1.Synchronized neural rhythms in rat hippocampal CA1 region and orbitofrontal cortex are involved in learning and memory consolidation in spatial goal-directed tasks.
Lingwei TANG ; Jiasong LI ; Haibing XU
Journal of Southern Medical University 2025;45(3):479-487
OBJECTIVES:
To investigate the neural mechanisms of rhythmic activity in the hippocampal CA1 region and orbitofrontal cortex (OFC) during a spatial goal-directed task.
METHODS:
Four long-Evans rats were trained to perform a spatial goal-directed task in a land-based water maze (Cheese-board maze). The task was divided into 5 periods: Pre-test, Pre-sleep, Learning, Post-sleep, and Post-test. During the Learning phase, the task was split into two goal navigation and two reward acquisition processes with a total of 8 learning stages. Local field potentials (LFP) from the CA1 and the OFC were recorded, and power spectral density analysis was performed on Theta (6-12 Hz), Beta (15-30 Hz), Low gamma (30-60 Hz), and High gamma (60-90 Hz) bands. Coherence, phase-locking value (PLV), and phase-amplitude cross coupling (PAC) were used to assess the interactions between the CA1 and the OFC during learning and memory.
RESULTS:
During the task training, the rats showed consistent rhythms of OFC neural activity across the task states (P>0.05) while exhibiting significant changes in Beta and High gamma rhythms in the CA1 region (P<0.05). Coherence and PLV between the CA1 and the OFC were higher during goal navigation, especially in the stable learning phase (Stage 8 vs Stage 1, P<0.01). The rats showed stronger cross-frequency coupling between CA1-Theta and OFC-Low gamma in the Post-test phase than in the Pre-test phase (P<0.05).
CONCLUSIONS
Learning and memory consolidation in goal-directed tasks involve synchronized activity between the CA1 region and the OFC, and cross-frequency coupling plays a key role in maintaining short-term memory of reward locations in rats.
Animals
;
Rats
;
Rats, Long-Evans
;
CA1 Region, Hippocampal/physiology*
;
Memory Consolidation/physiology*
;
Prefrontal Cortex/physiology*
;
Maze Learning/physiology*
;
Goals
;
Male
;
Memory/physiology*
;
Learning/physiology*
2.Memory Reconsolidation Updating in Substance Addiction: Applications, Mechanisms, and Future Prospects for Clinical Therapeutics.
Shihao HUANG ; Xiaoxing LIU ; Zhonghao LI ; Yue SI ; Liping YANG ; Jiahui DENG ; Yixiao LUO ; Yan-Xue XUE ; Lin LU
Neuroscience Bulletin 2025;41(2):289-304
Persistent and maladaptive drug-related memories represent a key component in drug addiction. Converging evidence from both preclinical and clinical studies has demonstrated the potential efficacy of the memory reconsolidation updating procedure (MRUP), a non-pharmacological strategy intertwining two distinct memory processes: reconsolidation and extinction-alternatively termed "the memory retrieval-extinction procedure". This procedure presents a promising approach to attenuate, if not erase, entrenched drug memories and prevent relapse. The present review delineates the applications, molecular underpinnings, and operational boundaries of MRUP in the context of various forms of substance dependence. Furthermore, we critically examine the methodological limitations of MRUP, postulating potential refinement to optimize its therapeutic efficacy. In addition, we also look at the potential integration of MRUP and neurostimulation treatments in the domain of substance addiction. Overall, existing studies underscore the significant potential of MRUP, suggesting that interventions predicated on it could herald a promising avenue to enhance clinical outcomes in substance addiction therapy.
Humans
;
Substance-Related Disorders/psychology*
;
Memory Consolidation/physiology*
;
Animals
;
Extinction, Psychological/physiology*
3.Time-Dependent Transcriptional Dynamics of Contextual Fear Memory Retrieval Reveals the Function of Dipeptidyl Peptidase 9 in Reconsolidation.
Wen-Ting GUO ; Wen-Xing LI ; Yu-Chen LIU ; Ya-Bo ZHAO ; Lin XU ; Qi-Xin ZHOU
Neuroscience Bulletin 2025;41(1):16-32
Numerous studies on the formation and consolidation of memory have shown that memory processes are characterized by phase-dependent and dynamic regulation. Memory retrieval, as the only representation of memory content and an active form of memory processing that induces memory reconsolidation, has attracted increasing attention in recent years. Although the molecular mechanisms specific to memory retrieval-induced reconsolidation have been gradually revealed, an understanding of the time-dependent regulatory mechanisms of this process is still lacking. In this study, we applied a transcriptome analysis of memory retrieval at different time points in the recent memory stage. Differential expression analysis and Short Time-series Expression Miner (STEM) depicting temporal gene expression patterns indicated that most differential gene expression occurred at 48 h, and the STEM cluster showing the greatest transcriptional upregulation at 48 h demonstrated the most significant difference. We then screened the differentially-expressed genes associated with that met the expression patterns of those cluster-identified genes that have been reported to be involved in learning and memory processes in addition to dipeptidyl peptidase 9 (DPP9). Further quantitative polymerase chain reaction verification and pharmacological intervention suggested that DPP9 is involved in 48-h fear memory retrieval and viral vector-mediated overexpression of DPP9 countered the 48-h retrieval-induced attenuation of fear memory. Taken together, our findings suggest that temporal gene expression patterns are induced by recent memory retrieval and provide hitherto undocumented evidence of the role of DPP9 in the retrieval-induced reconsolidation of fear memory.
Animals
;
Fear/physiology*
;
Male
;
Dipeptidyl-Peptidases and Tripeptidyl-Peptidases/genetics*
;
Memory Consolidation/physiology*
;
Time Factors
;
Mental Recall/drug effects*
;
Mice
;
Gene Expression Profiling
4.How Fear Memory is Updated: From Reconsolidation to Extinction?
Jiahui CHEN ; Zhuowen FANG ; Xiaolan ZHANG ; Yanrong ZHENG ; Zhong CHEN
Neuroscience Bulletin 2025;41(6):1054-1084
Post-traumatic stress disorder (PTSD) is a psychiatric disorder caused by traumatic past experiences, rooted in the neurocircuits of fear memory formation. Memory processes include encoding, storing, and recalling to forgetting, suggesting the potential to erase fear memories through timely interventions. Conventional strategies such as medications or electroconvulsive therapy often fail to provide permanent relief and come with significant side-effects. This review explores how fear memory may be erased, particularly focusing on the mnemonic phases of reconsolidation and extinction. Reconsolidation strengthens memory, while extinction weakens it. Interfering with memory reconsolidation could diminish the fear response. Alternatively, the extinction of acquired memory could reduce the fear memory response. This review summarizes experimental animal models of PTSD, examines the nature and epidemiology of reconsolidation to extinction, and discusses current behavioral therapy aimed at transforming fear memories to treat PTSD. In sum, understanding how fear memory updates holds significant promise for PTSD treatment.
Fear/psychology*
;
Extinction, Psychological/physiology*
;
Animals
;
Stress Disorders, Post-Traumatic/psychology*
;
Humans
;
Memory Consolidation/physiology*
;
Memory/physiology*
5.A Critical Time-Window for the Selective Induction of Hippocampal Memory Consolidation by a Brief Episode of Slow-Wave Sleep.
Yi LU ; Zheng-Gang ZHU ; Qing-Qing MA ; Yun-Ting SU ; Yong HAN ; Xiaodong WANG ; Shumin DUAN ; Yan-Qin YU
Neuroscience Bulletin 2018;34(6):1091-1099
Although extensively studied, the exact role of sleep in learning and memory is still not very clear. Sleep deprivation has been most frequently used to explore the effects of sleep on learning and memory, but the results from such studies are inevitably complicated by concurrent stress and distress. Furthermore, it is not clear whether there is a strict time-window between sleep and memory consolidation. In the present study we were able to induce time-locked slow-wave sleep (SWS) in mice by optogenetically stimulating GABAergic neurons in the parafacial zone (PZ), providing a direct approach to analyze the influences of SWS on learning and memory with precise time-windows. We found that SWS induced by light for 30 min immediately or 15 min after the training phase of the object-in-place task significantly prolonged the memory from 30 min to 6 h. However, induction of SWS 30 min after the training phase did not improve memory, suggesting a critical time-window between the induction of a brief episode of SWS and learning for memory consolidation. Application of a gentle touch to the mice during light stimulation to prevent SWS induction also failed to improve memory, indicating the specific role of SWS, but not the activation of PZ GABAergic neurons itself, in memory consolidation. Similar influences of light-induced SWS on memory consolidation also occurred for Y-maze spatial memory and contextual fear memory, but not for cued fear memory. SWS induction immediately before the test phase had no effect on memory performance, indicating that SWS does not affect memory retrieval. Thus, by induction of a brief-episode SWS we have revealed a critical time window for the consolidation of hippocampus-dependent memory.
Animals
;
Cues
;
Electroencephalography
;
Electromyography
;
Evoked Potentials, Motor
;
physiology
;
Fear
;
psychology
;
Glutamate Decarboxylase
;
metabolism
;
Hippocampus
;
physiology
;
Light
;
Luminescent Proteins
;
genetics
;
metabolism
;
Maze Learning
;
physiology
;
Memory Consolidation
;
physiology
;
Mice
;
Mice, Inbred C57BL
;
Mice, Transgenic
;
Sleep Deprivation
;
Sleep, Slow-Wave
;
physiology
;
Time Factors
;
Vesicular Inhibitory Amino Acid Transport Proteins
;
genetics
;
metabolism
6.Preferential distribution of nuclear MAPK signal in α/β core neurons during long-term memory consolidation in Drosophila.
Wantong HU ; Xuchen ZHANG ; Lianzhang WANG ; Zhong-Jian LIU ; Yi ZHONG ; Qian LI
Protein & Cell 2017;8(10):780-783
Animals
;
Cell Nucleus
;
enzymology
;
Drosophila Proteins
;
genetics
;
metabolism
;
Drosophila melanogaster
;
Extracellular Signal-Regulated MAP Kinases
;
genetics
;
metabolism
;
Long-Term Potentiation
;
physiology
;
MAP Kinase Signaling System
;
physiology
;
Memory Consolidation
;
physiology
;
Neurons
;
cytology
;
enzymology

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