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1.
PLoS One ; 19(6): e0305066, 2024.
Article in English | MEDLINE | ID: mdl-38843228

ABSTRACT

A large body of evidence has shown that treatments that interfere with memory consolidation become ineffective when animals are subjected to an intense learning experience; this effect has been observed after systemic and local administration of amnestic drugs into several brain areas, including the striatum. However, the effects of amnestic treatments on the process of extinction after intense training have not been studied. Previous research demonstrated increased spinogenesis in the dorsomedial striatum, but not in the dorsolateral striatum after intense training, indicating that the dorsomedial striatum is involved in the protective effect of intense training. To investigate this issue, male Wistar rats, previously trained with low, moderate, or high levels of foot shock, were used to study the effect of tetrodotoxin inactivation of dorsomedial striatum on memory consolidation and subsequent extinction of inhibitory avoidance. Performance of the task was evaluated during seven extinction sessions. Tetrodotoxin produced a marked deficit of memory consolidation of inhibitory avoidance trained with low and moderate intensities of foot shock, but normal consolidation occurred when a relatively high foot shock was used. The protective effect of intense training was long-lasting, as evidenced by the high resistance to extinction exhibited throughout the extinction sessions. We discuss the possibility that increased dendritic spinogenesis in dorsomedial striatum may underly this protective effect, and how this mechanism may be related to the resilient memory typical of post-traumatic stress disorder (PTSD).


Subject(s)
Avoidance Learning , Corpus Striatum , Extinction, Psychological , Rats, Wistar , Tetrodotoxin , Animals , Male , Extinction, Psychological/drug effects , Extinction, Psychological/physiology , Rats , Avoidance Learning/drug effects , Avoidance Learning/physiology , Corpus Striatum/physiology , Corpus Striatum/drug effects , Tetrodotoxin/pharmacology , Memory Consolidation/drug effects , Memory Consolidation/physiology , Amnesia/physiopathology , Amnesia/prevention & control , Electroshock
2.
Transl Psychiatry ; 14(1): 242, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38844463

ABSTRACT

It has been well established that a consolidated memory can be updated during the plastic state induced by reactivation. This updating process opens the possibility to modify maladaptive memory. In the present study, we evaluated whether fear memory could be updated to less-aversive level by incorporating hedonic information during reactivation. Thus, male rats were fear conditioned and, during retrieval, a female was presented as a social rewarding stimulus. We found that memory reactivation with a female (but not a male) reduces fear expression within-session and in the test, without presenting reinstatement or spontaneous recovery. Interestingly, this intervention impaired extinction. Finally, we demonstrated that this emotional remodeling to eliminate fear expression requires the activation of dopamine and oxytocin receptors during retrieval. Hence, these results shed new lights on the memory updating process and suggests that the exposure to natural rewarding information such as a female during retrieval reduces a previously consolidated fear memory.


Subject(s)
Fear , Receptors, Oxytocin , Social Interaction , Animals , Fear/physiology , Male , Rats , Receptors, Oxytocin/metabolism , Female , Memory/physiology , Extinction, Psychological/physiology , Receptors, Dopamine/metabolism , Conditioning, Classical/physiology , Reward , Rats, Wistar , Memory Consolidation/physiology
3.
Cereb Cortex ; 34(5)2024 May 02.
Article in English | MEDLINE | ID: mdl-38745557

ABSTRACT

Sleep supports memory consolidation via the reactivation of newly formed memory traces. One way to investigate memory reactivation in sleep is by exposing the sleeping brain to auditory retrieval cues; a paradigm known as targeted memory reactivation. To what extent the acoustic properties of memory cues influence the effectiveness of targeted memory reactivation, however, has received limited attention. We addressed this question by exploring how verbal and non-verbal memory cues affect oscillatory activity linked to memory reactivation in sleep. Fifty-one healthy male adults learned to associate visual stimuli with spoken words (verbal cues) and environmental sounds (non-verbal cues). Subsets of the verbal and non-verbal memory cues were then replayed during sleep. The voice of the verbal cues was either matched or mismatched to learning. Memory cues (relative to unheard control cues) prompted an increase in theta/alpha and spindle power, which have been heavily implicated in sleep-associated memory processing. Moreover, verbal memory cues were associated with a stronger increase in spindle power than non-verbal memory cues. There were no significant differences between the matched and mismatched verbal cues. Our findings suggest that verbal memory cues may be most effective for triggering memory reactivation in sleep, as indicated by an amplified spindle response.


Subject(s)
Cues , Electroencephalography , Mental Recall , Sleep , Humans , Male , Young Adult , Sleep/physiology , Adult , Mental Recall/physiology , Memory Consolidation/physiology , Acoustic Stimulation , Brain/physiology , Photic Stimulation/methods , Brain Waves/physiology
4.
Cognition ; 248: 105810, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38733867

ABSTRACT

Human observers often exhibit remarkable consistency in remembering specific visual details, such as certain face images. This phenomenon is commonly attributed to visual memorability, a collection of stimulus attributes that enhance the long-term retention of visual information. However, the exact contributions of visual memorability to visual memory formation remain elusive as these effects could emerge anywhere from early perceptual encoding to post-perceptual memory consolidation processes. To clarify this, we tested three key predictions from the hypothesis that visual memorability facilitates early perceptual encoding that supports the formation of visual short-term memory (VSTM) and the retention of visual long-term memory (VLTM). First, we examined whether memorability benefits in VSTM encoding manifest early, even within the constraints of a brief stimulus presentation (100-200 ms; Experiment 1). We achieved this by manipulating stimulus presentation duration in a VSTM change detection task using face images with high- or low-memorability while ensuring they were equally familiar to the participants. Second, we assessed whether this early memorability benefit increases the likelihood of VSTM retention, even with post-stimulus masking designed to interrupt post-perceptual VSTM consolidation processes (Experiment 2). Last, we investigated the durability of memorability benefits by manipulating memory retention intervals from seconds to 24 h (Experiment 3). Across experiments, our data suggest that visual memorability has an early impact on VSTM formation, persisting across variable retention intervals and predicting subsequent VLTM overnight. Combined, these findings highlight that visual memorability enhances visual memory within 100-200 ms following stimulus onset, resulting in robust memory traces resistant to post-perceptual interruption and long-term forgetting.


Subject(s)
Memory, Long-Term , Memory, Short-Term , Humans , Young Adult , Adult , Male , Female , Memory, Long-Term/physiology , Memory, Short-Term/physiology , Visual Perception/physiology , Facial Recognition/physiology , Memory Consolidation/physiology , Adolescent
5.
Curr Biol ; 34(10): 2247-2255.e5, 2024 05 20.
Article in English | MEDLINE | ID: mdl-38714199

ABSTRACT

Rapid eye movement (REM) sleep is known to facilitate fear extinction and play a protective role against fearful memories.1,2 Consequently, disruption of REM sleep after a traumatic event may increase the risk for developing PTSD.3,4 However, the underlying mechanisms by which REM sleep promotes extinction of aversive memories remain largely unknown. The infralimbic cortex (IL) is a key brain structure for the consolidation of extinction memory.5 Using calcium imaging, we found in mice that most IL pyramidal neurons are intensively activated during REM sleep. Optogenetically suppressing the IL specifically during REM sleep within a 4-h window after auditory-cued fear conditioning impaired extinction memory consolidation. In contrast, REM-specific IL inhibition after extinction learning did not affect the extinction memory. Whole-cell patch-clamp recordings demonstrated that inactivating IL neurons during REM sleep depresses their excitability. Together, our findings suggest that REM sleep after fear conditioning facilitates fear extinction by enhancing IL excitability and highlight the importance of REM sleep in the aftermath of traumatic events for protecting against traumatic memories.


Subject(s)
Extinction, Psychological , Fear , Sleep, REM , Animals , Fear/physiology , Sleep, REM/physiology , Mice , Extinction, Psychological/physiology , Male , Mice, Inbred C57BL , Memory/physiology , Memory Consolidation/physiology , Conditioning, Classical/physiology , Pyramidal Cells/physiology
6.
eNeuro ; 11(5)2024 May.
Article in English | MEDLINE | ID: mdl-38769012

ABSTRACT

Emotionally salient components of memory are preferentially remembered at the expense of accompanying neutral information. This emotional memory trade-off is enhanced over time, and possibly sleep, through a process of memory consolidation. Sleep is believed to benefit memory through a process of reactivation during nonrapid eye movement sleep (NREM). Here, targeted memory reactivation (TMR) was used to manipulate the reactivation of negative and neutral memories during NREM sleep. Thirty-one male and female participants encoded composite scenes containing either a negative or neutral object superimposed on an always neutral background. During NREM sleep, sounds associated with the scene object were replayed, and memory for object and background components was tested the following morning. We found that TMR during NREM sleep improved memory for neutral, but not negative scene objects. This effect was associated with sleep spindle activity, with a larger spindle response following TMR cues predicting TMR effectiveness for neutral items only. These findings therefore do not suggest a role of NREM memory reactivation in enhancing the emotional memory trade-off across a 12 h period but do align with growing evidence of spindle-mediated memory reactivation in service of neutral declarative memory.


Subject(s)
Electroencephalography , Humans , Male , Female , Young Adult , Adult , Memory/physiology , Memory Consolidation/physiology , Emotions/physiology , Sleep/physiology , Adolescent , Sleep Stages/physiology , Eye Movements/physiology
7.
Nature ; 629(8014): 1109-1117, 2024 May.
Article in English | MEDLINE | ID: mdl-38750359

ABSTRACT

Working memory, the process through which information is transiently maintained and manipulated over a brief period, is essential for most cognitive functions1-4. However, the mechanisms underlying the generation and evolution of working-memory neuronal representations at the population level over long timescales remain unclear. Here, to identify these mechanisms, we trained head-fixed mice to perform an olfactory delayed-association task in which the mice made decisions depending on the sequential identity of two odours separated by a 5 s delay. Optogenetic inhibition of secondary motor neurons during the late-delay and choice epochs strongly impaired the task performance of the mice. Mesoscopic calcium imaging of large neuronal populations of the secondary motor cortex (M2), retrosplenial cortex (RSA) and primary motor cortex (M1) showed that many late-delay-epoch-selective neurons emerged in M2 as the mice learned the task. Working-memory late-delay decoding accuracy substantially improved in the M2, but not in the M1 or RSA, as the mice became experts. During the early expert phase, working-memory representations during the late-delay epoch drifted across days, while the stimulus and choice representations stabilized. In contrast to single-plane layer 2/3 (L2/3) imaging, simultaneous volumetric calcium imaging of up to 73,307 M2 neurons, which included superficial L5 neurons, also revealed stabilization of late-delay working-memory representations with continued practice. Thus, delay- and choice-related activities that are essential for working-memory performance drift during learning and stabilize only after several days of expert performance.


Subject(s)
Memory Consolidation , Memory, Short-Term , Practice, Psychological , Animals , Female , Male , Mice , Calcium/metabolism , Choice Behavior/physiology , Memory Consolidation/physiology , Memory, Short-Term/physiology , Mice, Inbred C57BL , Motor Cortex/physiology , Motor Cortex/cytology , Motor Neurons/physiology , Odorants/analysis , Optogenetics , Psychomotor Performance/physiology , Smell/physiology , Time Factors
8.
Cortex ; 175: 12-27, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38701643

ABSTRACT

Navigation through space is based on memory representations of landmarks ('place') or movement sequences ('response'). Over time, memory representations transform through consolidation. However, it is unclear how the transformation affects place and response navigation in humans. In the present study, healthy adults navigated to target locations in a virtual maze. The preference for using place and response strategies and the ability to recall place and response memories were tested after a delay of one hour (n = 31), one day (n = 30), or two weeks (n = 32). The different delays captured early-phase synaptic changes, changes after one night of sleep, and long-delay changes due to the reorganization of navigation networks. Our results show that the relative contributions of place and response navigation changed as a function of time. After a short delay of up to one day, participants preferentially used a place strategy and exhibited a high degree of visual landmark exploration. After a longer delay of two weeks, place strategy use decreased significantly. Participants now equally relied on place and response strategy use and increasingly repeated previously taken paths. Further analyses indicate that response strategy use predominantly occurred as a compensatory strategy in the absence of sufficient place memory. Over time, place memory faded before response memory. We suggest that the observed shift from place to response navigation is context-dependent since detailed landmark information, which strongly relied on hippocampal function, decayed faster than sequence information, which required less detail and depended on extra-hippocampal areas. We conclude that changes in place and response navigation likely reflect the reorganization of navigation networks during systems consolidation.


Subject(s)
Memory Consolidation , Spatial Navigation , Humans , Male , Memory Consolidation/physiology , Spatial Navigation/physiology , Female , Adult , Young Adult , Space Perception/physiology , Spatial Memory/physiology , Hippocampus/physiology , Mental Recall/physiology , Maze Learning/physiology
9.
Neurobiol Learn Mem ; 212: 107939, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38762038

ABSTRACT

Recognizing and remembering another individual in a social context could be beneficial for individual fitness. Especially in agonistic encounters, remembering an opponent and the previous fight could allow for avoiding new conflicts. Considering this, we hypothesized that this type of social interaction forms a long-term recognition memory lasting several days. It has been shown that a second encounter 24 h later between the same pair of zebrafish males is resolved with lower levels of aggression. Here, we evaluated if this behavioral change could last for longer intervals and a putative mechanism associated with memory storage: the recruitment of NMDA receptors. We found that if a pair of zebrafish males fight and fight again 48 or 72 h later, they resolve the second encounter with lower levels of aggression. However, if opponents were exposed to MK-801 (NMDA receptor antagonist) immediately after the first encounter, they solved the second one with the same levels of aggression: that is, no reduction in aggressive behaviors was observed. These amnesic effect suggest the formation of a long-term social memory related to recognizing a particular opponent and/or the outcome and features of a previous fight.


Subject(s)
Aggression , Dizocilpine Maleate , Memory Consolidation , Memory, Long-Term , Zebrafish , Animals , Zebrafish/physiology , Male , Aggression/physiology , Aggression/drug effects , Memory Consolidation/physiology , Memory Consolidation/drug effects , Dizocilpine Maleate/pharmacology , Memory, Long-Term/physiology , Memory, Long-Term/drug effects , Receptors, N-Methyl-D-Aspartate/antagonists & inhibitors , Recognition, Psychology/physiology , Recognition, Psychology/drug effects , Social Behavior , Excitatory Amino Acid Antagonists/pharmacology , Behavior, Animal/drug effects , Behavior, Animal/physiology
10.
Neurobiol Learn Mem ; 212: 107940, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38762039

ABSTRACT

A short period of eyes-closed waking rest improves long-term memory for recently learned information, including declarative, spatial, and procedural memory. However, the effect of rest on emotional memory consolidation remains unknown. This preregistered study aimed to establish whether post-encoding rest affects emotional memory and how anxiety levels might modulate this effect. Participants completed a modified version of the dot-probe attention task that involved reacting to and encoding word stimuli appearing underneath emotionally negative or neutral photos. We tested the effect of waking rest on memory for these words and pictures by manipulating the state that participants entered just after this task (rest vs. active wake). Trait anxiety levels were measured using the State-Trait Anxiety Inventory and examined as a covariate. Waking rest improved emotional memory consolidation for individuals high in trait anxiety. These results suggest that the beneficial effect of waking rest on memory extends into the emotional memory domain but depends on individual characteristics such as anxiety.


Subject(s)
Anxiety , Emotions , Memory Consolidation , Rest , Humans , Anxiety/psychology , Anxiety/physiopathology , Emotions/physiology , Male , Female , Memory Consolidation/physiology , Young Adult , Rest/physiology , Adult , Wakefulness/physiology , Adolescent , Attention/physiology , Personality/physiology
11.
Biol Pharm Bull ; 47(5): 1021-1027, 2024.
Article in English | MEDLINE | ID: mdl-38797694

ABSTRACT

Learning and memory are affected by novel enriched environment, a condition where animals play and interact with a variety of toys and conspecifics. Exposure of animals to the novel enriched environments improves memory by altering neural plasticity during natural sleep, a process called memory consolidation. The hippocampus, a pivotal brain region for learning and memory, generates high-frequency oscillations called ripples during sleep, which is required for memory consolidation. Naturally occurring sleep shares characteristics in common with general anesthesia in terms of extracellular oscillations, guaranteeing anesthetized animals suitable to examine neural activity in a sleep-like state. However, it is poorly understood whether the preexposure of animals to the novel enriched environment modulates neural activity in the hippocampus under subsequent anesthesia. To ask this question, we allowed mice to freely explore the novel enriched environment or their standard environment, anesthetized them, and recorded local field potentials in the hippocampal CA1 area. We then compared the characteristics of hippocampal ripples between the two groups and found that the amplitude of ripples and the number of successive ripples were larger in the novel enriched environment group than in the standard environment group, suggesting that the afferent synaptic input from the CA3 area to the CA1 area was higher when the animals underwent the novel enriched environment. These results underscore the importance of prior experience that surpasses subsequent physical states from the neurophysiological point of view.


Subject(s)
Hippocampus , Urethane , Animals , Urethane/pharmacology , Male , Hippocampus/physiology , Mice , Environment , Mice, Inbred C57BL , Sleep/physiology , CA1 Region, Hippocampal/physiology , Anesthetics, Intravenous/administration & dosage , Memory Consolidation/physiology
12.
Sci Rep ; 14(1): 9057, 2024 04 20.
Article in English | MEDLINE | ID: mdl-38643331

ABSTRACT

Sleep facilitates declarative memory consolidation, which is assumed to rely on the reactivation of newly encoded memories orchestrated by the temporal interplay of slow oscillations (SO), fast spindles and ripples. SO as well as the number of spindles coupled to SO are more frequent during slow wave sleep (SWS) compared to lighter sleep stage 2 (S2). But, it is unclear whether memory reactivation is more effective during SWS than during S2. To test this question, we applied Targeted Memory Reactivation (TMR) in a declarative memory design by presenting learning-associated sound cues during SWS vs. S2 in a counterbalanced within-subject design. Contrary to our hypothesis, memory performance was not significantly better when cues were presented during SWS. Event-related potential (ERP) amplitudes were significantly higher for cues presented during SWS than S2, and the density of SO and SO-spindle complexes was generally higher during SWS than during S2. Whereas SO density increased during and after the TMR period, SO-spindle complexes decreased. None of the parameters were associated with memory performance. These findings suggest that the efficacy of TMR does not depend on whether it is administered during SWS or S2, despite differential processing of memory cues in these sleep stages.


Subject(s)
Memory Consolidation , Sleep, Slow-Wave , Memory/physiology , Electroencephalography , Sleep/physiology , Sleep Stages/physiology , Memory Consolidation/physiology
13.
eNeuro ; 11(4)2024 Apr.
Article in English | MEDLINE | ID: mdl-38627063

ABSTRACT

Trace eyeblink conditioning (TEBC) has been widely used to study associative learning in both animals and humans. In this paradigm, conditioned responses (CRs) to conditioned stimuli (CS) serve as a measure for retrieving learned associations between the CS and the unconditioned stimuli (US) within a trial. Memory consolidation, that is, learning over time, can be quantified as an increase in the proportion of CRs across training sessions. However, how hippocampal oscillations differentiate between successful memory retrieval within a session and consolidation across TEBC training sessions remains unknown. To address this question, we recorded local field potentials (LFPs) from the rat dorsal hippocampus during TEBC and investigated hippocampal oscillation dynamics associated with these two functions. We show that transient broadband responses to the CS were correlated with memory consolidation, as indexed by an increase in CRs across TEBC sessions. In contrast, induced alpha (8-10 Hz) and beta (16-20 Hz) band responses were correlated with the successful retrieval of the CS-US association within a session, as indexed by the difference in trials with and without CR.


Subject(s)
Conditioning, Eyelid , Hippocampus , Memory Consolidation , Mental Recall , Rats, Long-Evans , Hippocampus/physiology , Male , Conditioning, Eyelid/physiology , Animals , Memory Consolidation/physiology , Mental Recall/physiology , Association Learning/physiology , Rats , Conditioning, Classical/physiology , Blinking/physiology
14.
Sci Rep ; 14(1): 9487, 2024 04 25.
Article in English | MEDLINE | ID: mdl-38664506

ABSTRACT

In dogs, as in humans, both emotional and learning pretreatment affect subsequent behaviour and sleep. Although learning often occurs in an emotional-social context, the emotion-learning interplay in such context remain mainly unknown. Aims were to assess the effects of Controlling versus Permissive (emotional factors) training (learning factors) styles on dogs' behaviour, learning performance, and sleep. Family dogs (N = 24) participated in two command learning sessions employing the two training styles with each session followed by assessment of learning performance, a 2-h-long non-invasive sleep EEG measurement, and a retest of learning performance. Pre- to post-sleep improvement in learning performance was evident in dogs that received the Permissive training during the second learning session, indicating that dogs that experienced a more rewarding situation than expected (positive expectancy violation) during the second training session showed improved learning success after their afternoon sleep. These results possibly indicate an interactive effect of expectancy violation and sleep on enhancing learning.


Subject(s)
Learning , Memory Consolidation , Sleep , Animals , Dogs , Sleep/physiology , Memory Consolidation/physiology , Male , Learning/physiology , Female , Behavior, Animal/physiology , Electroencephalography , Emotions/physiology
15.
J Theor Biol ; 588: 111818, 2024 Jul 07.
Article in English | MEDLINE | ID: mdl-38621583

ABSTRACT

The standard consolidation theory states that short-term memories located in the hippocampus enable the consolidation of long-term memories in the neocortex. In other words, the neocortex slowly learns long-term memories with a transient support of the hippocampus that quickly learns unstable memories. However, it is not clear yet what could be the neurobiological mechanisms underlying these differences in learning rates and memory time-scales. Here, we propose a novel modeling approach of the standard consolidation theory, that focuses on its potential neurobiological mechanisms. In addition to synaptic plasticity and spike frequency adaptation, our model incorporates adult neurogenesis in the dentate gyrus as well as the difference in size between the neocortex and the hippocampus, that we associate with distance-dependent synaptic plasticity. We also take into account the interconnected spatial structure of the involved brain areas, by incorporating the above neurobiological mechanisms in a coupled neural field framework, where each area is represented by a separate neural field with intra- and inter-area connections. To our knowledge, this is the first attempt to apply neural fields to this process. Using numerical simulations and mathematical analysis, we explore the short-term and long-term dynamics of the model upon alternance of phases of hippocampal replay and retrieval cue of an external input. This external input is encodable as a memory pattern in the form of a multiple bump attractor pattern in the individual neural fields. In the model, hippocampal memory patterns become encoded first, before neocortical ones, because of the smaller distances between the bumps of the hippocampal memory patterns. As a result, retrieval of the input pattern in the neocortex at short time-scales necessitates the additional input delivered by the memory pattern of the hippocampus. Neocortical memory patterns progressively consolidate at longer times, up to a point where their retrieval does not need the support of the hippocampus anymore. At longer times, perturbation of the hippocampal neural fields by neurogenesis erases the hippocampus pattern, leading to a final state where the memory pattern is exclusively evoked in the neocortex. Therefore, the dynamics of our model successfully reproduces the main features of the standard consolidation theory. This suggests that neurogenesis in the hippocampus and distance-dependent synaptic plasticity coupled to synaptic depression and spike frequency adaptation, are indeed critical neurobiological processes in memory consolidation.


Subject(s)
Hippocampus , Memory Consolidation , Models, Neurological , Neuronal Plasticity , Neuronal Plasticity/physiology , Humans , Hippocampus/physiology , Memory Consolidation/physiology , Neocortex/physiology , Animals , Neurogenesis/physiology
16.
Neurochem Int ; 176: 105740, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38636905

ABSTRACT

The benefits of physical exercise (PE) on memory consolidation have been well-documented in both healthy and memory-impaired animals. However, the underlying mechanisms through which PE exerts these effects are still unclear. In this study, we aimed to investigate the role of hippocampal protein synthesis in memory modulation by acute PE in rats. After novel object recognition (NOR) training, rats were subjected to a 30-min moderate-intensity acute PE on the treadmill, while control animals did not undergo any procedures. Using anisomycin (ANI) and rapamycin (RAPA), compounds that inhibit protein synthesis through different mechanisms, we manipulated protein synthesis in the CA1 region of the hippocampus to examine its contribution to memory consolidation. Memory was assessed on days 1, 7, and 14 post-training. Our results showed that inhibiting protein synthesis by ANI or RAPA impaired NOR memory consolidation in control animals. However, acute PE prevented this impairment without affecting memory persistence. We also evaluated brain-derived neurotrophic factor (BDNF) levels after acute PE at 0.5h, 2h, and 12h afterward and found no differences in levels compared to animals that did not engage in acute PE or were only habituated to the treadmill. Therefore, our findings suggest that acute PE could serve as a non-pharmacological intervention to enhance memory consolidation and prevent memory loss in conditions associated with hippocampal protein synthesis inhibition. This mechanism appears not to depend on BDNF synthesis in the early hours after exercise.


Subject(s)
Amnesia , Anisomycin , Brain-Derived Neurotrophic Factor , Hippocampus , Physical Conditioning, Animal , Rats, Wistar , Animals , Male , Physical Conditioning, Animal/physiology , Rats , Hippocampus/metabolism , Hippocampus/drug effects , Anisomycin/pharmacology , Brain-Derived Neurotrophic Factor/metabolism , Brain-Derived Neurotrophic Factor/biosynthesis , Amnesia/metabolism , Amnesia/prevention & control , Protein Synthesis Inhibitors/pharmacology , Sirolimus/pharmacology , Protein Biosynthesis/drug effects , Protein Biosynthesis/physiology , Memory Consolidation/drug effects , Memory Consolidation/physiology , Recognition, Psychology/drug effects , Recognition, Psychology/physiology
17.
Behav Brain Res ; 468: 115017, 2024 Jun 25.
Article in English | MEDLINE | ID: mdl-38679145

ABSTRACT

Growing evidence indicates a critical role of astrocytes in learning and memory. However, little is known about the role of basolateral amygdala complex (BLA-C) astrocytes in contextual fear conditioning (CFC), a paradigm relevant to understand and generate treatments for fear- and anxiety-related disorders. To get insights on the involvement of BLA-C astrocytes in fear memory, fluorocitrate (FLC), a reversible astroglial metabolic inhibitor, was applied at critical moments of the memory processing in order to target the acquisition, consolidation, retrieval and reconsolidation process of the fear memory. Adult Wistar male rats were bilaterally cannulated in BLA-C. Ten days later they were infused with different doses of FLC (0.5 or 1 nmol/0.5 µl) or saline before or after CFC and before or after retrieval. FLC impaired fear memory expression when administered before and shortly after CFC, but not one hour later. Infusion of FLC prior and after retrieval did not affect the memory. Our findings suggest that BLA-C astrocytes are critically involved in the acquisition/early consolidation of fear memory but not in the retrieval and reconsolidation. Furthermore, the extinction process was presumably not affected (considering that peri-retrieval administration could also affect this process).


Subject(s)
Astrocytes , Basolateral Nuclear Complex , Fear , Memory , Rats, Wistar , Animals , Fear/physiology , Fear/drug effects , Astrocytes/drug effects , Astrocytes/physiology , Male , Basolateral Nuclear Complex/drug effects , Basolateral Nuclear Complex/physiology , Rats , Memory/physiology , Memory/drug effects , Citrates/pharmacology , Conditioning, Classical/drug effects , Conditioning, Classical/physiology , Memory Consolidation/physiology , Memory Consolidation/drug effects , Amygdala/drug effects , Amygdala/physiology , Extinction, Psychological/drug effects , Extinction, Psychological/physiology
18.
J Neurosci ; 44(19)2024 May 08.
Article in English | MEDLINE | ID: mdl-38575342

ABSTRACT

The histone lysine demethylase KDM5B is implicated in recessive intellectual disability disorders, and heterozygous, protein-truncating variants in KDM5B are associated with reduced cognitive function in the population. The KDM5 family of lysine demethylases has developmental and homeostatic functions in the brain, some of which appear to be independent of lysine demethylase activity. To determine the functions of KDM5B in hippocampus-dependent learning and memory, we first studied male and female mice homozygous for a Kdm5b Δ ARID allele that lacks demethylase activity. Kdm5b Δ ARID/ Δ ARID mice exhibited hyperactivity and long-term memory deficits in hippocampus-dependent learning tasks. The expression of immediate early, activity-dependent genes was downregulated in these mice and hyperactivated upon a learning stimulus compared with wild-type (WT) mice. A number of other learning-associated genes were also significantly dysregulated in the Kdm5b Δ ARID/ Δ ARID hippocampus. Next, we knocked down Kdm5b specifically in the adult, WT mouse hippocampus with shRNA. Kdm5b knockdown resulted in spontaneous seizures, hyperactivity, and hippocampus-dependent long-term memory and long-term potentiation deficits. These findings identify KDM5B as a critical regulator of gene expression and synaptic plasticity in the adult hippocampus and suggest that at least some of the cognitive phenotypes associated with KDM5B gene variants are caused by direct effects on memory consolidation mechanisms.


Subject(s)
Hippocampus , Intellectual Disability , Jumonji Domain-Containing Histone Demethylases , Memory Consolidation , Memory, Long-Term , Animals , Hippocampus/metabolism , Mice , Male , Female , Intellectual Disability/genetics , Jumonji Domain-Containing Histone Demethylases/genetics , Jumonji Domain-Containing Histone Demethylases/metabolism , Memory Consolidation/physiology , Memory, Long-Term/physiology , Long-Term Potentiation/genetics , Long-Term Potentiation/physiology , Mice, Inbred C57BL , DNA-Binding Proteins
19.
Trends Cogn Sci ; 28(4): 339-351, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38443198

ABSTRACT

How do passing moments turn into lasting memories? Sheltered from external tasks and distractions, sleep constitutes an optimal state for the brain to reprocess and consolidate previous experiences. Recent work suggests that consolidation is governed by the intricate interaction of slow oscillations (SOs), spindles, and ripples - electrophysiological sleep rhythms that orchestrate neuronal processing and communication within and across memory circuits. This review describes how sequential SO-spindle-ripple coupling provides a temporally and spatially fine-tuned mechanism to selectively strengthen target memories across hippocampal and cortical networks. Coupled sleep rhythms might be harnessed not only to enhance overnight memory retention, but also to combat memory decline associated with healthy ageing and neurodegenerative diseases.


Subject(s)
Memory Consolidation , Humans , Memory Consolidation/physiology , Electroencephalography , Sleep/physiology , Memory/physiology , Hippocampus/physiology
20.
J Neurosci ; 44(18)2024 May 01.
Article in English | MEDLINE | ID: mdl-38527810

ABSTRACT

Episodic memory retrieval is associated with the holistic neocortical reinstatement of all event information, an effect driven by hippocampal pattern completion. However, whether holistic reinstatement occurs, and whether hippocampal pattern completion continues to drive reinstatement, after a period of consolidation is unclear. Theories of systems consolidation predict either a time-variant or time-invariant role of the hippocampus in the holistic retrieval of episodic events. Here, we assessed whether episodic events continue to be reinstated holistically and whether hippocampal pattern completion continues to facilitate holistic reinstatement following a period of consolidation. Female and male human participants learned "events" that comprised multiple overlapping pairs of event elements (e.g., person-location, object-location, location-person). Importantly, encoding occurred either immediately before or 24 h before retrieval. Using fMRI during the retrieval of events, we show evidence for holistic reinstatement, as well as a correlation between reinstatement and hippocampal pattern completion, regardless of whether retrieval occurred immediately or 24 h after encoding. Thus, hippocampal pattern completion continues to contribute to holistic reinstatement after a delay. However, our results also revealed that some holistic reinstatement can occur without evidence for a corresponding signature of hippocampal pattern completion after a delay (but not immediately after encoding). We therefore show that hippocampal pattern completion, in addition to a nonhippocampal process, has a role in holistic reinstatement following a period of consolidation. Our results point to a consolidation process where the hippocampus and neocortex may work in an additive, rather than compensatory, manner to support episodic memory retrieval.


Subject(s)
Hippocampus , Magnetic Resonance Imaging , Memory, Episodic , Mental Recall , Humans , Male , Female , Hippocampus/physiology , Hippocampus/diagnostic imaging , Young Adult , Mental Recall/physiology , Adult , Time Factors , Adolescent , Memory Consolidation/physiology
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