PubMed Health⌕ Search

Biomedical subjects

M Ammassari-Teule

Publications and source records attributed to M Ammassari-Teule.

At least 19 recordsLinked to original sources

Altered long-term corticostriatal synaptic plasticity in transgenic mice overexpressing human CU/ZN superoxide dismutase (GLY(93)-->ALA) mutation.

Apart from the extensive loss of motor neurons, degeneration of midbrain dopaminergic cells has been described in both familial and sporadic forms of amyotrophic lateral sclerosis (ALS). Mice overexpressing the mutant human Cu/Zn superoxide dismutase (SOD1) show an ALS-like phenotype in that they show a progressive death of motor neurons accompanied by degeneration of dopaminergic cells. To describe the functional alterations specifically associated with this dopaminergic dysfunction, we have investigated the corticostriatal synaptic plasticity in mice overexpressing the human SOD1 (SOD1+) and the mutated (Gly(93)-->Ala) form (G93A+) of the same enzyme. We show that repetitive stimulation of the corticostriatal pathway generates long-term depression (LTD) in SOD1+ mice and in control (G93A-/SOD1-) animals, whereas in G93A+ mice the same stimulation generates an N-methyl-D-aspartic acid receptor-dependent long-term potentiation. No significant alterations were found in the intrinsic membrane properties of striatal medium spiny neurons and basal corticostriatal synaptic transmission of G93A+ mice. Bath perfusion of dopamine or the D(2) dopamine receptor agonist quinpirole restored LTD in G93A+ mice. Consistent with these in vitro results, habituation of locomotor activity and striatal-dependent active avoidance learning were impaired in G93A+ mice. Thus, degeneration of dopaminergic neurons in the substantia nigra of G93A+ mice causes substantial modifications in striatal synaptic plasticity and related behaviors, and may be a cellular substrate of the extrapyramidal motor and cognitive disorders observed in familial and sporadic ALS.

2,3,4,5-Tetrahydro-7,8-dihydroxy-1-phenyl-1H-3-ben↗

Learning about the context in genetically-defined mice.

Defective utilisation of background stimuli may result in a large range of cognitive impairments. We describe here three experimental paradigms taxing the processing of contextual information, (i) radial maze learning under distinct cueing conditions and successive context shifts; (ii) reactivity to spatial and object change; (iii) contextual versus cue fear conditioning with pre-test exposure to the experimental context. These paradigms have then been used to characterise the behaviour of null mutant and transgenic mice. In a first series of experiments, we assessed the effect of the null mutation of the gene encoding for Tissue Plasminogen Activator (tPA). Initial investigations pointed to a reduction of the late phase of long-term potentiation in tPA-knock out relative to wild type mice without any consistent performance impairment in several hippocampal-dependent tasks. When tested following our protocols, we found tPA knock out impaired in habituation of object exploration, reactivity to spatial change and contextual fear conditioning. The second example concerns mice overexpressing the mutant human Cu,Zn superoxide dismutase (SOD1) gene, that provide a murine model of amyotrophic lateral sclerosis. We found these mice exhibiting a paradoxical selective enhancement of reactivity to spatial change in comparison with mice overexpressing either the endogeneous murine Cu,Zn SOD1 or the wild type human Cu,Zn SOD1 genes. Our conclusion emphasises the view that experimental protocols involving contextual manipulations may be suitable for differentiating behavioural phenotypes.

Animals↗

A synaptic mechanism underlying the behavioral abnormalities induced by manganese intoxication.

In the present study we have characterized a rat model of manganese (Mn) intoxication leading to behavioral disinhibition in the absence of major motor alterations. These behavioral changes were associated with significantly increased brain Mn levels but were uncoupled to anatomical lesions of the striatum or to morphological and cytochemical changes of the nigrostriatal dopaminergic pathway. The analysis of this model at cellular level showed an enhanced dopaminergic inhibitory control of the corticostriatal excitatory transmission via presynaptic D2-like dopamine (DA) receptors in slices obtained from Mn-treated rats. Conversely, the use of agonists acting on presynaptic purinergic, muscarinic, and glutamatergic metabotropic receptors revealed a normal sensitivity. Moreover, membrane responses recorded from single dopaminergic neurons following activation of D2 DA autoreceptors were also unchanged following Mn intoxication. Thus, our findings indicate a selective involvement of the D2-like DA receptors located on glutamatergic corticostriatal terminals in this pathological condition and suggest that the behavioral symptoms described in the "early" clinical phase of manganism may be caused by an abnormal dopaminergic inhibitory control on corticostriatal inputs. The identification of the synaptic mechanism underlying the "early" phase of Mn intoxication might have a critical importance to understand the causes of the progression of this pathological condition towards an "established" phase characterized by motor abnormalities and anatomical lesions of the basal ganglia.

Animals↗

Contextual-dependent effects of nucleus accumbens lesions on spatial learning in mice.

The effect of nucleus accumbens lesions on radial maze performance of C57BL/6 and DBA/2 mice was assessed under distinct extra-maze cuing conditions. Among sham-lesioned mice, C57BL/6 performed better under rich than poor cuing conditions whereas DBA performed in the same fashion under both conditions. In C57BL/6, a disruptive effect of lesions was found only in mice tested under rich cuing. Conversely, in DBA/2, the lesions improved performance under poor cuing and disrupted performance under rich cuing. In that strain, a possible lesion-induced enhancement of attention to background stimuli improving performance under poor cuing but producing interference under rich cuing is suggested. In general, the lesions effect seemed to depend on the strain predisposition to implement configural or cue-based responding.

Animals↗

Age-related modifications of contextual information processing in rats: role of emotional reactivity, arousal and testing procedure.

Two experiments were conducted to examine contextual information processing in adult (7 months) and aged (22 months) Wistar rats. In Experiment 1, rats were tested for contextual fear conditioning when exposed to six series, one per day, of ten pairings of a tone (CS) with a foot-shock (US) delivered in one of a two-compartment apparatus. Conditioned fear was estimated by recording: (1) the amount of freezing in the shock compartment; and (2) the time spent avoiding the shock compartment. Results show that, after only one series of ten CS-US pairings, all rats showed freezing in the shock compartment, with aged rats exhibiting the stronger response. Adult rats also avoided the shock compartment during place preference tests in contrast to aged rats, that spent an equivalent time - with an intense freezing reaction - in both the shock and the safe compartments. After 60 CS-US pairings, contextual freezing in the shock compartment decreased in both groups, but, contrary to adults, aged rats were still not avoiding that compartment. In Experiment 2, radial maze performance was studied under distinct quantitative extra-maze cueing conditions (poor versus rich) and successive context shifts. Compared to adults, aged rats were impaired when trained initially under poor cueing conditions. No group difference was evident when rats were transferred to a context involving more cues (rich cueing conditions), but age-related impairments re-emerged when rats were returned to the original poor cueing conditions. Thus, the fact that performance deficits in a given task were restricted to certain testing procedures suggests that aging affects more the utilization than the processing of contextual information.

Aging↗

Fear conditioning in C57/BL/6 and DBA/2 mice: variability in nucleus accumbens function according to the strain predisposition to show contextual- or cue-based responding.

The contribution of the nucleus accumbens shell, the dorsal hippocampus, and the basolateral amygdala to contextual and explicit cue fear conditioning was assessed in C57BL/6 (C57) and DBA/2 (DBA) mice showing differences in processing contextual information associated with consistent but non-pathological variations in hippocampal functionality. Mice from both strains with bilateral ibotenic acid or sham lesions located in each area were introduced in a conditioning chamber and exposed twice to the pairing of a tone (2 x 8 s, 2000 Hz, 80 dB) with a shock (2 s, 0.7 mA). On the following day, mice were first exposed to the training context then to the tone in a different context. Freezing behaviour was scored in all situations. C57 showed more freezing to the context than to the tone whereas DBA showed more freezing to the tone than to the context. In C57, both nucleus accumbens and hippocampal lesions impaired acquisition of contextual fear conditioning but paradoxically improved acquisition of cue fear conditioning, whereas amygdala lesions disrupted performance in every task. In DBA, nucleus accumbens lesions, like amygdala lesions, impaired acquisition of both contextual and cue fear conditioning, whereas hippocampal lesions did not produce any effect. The parallelism between the effect of nucleus accumbens and hippocampus lesions in C57, and between the effect of nucleus accumbens and amygdala lesions in DBA points to a variability in nucleus accumbens function according to the strain specialization to develop context- or cue-based responding.

Acoustic Stimulation↗

Visual discrimination in inbred mice: strain-specific involvement of hippocampal regions.

Possible differences in functionality between the dorsal and the ventral regions of the hippocampus have been investigated in C57BL/6 (C57) and DBA/2 (DBA) inbred mice differing in their hippocampal anatomy. Mice from these two strains with large ventral, small ventral, small dorsal, or sham hippocampal lesions were tested in a visual discrimination radial maze task. Results first showed no strain difference in baseline performance. Examination of the lesion effects in the former strain (C57) revealed that the three lesions produced equivalent performance impairements. In the latter (DBA), ventral lesions, regardless of the size, were found to have a more deleterious effect than had the dorsal lesion. Thus, in C57 mice, the two regions were found to exert a similar control on performance, whereas in DBA mice, there was a modest involvement of the dorsal region associated with an extensive participation of the ventral region. The fact that. in DBA mice, the ventral area appears to be extensively involved when the dorsal hippocampus is poorly functioning suggests the existence of possible compensatory mechanisms between region-related specific operations and, consequently, some form of functional plasticity within the hippocampal formation.

Analysis of Variance↗

N-methyl-D-aspartate receptors in the nucleus accumbens are involved in detection of spatial novelty in mice.

The aim of this study was to investigate the role played by intra-accumbens N-methyl-D-aspartate (NMDA) receptors in spatial information encoding. For this purpose, the effect of local administration of both competitive (AP-5) and non-competitive (MK-801) NMDA antagonists was assessed in a task designed to estimate the ability of rodents to encode spatial relationships between discrete stimuli. The task consists of placing mice in an open field containing five objects and, after three sessions of habituation, examining their reactivity to object displacement (spatial novelty) and object substitution (object novelty). The results show that both doses of MK-801 (0.15 and 0.3 microg/side) induced a selective impairment in the capability of mice to detect spatial novelty. A similar effect was obtained by injecting the low dose of the competitive antagonist AP-5 (0.1 microg/side), whereas the high dose (0.15 microg/side) abolished detection of both spatial and object novelty. Taken together, these results show that intra-accumbens injections of low doses of competitive and non-competitive NMDA antagonists can produce selective deficits in processing spatial information resembling those observed after hippocampal damage. Moreover, the fact that pharmacological treatments spare memory processes involved in habituation suggests that NMDA antagonists may interfere with the formation of spatial representations rather than producing memory deficits per se.

Animals↗

What do comparative studies of inbred mice add to current investigations on the neural basis of spatial behaviors?

In the present article a number of comparative lesion studies in two inbred strains of mice (C57BL/6 and DBA/2) with different levels of radial maze performance are reviewed. The effects of lesions in several brain areas on maze learning were investigated, thus revealing strain differences in the neural circuitry subserving spatial cognition. Results showed that the hippocampus and parietal cortex appear to be involved in the control of radial maze learning in both C57 and DBA mice, although in a strain-dependent fashion. Lesions in other structures such as the medial frontal cortex and the amygdala only affected spatial learning in the C57 strain. Lastly, the results showed some improvement in radial maze performance in DBA mice with nucleus accumbens lesions. The data highlight the variability in the neural mechanisms subserving well-differentiated levels of spatial performance. The contribution of inbred mice to our general understanding of the neural basis of spatial cognition is discussed.

Animals↗

Posterior parietal cortex lesions severely disrupt spatial learning in DBA mice characterized by a genetic hippocampal dysfunction.

C57BL/6 (C57) and DBA/2 (DBA) inbred mice with posterior parietal cortex or sham lesions were tested in a radial eight-arm maze task with all the paths baited. In the high learner C57 strain, parietal lesions produced a limited impairment of performance without affecting maze-running strategies while the same lesions were found to affect more severely performance in the poor learner DBA strain. Because (1) the processing of spatial information has been found to depend on the conjunctive participation of the hippocampus and the posterior parietal cortex, and (2) DBA mice represent a genetic model of hippocampal dysfunction, the fact that parietal lesions impair spatial performance more severely in the DBA strain suggests that the contribution of the posterior parietal cortex to spatial learning depends on the degree of functionality of the hippocampus.

Animals↗

Ibotenic lesions of the nucleus accumbens promote reactivity to spatial novelty in nonreactive DBA mice: implications for neural mechanisms subserving spatial information encoding.

The role of the nucleus accumbens (NA) in forming spatial representations was investigated in C57BL/6 (C57) and DBA/2 (DBA) inbred mice. One week before testing, bilateral excitotoxic lesions were performed in the NA using ibotenic acid. Testing consisted of placing mice in an arena containing 5 objects at a fixed location and, after habituation to the object configuration, examining their reactivity to the displacement (spatial novelty) or the substitution (object novelty) of some of these objects. C57 mice reacted to spatial novelty and DBA mice did not. Both strains, however, reacted to object novelty. The lesion had no effect on C57 mice's performance, but in the DBA mice, it promoted a clear reaction to spatial novelty that was absent in control animals. Radial maze performance also was improved in DBA with NA lesions. Results suggest the NA as a possible site for modulating spatially mediated behaviors in poor-performing subjects.

Animals↗

Involvement of glutamatergic and dopaminergic systems in the reactivity of mice to spatial and non-spatial change.

Injections of glutamatergic NMDA as well as dopaminergic antagonists produce selective place- but not cue-learning deficits in associative spatial tasks. The present work was aimed at examining if the blockade of NMDA and dopaminergic receptors interferes with the encoding of spatial information in a non-associative task specifically designed for rodents. CD1 mice injected with MK-801 (0.1 and 0.25 mg/kg), haloperidol (0.04 and 0.08 mg/kg), a combination of the lower doses of each drug (haloperidol: 0.04 mg/kg and MK-801: 0.1 mg/kg) or saline were placed in an open field containing five objects and their reactivity to the displacement (spatial change) or the substitution (non-spatial change) of some of these objects was examined. The results show that saline-injected mice reacted to spatial as to non-spatial change by increasing the time spent exploring the displaced objects or the substituted one. Both doses of MK-801 prevented mice from detecting spatial change but did not affect their reactivity to the novel object. Both doses of haloperidol abolished the reactivity of mice to spatial change but the higher dose of the drug also altered the reaction to non-spatial change. Taken together, the present results indicate that the blockade of dopaminergic or glutamatergic NMDA receptors abolishes the detection of spatial novelty. The well-documented impairing effects of haloperidol and MK-801 on spatial learning may, therefore, be the consequence of a drug-induced inability in forming and/or updating spatial representations. The effects of haloperidol was, however, less specific than that of MK-801, since haloperidol always modified activity together with the response to spatial change and, at the higher dose, abolished the detection of both spatial and non-spatial change. Finally, haloperidol pretreatment was found to enhance the effect of MK-801 thus suggesting a possible interaction between the two systems in modulating these behavioral responses.

Analysis of Variance↗

Spatial and visual discrimination learning in CD1 mice: partial analogy between the effect of lesions to the hippocampus and the amygdala.

CD1 mice with dorsal hippocampal and central amygdaloid lesions were submitted to three radial eight-arm maze tasks requiring various degrees of spatial and nonspatial information processing. The results show that, on the standard version of the radial maze, only hippocampal lesions disrupted performance. In the spatial four-baited path task, both hippocampal and amygdaloid lesions increased the errors and modified the patterns of arm choice. Finally, on the visually cued four-baited path task, the two lesions did not affect any quantitative aspect of performance but a strong and unexpected effect of amygdaloid lesions on the patterns of arm choice was found. Taken together, the results indicate i) an effect of hippocampal lesions in all situations that require performing a spatial discrimination, and ii) an effect of amygdaloid lesions in all situations that require distinguishing between baited and unbaited arms, whatever the modality--spatial or visual--being relevant for discriminating the two sets of arms. The analogy between the effects of hippocampal and amygdaloid lesions specifically observed in the spatial four-baited path task suggests that these two limbic areas can exert a similar control on performance in tasks involving mapping operations based upon the discrimination of rewarded and nonrewarded reinforced locations.

Amygdala↗

The differences shown by C57BL/6 and DBA/2 inbred mice in detecting spatial novelty are subserved by a different hippocampal and parietal cortex interplay.

Inbred C57BL/6 (C57) and DBA/2 (DBA) mice with hippocampus, posterior parietal cortex or sham lesions were placed in an open-field containing five objects and their reactivity to the displacement (spatial novelty) or the substitution (object novelty) of some of these objects was examined. C57 mice reacted to spatial novelty by exploring more the displaced than the non-displaced objects while DBA mice did not show any consistent reaction. In the highly reactive C57 strain, the peak of exploratory responses directed towards the displaced objects was completely abolished by hippocampal and posterior parietal cortex lesions. In the non-reactive DBA strain, hippocampal lesions induced an aspecific decreased interest towards the two categories of objects while posterior parietal cortex lesions did not produce any behavioral modification. The high reactivity of C57 mice to spatial change appears to be subserved by the conjunctive participation of the hippocampus and the posterior parietal cortex. Conversely, the deficit shown by DBA mice in that situation seems to be related to: (i) a poorly functional hippocampus; and (ii) the non-involvement of the posterior parietal cortes. The present data suggest that the participation of the posterior parietal cortes to the detection of spatial novelty may depend on the degree of functionality of the hippocampus.

Animals↗

Radial maze performance and open-field behaviours in aged C57BL/6 mice: further evidence for preserved cognitive abilities during senescence.

C57BL/6 mice, aged 2 or 24 months, were tested in a radial maze and observed for an 8-min period, repeated on 3 consecutive days, in an open-field situation with a novel object. In the eight-arm maze, the number of unrepeated path choices made by old mice does not significantly increase with training, whereas it does in young mice. Older animals also take significantly longer to solve the task but the two age groups do not differ with respect to how many paths they run before making the first error or in the strategies used to solve the task. In the open-field situation, the two age groups differ with regard to grooming and rearing behaviour, while in the novelty situation, older animal show a higher level of locomotor activity, perform less freezing, and interact more with the novel object. Habituation curves for all parameters, except grooming in the open field, do not differ between the two groups, thus indicating that this form of nonassociative learning does not vary substantially with increasing age. Results are discussed in terms of preserved cognitive abilities during senescence in that strain.

Aging↗

Mechanical deafferentation of basal forebrain-cortical pathways and neurotoxic lesions of the nucleus basalis magnocellularis: comparative effect on spatial learning and cortical acetylcholine release in vivo.

Rats were assigned to one of the following treatments: bilateral cut of basal forebrain-cortical fibers (DEAFF), ibotenic (IBO) or quisqualic (QUIS) acid lesions of the NBM and sham operations (SHAM). They were trained to perform a radial eight-arm maze task with all the paths or only four paths baited. Cortical cholinergic release measured by microdialysis in vivo and choline acetyltransferase activity were also assessed in the four lesion conditions. The results show that, in the full baited maze task, only the DEAFF group showed a severe spatial learning impairment. In the four-baited path task, the DEAFF group was still more impaired than the other groups but a performance deficit also emerged in rats with IBO lesions. Neurochemical data indicated that cortical choline acetyltransferase activity was reduced by 25% after IBO lesions, by 52% after DEAFF and by 46% after Quis lesions. However, cortical cholinergic release, which dropped in the same fashion after DEAFF or QUIS lesions, was unaffected by IBO lesions. Thus, in spite of the distinctive patterns of behaviour exhibited by the three lesioned groups, no correlation between cortical cholinergic deficiencies and spatial learning impairment was found. The similar behavioural effects produced by DEAFF and fornix sections suggests that, among the basal forebrain-cortical pathways, descending fibers projecting onto the septo-hippocampal system could exert a strong control on spatial learning performance.

Acetylcholine↗

Learning in inbred mice: strain-specific abilities across three radial maze problems.

Mice belonging to the C57BL/6, DBA/2 (DBA), and C3H/He (C3H) strains were compared in three different eight-arm radial maze tasks requiring various degrees of spatial and nonspatial information processing. The results show that, on the standard radial maze task, C57 performed better than DBA, which, in turn, performed better than C3H. Fewer differences in the four-baited arm task and no difference in the cued version task were found between C57 and DBA, while C3H still performed more poorly. The high performance shown by C57 mice in all problems seems to be related to their ability to build up maze-running patterns based upon an optimal proportion of 45 degrees angle turns, according to the demand of the situation. The cognitive and discriminative mechanisms involved in the solving of each task, the sensorial characteristics of the three strains, and the limits of an approach based upon neuroanatomical-behavioral correlations are discussed.

Animals↗