened neuromodulatory control, and negative learning--interact to create a self-reinforcing downward spiral of degraded brain function in older adults. This downward spiral might begin from reduced brain activity due to behavioral change, from a loss in brain function driven by aging brain machinery, or more likely from both. In aggregate, these interrelated factors promote plastic changes in the brain that result in age-related functional decline. This new viewpoint on the root causes of functional decline immediately suggests a remedial approach. Studies of adult brain plasticity have shown that substantial improvement in function and/or recovery from losses in sensation, cognition, memory, motor control, and affect should be possible, using appropriately designed behavioral training paradigms. Driving brain plasticity with positive outcomes requires engaging older adults in demanding sensory, cognitive, and motor activities on an intensive basis, in a behavioral context designed to re-engage and strengthen the neuromodulatory systems that control learning in adults, with the goal of increasing the fidelity, reliability, and power of cortical representations. Such a training program would serve a substantial unmet need in aging adults. Current treatments directed at age-related functional losses are limited in important ways. Pharmacological therapies can target only a limited number of the many changes believed to underlie functional decline. Behavioral approaches focus on teaching specific strategies to aid higher order cognitive functions, and do not usually aspire to fundamentally change brain function. A brain-plasticity-based training program would potentially be applicable to all aging adults with the promise of improving their operational capabilities. We have constructed such a brain-plasticity-based training program and conducted an initial randomized controlled pilot study to evaluate the feasibility of its use by older adults. A main objective of this initial study was to estimate the effect size on standardized neuropsychological measures of memory. We found that older adults could learn the training program quickly, and could use it entirely unsupervised for the majority of the time required. Pre- and posttesting documented a significant improvement in memory within the training group (effect size 0.41, p<0.0005), with no significant within-group changes in a time-matched computer using active control group, or in a no-contact control group. Thus, a brain-plasticity-based intervention targeting normal age-related cognitive decline may potentially offer benefit to a broad population of older adults.

Aged↗

Introduction to olfactory neuroepithelium.

Among the five senses, the sense of smell (olfaction) is the most sensitive and emotional window on the outside world (Stern and Marx, 1999). The olfactory system recognizes and discriminates myriad odorants of diverse molecular structures. What makes the olfactory system so specific and sensitive? OE harboring the olfactory receptor neurons (ORNs) also has an another unusual characteristic ability that fascinates scientists. Neurogenesis in this tissue continues throughout lifetime. This unique character provides an elegant model to study neurogenesis and neuronal plasticity, since neuronal birth, differentiation, survival, axon pathfinding, target recognition, synapse formation, and cell death can be examined in the mature OE. This special issue of Microscopic Research and Technique presents the recent developments in this exciting field of neuroscience, "structure and function of olfactory neuroepithelium."

Cell Death↗

Triboelectrification of pharmaceutical powders by particle impact.

Pharmaceutical powders are very prone to electrostatic charging by colliding and sliding contacts with walls and other particles. In pharmaceutical formulation processes, particle charging is often a nuisance and can cause problems in the manufacture of products, such as affecting powder flow, and reducing fill and dose uniformity. For a fundamental understanding of the powder triboelectrification, it is essential to study charge transfer due to a single contact of a particle with a target plane under well-defined physical, mechanical and electrical conditions. In this study, charge transfer due to a single impact of a particle against a stainless steel target was measured for alpha-lactose monohydrate, aspirin, sugar granules and ethylcellulose. The amount of transferred charge is expressed as a function of impact velocity and impact angle as well as the initial charge. The maximum contact area during impact between a particle and a target plane is estimated by an elastic-plastic deformation model. It is found that the transferred charge is a linear function of the contact area. For a given material, there is an initial particle charge for which no charge transfer occurs due to impact. This is found to be independent of impact velocity and angle, and is hence viewed as a characteristic property, which is related to the contact potential difference and tribo-electric series of the sample powders.

Chemistry, Pharmaceutical↗

Screening of high cytotoxic tumor killer cells using a sensitive adherent target detachment assay.

Screening of high cytotoxic tumor killer cells is of great importance in adoptive immunotherapy. Here, we describe a more sensitive assay, as compared to traditional 51Cr- or Calcein-release assay, to measure cytolytic activity of killer cells. This adherent target detachment (ATD) assay is carried out in microwells of Terasaki tissue culture trays using adherent tumor cells as targets. Target tumor cells are seeded at the concentration of 300-400 cells/well and incubated overnight to allow for the adhesion of cells to the plastic surface of the wells. Effector cells were added at various effector: target (E:T) ratios, and incubated for 24 h. During incubation, dead target cells became nonadherent and together with the added effector cells were removed by washing. The remaining viable adherent target cells were stained with acrydine orange contained in the quencher and optically counted by microcomputer. A notable dose-dependent killing on target tumor cells was reproducibly obtained by tested effector cells. Cytotoxic activities of most effector cells were significantly higher in the 24-h ATD assay than those of concordant 4-h target cell lysis test. Chloroquine (chq) inhibition test in the 24-h ATD assay showed negative or weak inhibition on cytotoxicity against adherent targets. Linear regression analysis also manifested the lack of a close correlation between 4- and 24-h target cell lysis tests, indicating these two assays measured different killing activities of the same effector cells. Because of its high sensitivity and reproducibility, this semiautomatic 24-h assay with computerized fluorescence measurement system could serve as a sensitive screening assay to select high cytotoxic tumor killer cells in adoptive immunotherapy.

Cell Adhesion↗

Effect of oxatomide on T-cell activation and the production of interferon-gamma in mite sensitive asthma.

Interleukin-2 responsiveness of lymphocytes induced by Dermatophagoides farinae antigen was suppressed upon exposure to 20 to 2000 ng/ml of oxatomide for 24 h in a dose-related manner in children with mite-sensitive bronchial asthma. Suppression was greater in the plastic-adherent antigen-presenting cells than in the T-cells. Oxatomide suppressed the production of interleukin-1alpha induced by Dermatophagoides farinae antigen in plastic-adherent cells. These results indicate that the target cells of oxatomide are antigen-presenting cells and not T-cells. Oxatomide also suppressed interleukin-2 responsiveness in lymphocytes exposed to purified protein derivative, but not in those exposed to concanavalin A. Unlike its effect on cell proliferation, oxatomide potentiated the Dermatophagoides farinae-induced production of interferon-gamma, which was suppressed by stimulation with Dermatophagoides farinae antigen in lymphocytes from the patients. In contrast, production of interferon-gamma induced by concanavalin A was not affected by this drug. These results indicate that oxatomide suppresses interleukin-2 responsiveness of allergen-activated helper T-cells and increases the production of interferon-gamma induced by Dermatophagoides farinae antigen, without causing cell proliferation.

Animals↗

Putting smell on the map.

The vertebrate olfactory system must cope with a staggering developmental problem: how to connect millions of olfactory neurons expressing different odorant receptors to appropriate targets in the brain. Recent studies demonstrate remarkable plasticity in integrating novel olfactory neurons into this circuitry.

Animals↗

The acquisition of anti-influenza virus activity by macrophages.

Exposure of resident peritoneal macrophages or thioglycollate-induced macrophages (TG-Mø) to influenza or Sendai virus-infected spleen cell culture supernatants (MAS) resulted in macrophage activation. When normal resident macrophages were used as effector cells, both infected P815 and L929 cells were lysed in the presence of MAS. MAS-activated TG-Mø also lysed influenza virus-infected L929 cells. Histocompatibility between effector cells and target cells was not required for target cell destruction. The effector cells were plastic-adherent, phagocytic and Ia-. MAS-activated macrophages were also resistant to influenza virus infection in vitro. Both infectious and non-infectious preparations of influenza or Sendai virus preparations were effective at generating MAS. The mediator(s) which renders macrophages to become cytotoxic and resistant to infection was acid-stable, heat-labile (56 degrees C, 30 min; or 100 degrees C, 5 min), and the activity was neutralized by sheep antimouse type 1 interferon (IFN).

Animals↗

Labile DNA sequences in flax identified by combined sample representational difference analysis (csRDA).

Flax (Linum usitatissimum) has a genome in which changes have been associated with environmental factors. The inbred flax variety, Stormont Cirrus (Pl), served as the parent, and several lines (termed genotrophs) were derived from this parent. The phenotypes of the genotrophs were stable in a number of different growth environments, unlike the original Pl line in which changes associated with environmental factors continued to occur. These genotrophs differed from the original line in a number of characteristics, but the only known phenotypic characteristic that is shared by all the genotrophs and different from the parental, Pl, line is the lack of changes associated with the original environmental factors. However, some of these genotrophs have changed in both phenotype and nuclear DNA subsequent to their original growth and differentiation from Pl. Representational difference analysis (RDA) has been used to identify differences between Pl and all the genotrophs in an attempt to identify the loci controlling these aspects of plasticity. Subtractions between Pl DNA as a tester (target) and one of the genotrophs (individual RDA) or a mixture of different types of genotroph (L6, S6, C2, and LH) DNAs as a driver were done (combined sample RDA; csRDA). In addition, contrary RDA, where of the genotroph DNA was used as a tester and Pl DNA as a driver, was also executed. Three difference clones (163-4-2, 123-5-2, and 163-13), from 74 primary clones obtained after three rounds of subtractions with Pl DNA as tester were further characterized. In addition, 2 difference products (213-r1 and 213-r9) were characterized from contrary RDA. The clones 163-4-2 and 163-13 from the csRDA showed polymorphisms between Pl and all the genotrophs when PCR was done with primers derived from sequences of the clones, but only the clone 163-13 polymorphism was confirmed by Southern blot analysis. Four of 5 clones (163-4-2, 123-5-2, 163-13 and 213-r9) that have been characterized appear to be associated with structural changes in the DNA. From the contrary csRDA, it was observed that no clones could be recovered from subtractions between a mixture of genotrophs as a tester and Pl as a driver, and several possible explanations have been proposed.

Blotting, Southern↗

Dopamine controls the firing pattern of dopamine neurons via a network feedback mechanism.

Changes in the firing pattern of midbrain dopamine neurons are thought to encode information for certain types of reward-related learning. In particular, the burst pattern of firing is predicted to result in more efficient dopamine release at target loci, which could underlie changes in synaptic plasticity. In this study, the effects of dopamine on the firing patterns of dopaminergic neurons in vivo and their electrophysiological characteristics in vitro were examined by using a genetic dopamine-deficient (DD) mouse model. Extracellular recordings in vivo showed that, although the firing pattern of dopamine neurons in normal mice included bursting activity, DD mice recordings showed only a single-spike pattern of activity with no bursts. Bursting was restored in DD mice after systemic administration of the dopamine precursor, L-3,4-dihydroxyphenylalanine (L-dopa). Whole-cell recordings in vitro demonstrated that the basic electrophysiology and pharmacology of dopamine neurons were identical between DD and control mice, except that amphetamine did not elicit a hyperpolarizing current in slices from DD mice. These data suggest that endogenously released dopamine plays a critical role in the afferent control of dopamine neuron bursting activity and that this control is exerted via a network feedback mechanism.

Amphetamine↗

Molecular design of the N-methyl-D-aspartate receptor binding site for phencyclidine and dizolcipine.

The N-methyl-D-aspartate receptor (NMDAR), a pivotal entity for synaptic plasticity and excitotoxicity in the brain, is a target of psychotomimetic drugs such as phencyclidine (PCP) and dizolcipine (MK-801). In contrast, a related glutamate receptor, the alpha-amino-3-hydroxy-5-methyl-4-isoxazole propionate/kainate receptor GluR1, is weakly sensitive to these drugs. Three point mutations on GluR1, mimicking homologous residues on the NMDAR, confer the PCP and MK-801 blockade properties that are characteristic of the NMDAR--namely, high potency, voltage dependence, and use dependence. The molecular determinants that specify the PCP block appear confined to the putative M2 transmembrane segment, whereas the sensitivity to MK-801 requires an interplay between residues from M2 and M3. Given the plausible involvement of the NMDAR in the etiology of several neurodegenerative diseases and in excitotoxic neuronal cell death, tailored glutamate receptors with specific properties may be models for designing and screening new drugs targeted to prevent glutamate-mediated neural damage.

Amino Acid Sequence↗

Both p140(trk) and p75(NGFR) nerve growth factor receptors mediate nerve growth factor-stimulated calcium uptake.

Human p140(trk) and p75(NGFR) were transfected separately into 3T3 cells. Nerve growth factor stimulates calcium uptake into both transfectants but not into untransfected 3T3 cells. p140(trk) cells were stimulated maximally by 25 ng/ml; 100 ng/ml was submaximal for p75(NGFR) cells. K-252a inhibits the effect of NGF on p140(trk) cells but not on p75(NGFR) cells; brain-derived neurotrophic factor stimulates calcium uptake in p75(NGFR) cells but not in p140(trk) cells. The data suggest that both nerve growth factor receptors could be involved in the nerve growth factor-mediated actions of calcium on its target cells: neuronal survival, neuronal protection, and synaptic plasticity.

3T3 Cells↗

Assessing the welfare consequences of providing litter for feed-restricted broiler breeders.

1. Broiler breeder females were fed restricted allocations of a standard wheat-soy ration to meet target body weights. They were housed on raised plastic slotted floors (S) or wood shavings litter (L) from hatch to 8 weeks when each pen of 12 birds was transferred to another pen in the same block in a 2 x 2 factorial experiment (LL, LS, SL and SS). Measures of bird welfare were taken at 4 weeks of age, and at 9 and 10 weeks following transfer to the new pens. 2. At 4 weeks of age, birds reared on S spent more time standing, pecking the feeder, the wall and other birds and less time pecking the floor compared with those on L. Gentle feather pecks, strong feather pecks and strong feather pulls were more common in S than L. 3. Mean body weight was higher and coefficient of variation lower in birds on L than S at the end of the experiment. Feather loss and damage scores at 10 weeks were higher for birds reared from hatch to 8 weeks on S. 4. Birds that were reared on S continued to peck more at the pen walls after transfer to new pens but there was no other carry-over effect on behaviour. Birds on S at 9 and 10 weeks pecked more at the walls and less often at the floor, and rested less often. There was more feather pecking on S than on L in the second week post transfer. 5. Tonic immobility was greater and plasma corticosterone concentrations were lower at the end of the experiment in birds on L than S at 9 and 10 weeks of age. The heterophil-lymphocyte ratio was similar between treatments at 4 weeks and after the birds were moved to a new pen. 6. The results are consistent with the view that litter and wall pecking has de-arousing properties and that this activity is re-directed foraging that diminishes the stress of feed restriction.

Animal Welfare↗