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R G Wiley

Publications and source records attributed to R G Wiley.

At least 91 records · Page 5Linked to original sources

Complete and selective cholinergic denervation of rat neocortex and hippocampus but not amygdala by an immunotoxin against the p75 NGF receptor.

The immunotoxin 192 IgG-saporin, produced by coupling the ribosome-inactivating protein saporin to the monoclonal 192 IgG antibody against the low-affinity p75 NGF receptor (NGFr), was injected into the cerebral ventricle, septal area, and substantia innominata of adult rats. Injections into the cerebral ventricle induced a complete loss of NGFr-positive basal forebrain neurons and their axons. Extensive loss of cholinergic neurons was found in the septum, diagonal band, and magnocellular preoptic nucleus but not in the nucleus basalis-substantia innominata complex, where many cholinergic, presumably NGFr-negative, neurons remained intact. Cholinergic fibers were completely lost in the neocortex and hippocampus, showed some preservation in allocortical areas, and showed only minor loss in the amygdala. The NGFr-positive cholinergic basal forebrain neurons progressively degenerated during the first 5 d and did not recover after 180 d. The effect of intraventricular 192 IgG-saporin injections on NGFr-positive basal forebrain neurons could be blocked by simultaneous intraventricular injection of colchicine. Intraparenchymal injections into the septal area or substantia innominata damaged cholinergic neurons mainly around the injection sites and reduced their respective cortical and hippocampal projections. Noncholinergic septal neurons containing parvalbumin and noncholinergic neurons containing calbindin-D28k or NADPHd, which were adjacent to cholinergic nucleus basalis-substantia innominata neurons, were not affected by 192 IgG-saporin. The ChAT immunoreactivity in cortical interneurons, habenula, and brainstem was unchanged. Dopaminergic and noradrenergic cortical afferents remained intact. 192 IgG-saporin damaged two neuronal groups outside the basal forebrain that express the p75 NGF receptor: NGFr-positive cerebellar Purkinje cells after intraventricular injection and cholinergic striatal interneurons after injections into the substantia innominata. These results indicate that the immunotoxin 192 IgG-saporin induces a complete and selective lesion of NGFr-positive cholinergic basal forebrain neurons projecting to hippocampus and neocortex.

Acetylcholinesterase↗

A selective lesion of striatonigral neurons decreases presynaptic binding of [3H]hemicholinium-3 to striatal interneurons.

We have used the suicide transport agent, volkensin, to produce selective lesions of striatal efferent neurons projecting to the substantia nigra in the rat. In order to evaluate potential trans-synaptic effects, we examined cholinergic interneurons intrinsic to the striatum following destruction of striatonigral projection neurons by nigral injection of volkensin. There was no change in the number of large interneurons identified either by Nissl stain or by immunocytochemistry for choline acetyltransferase, indicating that volkensin was not directly toxic to this group of neurons. However, [3H]hemicholinium-3 binding to the choline re-uptake site on the presynaptic cholinergic terminals decreased. No change in [3H]hemicholinium-3 binding was seen after destruction of dopaminergic afferents with 6-hydroxydopamine. Striatonigral afferents to the cholinergic interneurons contain substance P which has been shown to stimulate acetylcholine release. The decrease in [3H]hemicholinium-3 binding may reflect loss of this afferent input. However, striatonigral neurons are an efferent target of the cholinergic interneuron as well, and a presynaptic effect due to loss of target neurons also may contribute.

Animals↗

Differential effects of suicide transport lesions of the striatonigral or striatopallidal pathways on subsets of striatal neurons.

In the basal ganglia, centrally active suicide transport agents produce apparently selective lesions of the striatopallidal and striatonigral pathways based on receptor binding and neuropeptide mRNA studies. In the present study we sought to determine the selectivity of suicide transport lesions for specific subsets of striatal neurons. Using immunohistochemical methods, the neostriata of adult rats were examined 10 days after an injection of volkensin into the substantia nigra or an injection of OX7-saporin into the globus pallidus. Ricin, a suicide transport agent active in the peripheral but not the central nervous system, was injected into each target as a control. Adjacent sections were processed for (1) Nissl stain to assess neuronal density, both overall and for large interneurons, (2) NADPH-diaphorase (NADPH-d) histochemistry, to mark medium-sized aspiny interneurons, (3) enkephalin immunocytochemistry, to label striatopallidal neurons, or (4) substance P immunocytochemistry, to label striatonigral neurons. Ricin injections produced no change in the densities of these subsets of striatal cells. In animals receiving volkensin or OX7-saporin injections, analyses of Nissl material revealed that the striata ipsilateral to the toxin injections appeared normal and did not exhibit shrinkage or gliosis; however, a quantitation analysis revealed a moderate decrease in cell density (12-16% loss, P < 0.01). The densities of both large and NADPH-d-containing striatal interneurons were unchanged after lesions in either target. Following nigral injections with volkensin, the density of striatal substance P-labeled cells decreased (26% loss, P < 0.01), while the density of enkephalin-labeled cells did not decrease significantly (11% decrease, P > 0.1). After pallidal injections with OX7-saporin, the density of striatal enkephalin-labeled cells decreased (20% loss, P < 0.01), while that of substance P-labeled cells remained unchanged. These data show that nigral volkensin and pallidal OX7-saporin injections differentially lesion striatonigral and striatopallidal projection neurons and spare striatal interneurons. This study provides further evidence for the selectivity, specificity, and utility of suicide transport agents to study brain structure and function.

Animals↗

The time course of changes in D1 and D2 receptor binding in the striatum following a selective lesion of striatonigral neurons.

The suicide transport agent volkensin was used to produce a selective lesion of striatonigral projection neurons and the time course of changes in binding at striatal D1 and D2 receptors analyzed. Both show a time-dependent decrease with two-thirds of the total change occurring within the first 10 days and a greater decrease in D1 receptor density at all time points. Our results confirm selective localization of D1 receptors to striatonigral neurons and are consistent with localization of some striatal D2 receptors to striatonigral neurons.

Animals↗

A continuing signal maintains NGF receptor expression in hypoglossal motor neurons after crush injury.

Inhibition of axonal transport by vincristine applied to hypoglossal nerves 7 days after crush injury turns off the usual injured-induced expression of low affinity nerve growth factor receptor (p75NGFr). Vincristine applied proximal but not distal to the crush prevents p75NGFr induction. These results indicate that a continuing signal is axonally transported from the crush site that induces and maintains p75NGFr expression by injured motor neurons.

Animals↗

Localization of striatal excitatory amino acid binding site subtypes to striatonigral projection neurons.

Quantitative autoradiography was used to examine the cellular localization of excitatory amino acid binding sites in the striatum following selective lesion of striatonigral projection neurons. Degeneration of striatonigral neurons was induced unilaterally by injection of the suicide transport toxin, volkensin, into the left substantia nigra. Twelve days following nigral volkensin injection there was a reduction of all excitatory amino acid binding site subtypes in the striatum ipsilateral to the injected nigra. The reduction in N-methyl-D-aspartate (NMDA) binding sites was significantly greater than the loss of D,L-alpha-amino-3-hydroxy-5-methylisoxazole-4-proprionic acid (AMPA), kainate and metabotropic binding. These results indicate that there are NMDA, AMPA, metabotropic and kainate binding sites on striatonigral projection neurons and suggest that the NMDA subtype may be selectively enriched on striatonigral neurons.

Animals↗

Changes in D2 but not D1 receptor binding in the striatum following a selective lesion of striatopallidal neurons.

We have used the immunotoxin OX7/saporin, a suicide transport agent, to selectively lesion striatopallidal neurons. Following injection of OX7/saporin into the globus pallidus, in situ hybridization for preproenkephalin mRNA was examined in the striatum to confirm successful retrograde neurotoxicity. Comparison of D1 and D2 receptor binding in the striatum demonstrated that D2 but not D1 receptor binding sites are localized to striatopallidal neurons.

Animals↗

Specificity of 192 IgG-saporin for NGF receptor-positive cholinergic basal forebrain neurons in the rat.

A monoclonal antibody to the rat nerve growth factor (NGF) receptor, 192 IgG, accumulates bilaterally and specifically in cholinergic basal forebrain (CBF) cells following intraventricular injection. An immunotoxin composed of 192 IgG linked to saporin (192 IgG-saporin) has been shown to destroy cholinergic neurons in the basal forebrain. We sought to determine if intraventricular 192 IgG-saporin affected choline acetyltransferase (ChAT) enzyme activity in the CBF terminal projection fields. ChAT assays from 192 IgG-saporin-treated animals showed significant time-dependent decreases in ChAT activity in the neocortex, olfactory bulb and hippocampus, compared to PBS- or OKT1-saporin-injected controls. ChAT and tyrosine hydroxylase activity in the striatum was always unchanged by 192 IgG-saporin. ChAT immunohistochemistry was confirmative of major cell loss in the CBF, while other cholinergic nuclei appeared unremarkable. The data provide further evidence of the selectivity of 192 IgG-saporin in abolishing cholinergic, NGF receptor-positive CNS neurons.

Acetylcholine↗

Neural lesioning with ribosome-inactivating proteins: suicide transport and immunolesioning.

Toxic lectins, plant proteins that inactivate ribosomes, irreversibly inhibit protein synthesis with high efficiency. After intraneural (subepineurial) microinjection, these agents are taken up by axons and are retrogradely transported to the perikarya, where they result in cell death. These 'suicide transport' toxins can produce pathway-specific lesions that are useful in several types of experiment, including cellular localization of neurotransmitter receptors. The toxins can be coupled to monoclonal antibodies to produce immunotoxins: reagents that can make highly selective lesions of specific types of neurons. Central or peripheral neurons that express the low-affinity NGF receptor are selectively destroyed by the immunotoxin 192 IgG-saporin. Development of other anti-neuronal immunotoxins should provide a variety of powerful selective lesioning tools.

Animals↗

Induction of nerve growth factor receptor (p75NGFr) mRNA within hypoglossal motoneurons following axonal injury.

The hypoglossal nerve is a useful model system for analysis of gene expression in injured motoneurons. In particular, we sought to determine whether the increased appearance of the low affinity nerve growth factor receptor (p75NGFr) observed immunocytochemically following nerve injury can be directly correlated to increased levels of the p75NGFr mRNA. The present study also examined the relative effects of nerve crush versus nerve transection on the expression of p75NGFr mRNA. In sham-operated or intact animals, p75NGFr mRNA is detected rarely and then only at levels slightly higher than background. Following unilateral transection or crush of the rat hypoglossal nerve, the levels of p75NGFr mRNA increase in a time dependent fashion that parallels the appearance of the protein as reported previously. Moreover, this increase in p75NGFr mRNA following transection is dependent on a signal from the injured site, since blockage of axonal transport with vincristine also blocks the increased p75NGFr mRNA levels. When comparing the effect of nerve crush to nerve transection, we observed that the intensity of the response was greater in the crush paradigm versus that observed following transection. The duration of the response following nerve crush was shorter than that observed following transection of the nerve. The increase in p75NGFr mRNA after crush was most robust 4 days postlesion and appeared more robust primarily due to a 90-150% increased number of motoneurons expressing p75NGFr mRNA when compared to nerve transection. These data suggest that nerve crush is more effective than nerve transection in eliciting increased p75NGFr mRNA levels.

Animals↗

Spatial learning impairments in rats with selective immunolesion of the forebrain cholinergic system.

A monoclonal antibody to the low-affinity NGF receptor, 192 IgG, coupled to a cytotoxin, saporin, was recently introduced as an efficient selective neurotoxin for the NGFr-bearing cholinergic neurones in the rat basal forebrain. In the present study we report that an intracerebroventricular injection of this 192 IgG-saporin conjugate induces a severe, long-lasting spatial learning impairment, as assessed in the Morris water-maze task. This behavioural impairment was associated with 65-90% depletion of choline acetyltransferase activity (ChAT) in the hippocampus and cortex. ChAT activity associated with other cholinergic neurone systems in the brain (striatum, mesencephalon, spinal cord), was left virtually unaffected. This new immunotoxin holds great promise as a tool for selective and efficient lesions of the forebrain cholinergic system in functional and behavioural studies.

Acetylcholinesterase↗

Separate signals mediate hypoglossal motor neuron response to axonal injury.

Nerve transection causes decreased choline acetyltransferase (ChAT) expression and appearance of nerve growth factor receptor (NGFr) in hypoglossal motor neurons. Topical application of vincristine to the hypoglossal nerve blocks axonal transport of WGA for more than one week and causes loss of ChAT but no appearance of NGFr. These results indicate that loss of ChAT is related to interruption of axonal transport, but another signal induces de novo expression of NGFr.

Animals↗

Immunolesioning: selective destruction of neurons using immunotoxin to rat NGF receptor.

192 IgG, a monoclonal antibody to the rat nerve growth factor (NGF) receptor, was disulfide-coupled to saporin, a ribosome-inactivating protein. Systemic injection of 192 IgG-saporin destroyed sympathetic postganglionic neurons and some sensory neurons. Injection of 192 IgG-saporin into the lateral ventricle destroyed cholinergic neurons of the basal forebrain. These results show that antineuronal immunotoxins are a powerful approach that may prove useful in a variety of neurobiological applications.

Animals↗

Expression of choline acetyltransferase and nerve growth factor receptor within hypoglossal motoneurons following nerve injury.

In the present study we employed light microscopic immunocytochemical techniques in order to investigate the temporal response of choline acetyltransferase (ChAT) and nerve growth factor receptor (NGFr) within hypoglossal motoneurons following unilateral transection or crushing of the XII nerve or after intraneural injections of ricin into the nerve. In control rats (i.e., sham operated) virtually all the motoneurons of the XII nucleus displayed intense immunolabeling for ChAT and were devoid of NGFr immunoreactivity. As early as 3 days post-operative the intensity and the number of ChAT-labeled neurons were reduced on the axotomized side compared to the non-lesioned side. This decrease was maximal approximately two weeks post-operative when virtually no ChAT-labeled cells were present on the lesioned side. In contrast, no loss of hypoglossal neurons was found using Nissl stains. This absence of ChAT immunolabeling persisted for several days, yet by 30 days many of the motoneurons had begun to re-express the enzyme. In contrast to the decrease in ChAT immunoreactivity, transection of the XII nerve also resulted in the expression of NGFr immunoreactivity within the lesioned motoneurons. This response was detected as early as one day post-operatively and continued throughout all time points thus far examined including times after many of the motoneurons had begun to re-express ChAT. Crushing of the XII nerve effected the expression of ChAT and NGFr in a manner comparable to, yet less intense than, that observed following transection. Ricin injected directly into the XII nerve resulted in the loss of hypoglossal motoneurons as demonstrated both in immunohistochemical and Nissl-stained tissue preparations. The cell loss was readily apparent 3 days post-operatively, and ChAT immunoreactivity permanently disappeared. NGFr immunolabeling was seen only in scattered surviving neurons but not in ricin poisoned cells. The possible mechanisms underlying the differential expression of ChAT and NGFr are discussed.

Animals↗

Temporal progression of cortical reorganization following nerve injury.

Damage to peripheral nerves of adult mammals causes reorganization of somatosensory maps in the cerebral cortex. An understanding of the temporal progression of cortical changes is important for understanding the underlying mechanisms. The present experiments utilized neurophysiological recordings to analyze the time course of reorganization in the S-I cortical hindpaw area in adult rats. Following loss of sciatic inputs, the cortical area responding to low threshold inputs from the hindpaw saphenous nerve expands. A brief, early onset period of rapid expansion is followed by a prolonged period of slow increase. The temporal progression suggests that early onset changes condition the central nervous system for later changes.

Animals↗

Selective localization of striatal D1 receptors to striatonigral neurons.

A new technique for producing anatomically selective lesions within the brain was used to investigate the cellular localization of the D1 and D2 receptor. The cytotoxic lectin, volkensin, is taken up by nerve terminals and retrogradely transported, killing those neurons projecting to the site of injection. Comparison of D1 and D2 binding following a unilateral volkensin injection into the substantia nigra has demonstrated that striatal D1 binding sites are selectively localized to striatonigral projection neurons.

Analysis of Variance↗

Cellular localization of serotonin 1A, 1B and uptake sites in cingulate cortex of the rat.

Experimental lesions followed by binding of [3H]8-hydroxy-2-(di-n-propylamino)tetralin (8-OH-DPAT), [125I]cyanopindolol and [3H] paroxetine to cryostat sections and coverslip autoradiography were used to localize 5-HT1A, 5-HT1B and 5-HT uptake sites in rat posterior cingulate cortex. Ablations included: 1) undercutting for removal of all afferent axons; 2) destruction of the raphe nuclei; 3) cortical ibotenic acid injections for removal of neurons and 4) anterior thalamic and caudate nuclei injections of the immunotoxin OX7-saporin which destroys single classes of cortical projection neurons by retrograde axonal transport. Peak paroxetine binding was in layer Ia with low binding in layer Va and moderate amounts in other layers. Undercut lesions reduced binding only in layer Ia by 35%. Major loses were observed after raphe ablations with decreases of 40 to 72% across all layers. Cortical ibotenic acid injections did not alter paroxetine binding. Peak cyanopindolol binding was in layers Ia to Ic. Undercutting decreased binding significantly in layers Ia, Ib, III and IV, whereas after raphe lesions binding was decreased by 34 to 58% in layers Ia to IV. 5,7-Dihydroxytryptamine injection increased binding by 10 to 40% in layers Ib, II, III and IV. Cortical ibotenic acid injections reduced grain density in all layers with a range of 28 to 47%. Peak 8-OH-DPAT binding was in layer Vb. No change was observed after undercut lesions, whereas after cortical ibotenic acid injection, binding reductions of 44 to 75% were observed throughout all nine sublaminae. Thalamic OX7-saporin injections destroyed almost all layer VI neurons, which resulted in a 45% decrease in layer VI 8-OH-DPAT binding.(ABSTRACT TRUNCATED AT 250 WORDS)

8-Hydroxy-2-(di-n-propylamino)tetralin↗

Neuronotoxic effects of monoclonal anti-Thy 1 antibody (OX7) coupled to the ribosome inactivating protein, saporin, as studied by suicide transport experiments in the rat.

As a first attempt to develop suicide transport agents based upon antineuronal antibodies, we studied an immunotoxin directed against the Thy 1 antigen which is on rat neurons. The immunotoxin was composed of mouse monoclonal anti-Thy 1 antibody (OX7) and the ribosome-inactivating protein, saporin, and was prepared using the heterobifunctional cross linker, SPDP, which provides a disulfide linkage between the two protein components. This immunotoxin reliably and selectively destroyed ipsilateral vagal motor and sensory neurons after injection into the cervical vagus. Injection of the immunotoxin into the caudate nucleus produced destruction of the ipsilateral substantia nigra, pars compacta and intralaminar thalamic nuclei (parafascicular and central median). Anti-mouse IgG immunoperoxidase staining confirmed axonal transport of OX7 by vagal sensory and motor neurons and by caudate afferents and efferents. Systemic toxicity was not observed with OX7-saporin. The neuronotoxic effects of OX7-saporin were specific since injections of a similarly constructed immunotoxin of irrelevant specificity or a mixture of OX7 and saporin were without suicide transport activity. These results show the feasibility of using immunotoxins as suicide transport agents.

Animals↗