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Increase in syntaxin 1B mRNA in hippocampal and cortical circuits during spatial learning reflects a mechanism of trans-synaptic plasticity involved in establishing a memory trace.

It has long been proposed that the cellular and molecular mechanisms responsible for LTP may well involve the mechanisms that lead to the type of synaptic modification that occurs during learning. However, it is also known that a single memory trace is encoded in spatially distributed networks; implying that alterations of synaptic strength occur at multiple sites along circuits of connected cells. Recent evidence suggests that regulation of the gene encoding syntaxin 1B, a presynaptic protein involved in exocytosis, plays an important role in the mediation of trans-synaptic LTP, a candidate mechanism for the propagation of plasticity in neural circuits during learning. Using in situ hybridization to measure the mRNA levels at different time points after learning a spatial working or reference memory task, we show that expression of the gene encoding this protein in the hippocampal and corticoprefrontal circuits increases linearly with performance at a critical window of learning when rats are reaching between 75% and 100% of their maximal performance. No changes were observed during the early phases of learning or when rats where overtrained. The correlational analysis indicates that coordinated increases in syntaxin 1B expression occurs in hippocampal circuits during working memory and in more widespread hippocampocortical circuits during reference memory. These results suggest that a form of trans-synaptic plasticity mediated in part by regulation of the expression of syntaxin 1B may play an active role in configuring specific spatially distributed circuits during the laying down of memories.

Animals↗

Non-spatial learning following posterior parietal or hippocampal lesions.

Posterior parietal, hippocampal, or sham-lesioned rats were tested for the acquisition of a non-monotonic serial learning task. The performance of control rats and those with a posterior parietal lesion was similar, while those with hippocampal damage demonstrated a working memory deficit. The results are integrated with contemporary conceptualizations of hippocampal and posterior parietal cortex involvement in learning and memory for non-spatial tasks.

Analysis of Variance↗

Excitatory amino acid receptors within nucleus accumbens subregions differentially mediate spatial learning in the rat.

The present experiments investigated the effects of excitatory amino acid antagonists, infused into core and shell subregions of the nucleus accumbens, on spatial behavior in the rat. A food-search task was used, in which animals learn a specific pattern of food gathering; duration of each trial (time taken to gather all four pellets) and number of errors (visits to empty holes) were measured. In experiment 1, animals first underwent training, and subsequently were given microinfusions of either D-2-amino-5 phosphonopentanoic acid (AP-5), an N-methyl-d-aspartate (NMDA) antagonist (0, 0.2, 1.0µg/0.5µl), or 6,7-dinitroquinoxaline-2,3-dione (DNQX), an antagonist of alpha-amino-3-hydroxy-5-methylisoxazole-4-propionic acid (AMPA) and kainate receptors (0, 0.075, 0.75µg/0.5µl). AP-5-significantly increased trial duration in both core and shell groups, but increased errors only in the core group. DNQX treatment also impaired performance in both groups, but the effect was greater in the core group compared with the shell group. In experiment 2, animals were treated during acquisition. Rats infused with AP-5 (1µg/0.5µl) took significantly longer to finish trials, made more errors and showed a marked learning impairment across days. AP-5 impaired learning in both core and shell groups, but the disruption was significantly greater in the core group. DNQX (0.75µg/0.5µl) also impaired learning when infused into the core during acquisition; however, the pattern of disruption contrasted markedly with that of AP-5. DNQX in the shell had no effect on trial duration during learning. It is hypothesized that both NMDA and non-NMDA receptors in the nucleus accumbens mediate spatial learning and performance, and that NMDA receptors may have a relatively more important role in memory or retrieval mechanisms. Moreover, the core subregion may be preferentially involved in the control of spatial behavior.

Journal Article↗

Physical activity effects on hippocampal and parietal cortical cholinergic function and spatial learning in F344 rats.

In the present investigation, the effects of physical activity on hippocampal cholinergic function, parietal cortical cholinergic function, and spatial memory were examined in F344 rats. Single bouts of physical activity elevated hippocampal and cortical high affinity choline uptake, whereas chronic physical activity significantly reduced only hippocampal high affinity choline uptake (HACU) and elevated muscarinic (QNB) receptor density. Three weeks prior to the end of the 14-week chronic treadmill running protocol, a group of chronic-run rats and their non-run controls were tested on a stringent version of Whishaw's place learning-set task. Chronic-run rats exhibited enhanced performance on the spatial task by significantly reduced second trial latencies and elevated first and second trial proximity ratio scores. Chronic-run spatial memory tested rats also showed enhanced hippocampal HACU and muscarinic receptor binding. These data indicate that chronic physical activity improves spatial learning performance. This improvement may be due, in part, to a chronic running-induced enhancement of hippocampal cholinergic functioning.

Animals↗

Learning in rats with caudate-putamen lesions: unimpaired classical conditioning and beneficial effects of redundant stimulus cues on instrumental and spatial learning deficits.

The effects of caudate-putamen lesions in the rat on conditioning were investigated in three experiments. In Experiment 1, rats with lesions were impaired on a spatial task that required learning to make the correct position response, but no deficit was obtained when the alternatives were differentiated by salient visual cues. Performance remained good even when the visual cues were removed. A classical conditioned suppression paradigm was used in Experiment 2, and caudate-putamen lesions were found not to impair acquisition of suppression or overshadowing. In Experiment 3 we revealed poor instrumental learning in subjects with lesions as retarded acquisition of lever-press responding and depressed variable interval response rates. When a light stimulus was present together with reinforced responses, response rates were depressed in the control group (which suggested an overshadowing phenomenon) but were potentiated in the group with lesions. The results showed that caudate-putamen lesions did not produce a general deficit in association formation. There was disruption of learning about responses but not stimuli and, moreover, it was found that redundant stimulus cues aided response learning. It appears that for normal subjects, the salience or associability of the response cues may largely determine the influence of stimuli presented during instrumental conditioning.

Animals↗

Of mice and men: virtual Hebb-Williams mazes permit comparison of spatial learning across species.

We developed a computer-generated virtual environment to test humans, for the first time, on the Hebb-Williams mazes. The goal was to provide a standardized test that could be used to directly compare human performance with that of C57BL/6J mice performing in real versions of the mazes. Such a comparison seems crucial if conclusions regarding genetic manipulations of rodents are to be mapped onto human cognitive disorders. The learning curves across species were strikingly similar, lending support to the rodent model of human spatial memory. Humans learned faster than rodents in both the acquisition and the test portions of the protocol, and females of both species were less efficient in solving these problems than males. These results represent the first modern comparison of human and rodent learning that uses the same test of spatial problem solving.

Adult↗

Comparative effects of excitotoxic lesions of the hippocampus and septum/diagonal band on conditional visual discrimination and spatial learning.

Several experiments compared the effects of excitotoxic lesions of the septal/vertical limb nuclei of the diagonal band of Broca (VDB) complex with those of the hippocampus (sparing the subiculum) on different forms of visual discrimination learning. The septal/VDB lesions, which produced significant reductions in choline acetyltransferase activity in the hippocampus and the cingulate cortex, impaired acquisition of a conditional visual discrimination in an operant chamber, while the hippocampal lesion had no effect, unless there was a delay interposed between the discriminative stimulus and the response. Neither lesion affected simple visual or spatial discrimination or reversal learning, also carried out in operant chambers, but both significantly impaired the acquisition and retention of a spatial navigation task (Morris water maze), with the septal/VDB lesions again producing greater deficits than the hippocampal lesions. Possible explanations for this surprising result are discussed and it is concluded that; (1) additional cholinergic de-afferentation of the cingulate cortex produced by the septal/VDB lesion is of functional significance; (2) this may lead to deficits in conditional rule learning, which can contribute to spatial navigation performance under certain circumstances; and (3) the contribution of septal-hippocampal cholinergic projections to spatial learning is in need of re-appraisal.

Animals↗

Seizures in the developing brain cause adverse long-term effects on spatial learning and anxiety.

PURPOSE: Seizures in the developing brain cause less macroscopic structural damage than do seizures in adulthood, but accumulating evidence shows that seizures early in life can be associated with persistent behavioral and cognitive impairments. We previously showed that long-term spatial memory in the eight-arm radial-arm maze was impaired in rats that experienced a single episode of kainic acid (KA)-induced status epilepticus during early development (postnatal days (P) 1-14). Here we extend those findings by using a set of behavioral paradigms that are sensitive to additional aspects of learning and behavior. METHODS: On P1, P7, P14, or P24, rats underwent status epilepticus induced by intraperitoneal injections of age-specific doses of KA. In adulthood (P90-P100), the behavioral performance of these rats was compared with that of control rats that did not receive KA. A modified version of the radial-arm maze was used to assess short-term spatial memory; the Morris water maze was used to evaluate long-term spatial memory and retrieval; and the elevated plus maze was used to determine anxiety. RESULTS: Compared with controls, rats with KA seizures at each tested age had impaired short-term spatial memory in the radial-arm maze (longer latency to criterion and more reference errors), deficient long-term spatial learning and retrieval in the water maze (longer escape latencies and memory for platform location), and a greater degree of anxiety in the elevated plus maze (greater time spent in open arms). CONCLUSIONS: These findings provide additional support for the concept that seizures early in life may be followed by life-long impairment of certain cognitive and behavioral functions. These results may have clinical implications, favoring early and aggressive control of seizures during development.

Animals↗

Spatial learning by rats across visually disconnected environments.

Two spatial tasks were designed to test specific properties of spatial representation in rats. In the first task, rats were trained to locate an escape hole at a fixed position in a visually homogeneous arena. This arena was connected with a periphery where a full view of the room environment existed. Therefore, rats were dependent on their memory trace of the previous position in the periphery to discriminate a position within the central region. Under these experimental conditions, the test animals showed a significant discrimination of the training position without a specific local view. In the second task, rats were trained in a radial maze consisting of tunnels that were transparent at their distal ends only. Because the central part of the maze was non-transparent, rats had to plan and execute appropriate trajectories without specific visual feedback from the environment. This situation was intended to encourage the reliance on prospective memory of the non-visited arms in selecting the following move. Our results show that acquisition performance was only slightly decreased compared to that shown in a completely transparent maze and considerably higher than in a translucent maze or in darkness. These two series of experiments indicate (1) that rats can learn about the relative position of different places with no common visual panorama, and (2) that they are able to plan and execute a sequence of visits to several places without direct visual feed-back about their relative position.

Animals↗

Effects of Ginkgo biloba administered after spatial learning on water maze and radial arm maze performance in young adult rats.

Ginkgo biloba is reported to improve learning and memory in animals. However, many studies do not directly test the effects of Ginkgo on memory because the drug is administered during the learning phase of the experiments. In this study, we examined the effect of 10 mg/kg, 20 mg/kg, or 40 mg/kg G. biloba extract on spatial memory by administering the drug in the interval between training and testing. Rats were tested for long-term reference memory retention in the radial arm maze and in the Morris water maze during daily probe trials in which the hidden platform was removed. G. biloba had no effect on reference memory in either the water maze or radial arm maze. To test short-term working spatial memory using the radial arm maze, animals were removed after receiving the reward from 4 of the 8 arms and were returned to complete the maze 2 h later. While Ginkgo had no effect on working memory, over time animals exposed to Ginkgo learned task better than control animals. Thus, Ginkgo appears to enhance neither short-term working memory nor long-term reference memory, but it may promote learning of spatial information.

Animals↗

Impaired spatial learning by vasoactive intestinal peptide in Morris water maze task in the rat.

Intracerebroventricular administration of vasoactive intestinal peptide (VIP) disturbed the learning by rats of the location of a platform submerged in a water pool. When the platform was removed from the pool, VIP injection produced marked impairment of the ability to find a previously learned location in the pool. This spatial memory impairment caused by VIP was restored by peripheral pre-administration of cerulein.

Animals↗

Pilocarpine prevents age-related spatial learning impairments in rats.

The cholinergic pathways are intimately involved in the learning and memory process and disruption of this system produces impairments in many learning and memory models. Converging lines of evidence support the idea that there is an age-related decline in learning and memory in animals and this decline is strikingly similar to memory changes that occur when the cholinergic system is compromised. The purpose of this work was to evaluate whether a single administration of the muscarinic receptor agonist Pilocarpine (Pilo) could prevent the age-related learning impairment in rats. Three groups of animals received Pilo (300 mg/kg, i.p.), at 3 months of age, and the animals that did not show Status epilepticus were submitted to the water maze task 1 or 21 months after or once a month from the 4th to 24th month of age. The results showed that Pilo did not interfere with learning abilities 1-month after treatment nor in animals that were submitted to the test once a month. In addition, the animals treated with Pilo and submitted to the task 21 month after performed as well as control young rats in the training and in the testing sessions, while a marked learning impairment was detected in control old rats. These results indicate that a single administration of Pilo might prevent the age-related learning impairments in rats on a spatial task in the water maze.

Aging↗

Developments of a water-maze procedure for studying spatial learning in the rat.

Developments of an open-field water-maze procedure in which rats learn to escape from opaque water onto a hidden platform are described. These include a procedure (A) for automatically tracking the spatial location of a hooded rat without the use of attached light-emitting diodes; (B) for studying different aspects of spatial memory (e.g. working memory); and (C) for studying non-spatial discrimination learning. The speed with which rats learn these tasks suggests that they may lend themselves to a variety of behavioural investigations, including pharmacological work and studies of cerebral function.

Animals↗

NMDA receptor activity in learning spatial procedural strategies II. The influence of cerebellar lesions.

Experimental data support the involvement of cerebellar circuits in the acquisition of spatial procedural competences. Since the ability to acquire new procedural competences is lost when cerebellar regions are lesioned or when NMDA receptor activity is blocked, we analyzed whether the learning of explorative strategies is affected by blocking NMDA receptor activity in the presence of cerebellar lesions. To this aim, the NMDA receptor antagonist (CGS 19755, 7 mg/kg) was administered i.p. to un-lesioned rats, or rats subjected to total ablation of the cerebellum or to hemi-cerebellectomy. CGS 19755 and cerebellectomy both produced water maze behavior characterized by circling. Administration of CGS 19755 did not modify the Morris Water Maze (MWM) peripheral circling behavior of cerebellectomized animals. Circling was the dominant strategy of hemicerebellectomized animals in the absence of drugs. However, increasingly compulsive circling was observed under the action of CGS 19755. Circling was not observed if the drug-treated animals (un-lesioned or lesioned) had been previously trained. In conclusion, the NMDA antagonist caused severe impairment in the acquisition of spatial procedures, thus mimicking the consequences of cerebellar ablation on spatial procedural learning. Based on the present findings, we hypothesize that cerebellar NMDA receptor activity is involved in the acquisition of procedural spatial competence.

Analysis of Variance↗

The systemic administration of tacrine or selegiline facilitate spatial learning in aged fisher 344 rats.

When compared to young Fisher 344 rats, aged Fisher 344 rats were impaired in their acquisition of the water maze task as indicated by longer escape latencies and distances to find a hidden platform. In a free swim trial which was performed after the training period, young rats had a better spatial bias, since they spent more time swimming in the previous training quadrant. Tacrine 3 mg/kg, an anticholinesterase, and selegiline 0.25 mg/kg, a MAO-B inhibitor, partially reversed the acquisition deficit in aged rats when administered on their own, and drug-treated aged rats swam more in the previous training quadrant than vehicle-treated aged rats during the free swim trial. Aged rats also swam slower than young rats. Tacrine, but not selegiline, increased swimming speed in aged rats. Taken as a whole, these data support the proposal that tacrine may be effective at alleviating age-related learning impairment and confirm the role of cholinergic dysfunction in the spatial learning deficit in aged rats.

Aging↗