Memory for the spatial layout of the everyday physical environment: differential rates of acquisition of different types of information.
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The authors propose that clinicians endeavor to differentiate between reversible and irreversible memory failures in patients with dissociative symptoms who report "memory gaps" and "lost time." The classic dissociative disorders, such as dissociative amnesia and dissociative identity disorder, entail reversible memory failures associated with encoding experience in altered states. The authors propose another realm of memory failures associated with severe dissociative detachment that may preclude the level of encoding of ongoing experience needed to support durable autobiographical memories. They describe how dissociative detachment may be intertwined with neurobiological factors that impair memory, and they spell out the significance of distinguishing reversible and irreversible memory impairment for diagnosis, patient education, psychotherapy, and research.
It is apparent that antibiotics are useful in differentiating different stages in the formation of memory. Puromycin gave the first indication that very early memory can be established and survive, for a short period at least, in spite of inhibition of protein synthesis (12). Injection of actinomycin D indicates that RNA synthesis is not essential during this early stage (13). The duration of this early period seems to vary with the inhibiting agent; with puromycin memory was notably degraded in less than an hour, but with actinomycin D or with acetoxycycloheximide it persisted for several hours or more. The fixation or consolidation of memory involves whatever processes give permanence to memory. These processes are disrupted when electroconvulsive shock is administered shortly after a learning experience, presumably because of the interference with organized patterns of neuronal electrical activity. Memory acquired in the presence of antibiotics appears to proceed to a stage beyond that based purely on electrical activity because the memory persists beyond the period usually reported as sensitive to electroconvulsive shock. Further work should show whether this stage is truly insensitive to electroconvulsive shock. Memory acquired in the presence of puromycin does not seem to achieve any durable consolidation. In contrast, memory acquired in the presence of or immediately before injection of acetoxycycloheximide does appear to initiate the later stages of consolidation, as permanent memory. reappears some days after the initial stages have become ineffective in controlling performance. Finally, puromycin has provided evidence of the enlarged area of the neocortex which participates as memory matures. Puromycin also indicates the time required for this maturation process. Since antibiotics have also been useful in studying learning and memory in goldfish (14), this approach seems to have general applicability in defining various stages in the process of memory formation. The initial purpose of these investigations was to determine the molecular basis of the "memory trace" This goal still remains distant, although there are some indications that protein synthesizing systems are involved. This objective, though of enormous interest, is to be regarded as only a necessary first step. Whether new proteins or some other molecules cause the changes in synapses thought to underlie memory, this knowledge of itself will contribute only a beginning to our understanding of the events which account for the functioning of the brain. A determination of the composition of computer components would provide very little information towards unraveling their function. As the experiments proceeded, however, information of a more general nature was being obtained. The identification of different stages of consolidation show how injections of antibiotics can supplement electroconvulsive shock as a way of disrupting the establishment of memory and how it can supplement ablation in destroying memory already laid down in a permanent mode. Applied to larger animals the localization of various regions sensitive or insensitive to the action of the drugs should become more definitive. We hope that such experiments will contribute increasingly to the general problem of brain function.
Primary immunization of healthy adults with vaccinia virus induces a local vesicle or "take" in the majority of vaccinees that previously has been shown to correlate with protection against smallpox. However, the immunologic mechanisms underlying this protective response in humans are not well characterized. We have studied human CD8+ T cells for the expression patterns of phenotypic markers and cytolytic effector molecules before and after primary smallpox immunization using nine-color polychromatic flow cytometry. One month after immunization, vaccinees developed vaccinia virus-specific CD8+ T cells with an effector cell phenotype containing both granzyme A and granzyme B. One year after immunization, we found a significant decrease in granzyme B containing cells and an increased memory cell phenotype in virus-specific CD8+ T cells. Perforin was rarely expressed directly ex vivo, but was highly expressed after Ag-specific activation in vitro. Together, these data suggest an important role for effector CD8+ T cells in controlling poxvirus infection, and have implications for our understanding of human CD8+ T cell differentiation.
Regulation of peripheral T cell responses is critical for preserving self tolerance. Memory T cells have a lower threshold for activation through the TCR and are thought to be less dependent on costimulation than naive T cells, suggesting a requirement for more stringent regulation of memory T cells. We have recently shown that CD4 engagement apart from the TCR results in the inactivation of memory, but not naive, CD4 T cells. We show here that this inhibition requires ligation of CTLA-4, in that blocking CTLA-4-B7 interactions restores memory CD4 T cell responsiveness. Early signaling through CTLA-4 is possible because resting memory, but not naive, CD4 T cells contain intracellular stores of CTLA-4 that are continuously recycled between the cytoplasm and the cell surface. This mechanism ensures that low intensity TCR engagements, which are thought to be important for peripheral T cell longevity, do not cause memory T cell activation but instead raise their threshold for costimulatory signals. This may give memory T cells an extended lifespan with a reduced risk of inappropriate activation.
Stimulation of naive CD4 cells by specific antigen results in proliferation and changes in cell surface marker expression as the cells differentiate into effector and memory cells. Several of the marker changes (e.g., differences in CD45RB, CD44, and L-selectin levels) appear to be relatively stable and permit the identification of memory T cells. In this study, we examined the acquisition of memory markers after the initial stimulation of naive T cells. CD4(+) T cells from DO11.10 TCR transgenic mice were labeled with the fluorescent dye carboxyfluorescein diacetate succinimidyl ester (CFSE) and were stimulated with specific antigen (OVA323-339). Specific activation was observed, as CFSE-associated fluorescence was reduced twofold with each division of DO11.10 clonotype-bearing cells. Phenotypic changes could also be observed as the cells differentiated into effector/memory cells. However, individual surface markers exhibited a varied relationship to cell division. Although changes in some markers (L-selectin) occurred independently of cell division, changes in other markers were either strictly related to cell division (CD45RB) or were a prerequisite to cell division (CD4, CD44).
It is widely accepted that the hippocampus plays an essential role in memory. Furthermore, studies have suggested that subregions within the hippocampus contribute differentially to specific behavioral components of memory. These studies typically rely on lesions produced by localized injections of neurotoxins (e.g., ibotenic acid or colchicine) into targeted subregions of the hippocampus. In the present study, the specificity of ibotenic acid lesions into areas CA1 and CA3 and colchicine lesions into the dorsal dentate gyrus (DG) was tested. Specifically, the effects of lesions within the dorsal hippocampus, the ventral hippocampus, and areas outside the hippocampus (e.g., lateral septum and entorhinal cortex) were evaluated using Fluoro-Jade, a histofluorescent stain for degenerating neurons. The results show that cell loss is relatively uniform after ibotenic acid injections into areas CA1 and CA3 and variable after colchicine injections into DG. CA1 and CA3 lesions appeared mostly localized to those relative subregions, and DG lesions appeared highly localized to the DG. Using these lesion procedures, little cell loss was apparent in the ventral hippocampus, and no cell loss was apparent in the entorhinal cortex. It is suggested that the lesion procedures described in this study produce relatively selective lesions of neurons within specific subregions of the hippocampus and should be useful for studies examining possible differential contributions of hippocampal subregions to memory processes.
Explicit memory and repetition priming, a form of implicit memory, were examined in depressed patients and controls. Explicit memory of depressed patients was severely impaired, whereas repetition priming was intact. These results are consistent with the hypothesis that the impairment of memory in depression is linked to a failure of effort-demanding cognitive processes. Repetition priming might be useful in differentiating between depression and dementia.
The influence of educational level and age on executive function, as evaluated by the Wisconsin Card Sorting Test (WCST), and 'working memory,' as evaluated by means of a visual-manual delayed-response task, has been investigated in 25 schizophrenic patients and 35 healthy controls matched for age. Different patterns of correlations between educational level, age and cognitive variables were seen for the 'working memory' task but not for the WCST. No significant correlations between the WCST and the 'working memory' task indexes have been observed. Based on multivariate analyses, poor performance of schizophrenic patients on working memory and executive function tasks was observed; after covarying for the educational level, group differences were no longer significant for executive functions, but the difference in 'working memory' performance persisted. The implications of sociodemographic variables as well as the role of statistical manipulation are evaluated and their differential impact on 'working memory' and executive functions is proposed in further support of these neurocognitive constructs that may be dissociable.
We previously reported that cyclosporin A (CSA) promotes the generation of T helper memory cells during antigenic priming of murine spleen cells in vitro. More recently, we have demonstrated that interleukin-2 (IL2) has a downmodulating effect on T helper memory cell generation. The present data address the role of the other T cell growth factor, IL4, upon induction of these cells. The data presented here show that IL4 can interfere with this process: addition of rIL4 to immunosuppressed priming cultures leads to a considerable decrease in the helper activity of the recovered cells. However, in standard cultures, in which IL2 is normally produced, no effect of IL4 on T helper memory cell generation was found. Addition of IL4 has important consequences for cytokines produced upon antigenic restimulation. In standard cultures, IL4 primes for cells expressing high levels of IL2 and IL4 mRNA. Strikingly, in immunosuppressed priming cultures, IL4 counterbalances the CSA-induced blockade of the IFN gamma gene. Taken together, our results suggest that the unique role of IL4 is to drive T helper memory precursors into an IL4 production differentiation pathway. However, IL4 has a downmodulating effect on memory T helper cell induction when IL2 is not produced. These results confirm that synergy between IL2 and IL4 is mandatory for the directive role of IL4 upon IL4-producing cells. Furthermore, the finding that IL4 promotes the induction of IFN gamma in a CSA-resistant pathway represents a new tool for analysis of regulation of the IFN gamma gene.
Naïve and memory T cells can divide in an antigen-independent manner in vivo maintaining independently a constant pool size. While naïve T cells require TCR tickling by self-MHC for homeostatic proliferation in lymphopenic mice, memory cells do not but respond to cytokines. Human naive and memory CD4+ T cell subsets can be selectively expanded in vitro with different cytokine combinations. Responsiveness of T cells to homeostatic cytokines is associated with the differentiation state. Thus, while memory cells respond directly to IL-7 and IL-15, naïve T cells require costimulation by dendritic cell-derived cytokines, and selectively respond to IL-4. This differential cytokine responsiveness is associated with the expression and modulation of the relevant cytokine receptors. Cytokine-driven proliferation is independent of TCR-stimulation and shows distinct signal transduction requirements. While cytokine-expanded naive T cells maintain a naive phenotype, memory cells differentiate acquiring new effector functions and switching expression of chemokine receptors. Thus human naïve and memory T cell pools can be maintained with homeostatic cytokines in the absence of TCR stimulation.
Human immunodeficiency virus and simian immunodeficiency virus (SIV) induce a slow progressive disease, characterized by the massive loss of memory CD4+ T cells during the acute infection followed by a recovery phase in which virus replication is partially controlled. However, because the initial injury is so severe and virus production persists, the immune system eventually collapses and a symptomatic fatal disease invariably occurs. We have assessed CD4+ T-cell dynamics and disease progression in 12 SIV-infected rhesus monkeys for nearly 2 years. Three macaques exhibiting a rapid progressor phenotype experienced rapid and irreversible loss of memory, but not naïve, CD4+ T lymphocytes from peripheral blood and secondary lymphoid tissues and died within the first 6 months of virus inoculation. In contrast, SIV-infected conventional progressor animals sustained marked but incomplete depletions of memory CD4+ T cells and continuous activation/proliferation of this T-lymphocyte subset. This was associated with a profound loss of naïve CD4+ T cells from peripheral blood and secondary lymphoid tissues, which declined at rates that correlated with disease progression. These data suggest that the persistent loss of memory CD4(+)T cells, which are being eliminated by direct virus killing and activation-induced cell death, requires the continuous differentiation of naïve into memory CD4+ T cells. This unrelenting replenishment process eventually leads to the exhaustion of the naïve CD4+T-cell pool and the development of disease.
The hippocampus and the amygdala are involved in avoidance learning in mammals. The medial and lateral pallia of actinopterygian fish have been proposed as homologous to the mammalian pallial amygdala and hippocampus, respectively, on the basis of neuroanatomical findings. This work was aimed at studying the effects of ablation of the medial telencephalic pallia (MP) and lateral telencephalic pallia (LP) in goldfish on the retention of a conditioned avoidance response previously acquired in two experimental conditions. In the first experiment, fish were trained in nontrace avoidance conditioning. In the second experiment, fish were trained in trace avoidance conditioning in which temporal cues were crucial for the learning process. An MP lesion affected the retention of the avoidance response in both procedures; in contrast, an LP lesion impaired the retention only in the trace-conditioning procedure. These data support the presence of two different systems of memory in fish, based on discrete telencephalic areas: the MP, involved in an emotional memory system; and the LP, involved in a spatial, relational, or temporal memory system. Moreover, these differential effects were similar to those produced by amygdalar and hippocampal lesions in mammals. We conclude that these specialized systems of memory could have appeared early during phylogenesis and could have been conserved throughout vertebrate evolution.
We studied the effects of infusion of nerve growth factor (NGF) into the hippocampus and entorhinal cortex of male Wistar rats (250-300 g, N = 11-13 per group) on inhibitory avoidance retention. In order to evaluate the modulation of entorhinal and hippocampal NGF in short- and long-term memory, animals were implanted with cannulae in the CA1 area of the dorsal hippocampus or entorhinal cortex and trained in one-trial step-down inhibitory avoidance (foot shock, 0.4 mA). Retention tests were carried out 1.5 h or 24 h after training to measure short- and long-term memory, respectively. Immediately after training, rats received 5 microl NGF (0.05, 0.5 or 5.0 ng) or saline per side into the CA1 area and entorhinal cortex. The correct position of the cannulae was confirmed by histological analysis. The highest dose of NGF (5.0 ng) into the hippocampus blocked short-term memory (P < 0.05), whereas the doses of 0.5 (P < 0.05) and 5.0 ng (P < 0.01) NGF enhanced long-term memory. NGF administration into the entorhinal cortex improved long-term memory at the dose of 5.0 ng (P < 0.05) and did not alter short-term memory. Taken as a whole, our results suggest a differential modulation by entorhinal and hippocampal NGF of short- and long-term memory.
A unique behavioral paradigm has been developed for Periplaneta americana that assesses the timing and success of memory consolidation leading to long-term memory of visual-olfactory associations. The brains of trained and control animals, removed at the critical consolidation period, were screened by two-directional suppression subtractive hybridization. Screens identified neurobiologically relevant as well as novel genes that are differentially expressed at the consolidation phase of memory. The differential expression of six transcripts was confirmed with real-time RT-PCR experiments. There are mitochondrial DNA encoded transcripts among the up-regulated ones (COX, ATPase6). One of the confirmed down-regulated transcripts is RNA polymerase II largest subunit. The mitochondrial genes are of particular interest because mitochondria represent autonomous DNA at synapses. These transcripts will be used as one of several tools in the identification of neuronal circuits, such as in the mushroom bodies, that are implicated in memory consolidation.