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1.
Adv Neurobiol ; 38: 81-109, 2024.
Article in English | MEDLINE | ID: mdl-39008012

ABSTRACT

When neurons are recruited to form the memory engram, they are driven to activate the expression of a series of immediate-early genes (IEGs). While these IEGs have been used relatively indiscriminately to identify the so-called engram neurons, recent research has demonstrated that different IEG ensembles can be physically and functionally distinct within the memory engram. This inherent heterogeneity of the memory engram is driven by the diversity in the functions and distributions of different IEGs. This process, which we call molecular sorting, is analogous to sorting the entire population of engram neurons into different sub-engrams molecularly defined by different IEGs. In this chapter, we will describe the molecular sorting process by systematically reviewing published work on engram ensemble cells defined by the following four major IEGs: Fos, Npas4, Arc, and Egr1. By comparing and contrasting these likely different components of the memory engram, we hope to gain a better understanding of the logic and significance behind the molecular sorting process for memory functions.


Subject(s)
Early Growth Response Protein 1 , Genes, Immediate-Early , Memory , Neurons , Memory/physiology , Neurons/metabolism , Animals , Humans , Early Growth Response Protein 1/metabolism , Nerve Tissue Proteins/metabolism , Basic Helix-Loop-Helix Transcription Factors/metabolism , Proto-Oncogene Proteins c-fos/metabolism , Cytoskeletal Proteins/metabolism
2.
bioRxiv ; 2024 Feb 02.
Article in English | MEDLINE | ID: mdl-38352478

ABSTRACT

Engrams or memory traces are the neuronal ensembles that collectively store individual experiences. Genetic strategies based on immediate early genes (IEGs), such as Arc/Arg3.1 , allow us to tag the ensembles active during memory encoding and compare them to those active during retrieval. However, these strategies only allow for the tagging of one neural ensemble. Here, we developed a multiple Arc (mArc) system that allows for the tagging of two Arc + ensembles. We validated this system by investigating how context, time, and valence influence neuronal ensemble reactivation in the dentate gyrus (DG). We show that similar contextual and valenced experiences are encoded in overlapping DG ensembles. We also find that ensembles are modulated by time, where experiences closer in time are encoded in more similar ensembles. These results highlight the dynamic nature of DG ensembles and show that the mArc system provides a powerful approach for investigating multiple memories in the brain. HIGHLIGHTS: The mArc system allows for the tagging of two Arc + ensembles in the same mouse DG ensembles labeled by the mArc system receive increased excitatory inputContext, valence, and time influence DG ensemble reactivationDG neural ensembles are reactivated less with increasing time.

3.
Cell Rep ; 39(1): 110642, 2022 04 05.
Article in English | MEDLINE | ID: mdl-35385725

ABSTRACT

Mutation or disruption of the Shank/ProSAP family of genes is a high risk factor for autism spectrum disorders (ASDs) and intellectual disability. N-methyl-D-aspartate glutamate receptor (NMDAR) dysfunction contributes to the development of autism-like behaviors. However, the molecular mechanism of Shank-mediated NMDAR modulation is still not clear. Here, we show that the scaffold protein plenty of SH3s (POSH) directly interacts with two other scaffold proteins, PSD95 and SHANK2/3, at excitatory synapses. In POSH conditional knockout (cKO) mice, normal synaptic clustering of NMDAR/PSD-95/SHANK complex is disrupted, accompanied by abnormal dendritic spine development and glutamatergic transmission in hippocampal neurons. POSH cKO mice display profound autism-like behaviors, including impairments in social interactions, social communication, repetitive behaviors, and deficits in learning and memory. Thus, POSH clusters at the postsynaptic density (PSD) with PSD-95 and SHANK2/3 and plays important roles in the signaling mechanisms of the NMDAR/PSD-95/POSH/SHANK complex as well as in spine development and brain function.


Subject(s)
Adaptor Proteins, Signal Transducing , Aspartic Acid , Cytoskeletal Proteins , Glutamic Acid , Receptors, N-Methyl-D-Aspartate , Adaptor Proteins, Signal Transducing/metabolism , Animals , Aspartic Acid/metabolism , Cytoskeletal Proteins/metabolism , Disks Large Homolog 4 Protein/metabolism , Glutamic Acid/metabolism , Mice , Nerve Tissue Proteins/genetics , Nerve Tissue Proteins/metabolism , Receptors, N-Methyl-D-Aspartate/metabolism , Synapses/metabolism , Synaptic Transmission
4.
Sci Bull (Beijing) ; 66(21): 2225-2237, 2021 11 15.
Article in English | MEDLINE | ID: mdl-36654114

ABSTRACT

Brain-specific loss of a microtubule-binding protein collapsin response mediator protein-2 (CRMP2) in the mouse recapitulates many schizophrenia-like behaviors of human patients, possibly resulting from associated developmental deficits in neuronal differentiation, path-finding, and synapse formation. However, it is still unclear how the Crmp2 loss affects neuronal circuit function and plasticity. By conducting in vivo and ex vivo electrophysiological recording in the mouse primary visual cortex (V1), we reveal that CRMP2 exerts a key regulation on the timing of postnatal critical period (CP) for experience-dependent circuit plasticity of sensory cortex. In the developing V1, the Crmp2 deficiency induces not only a delayed maturation of visual tuning functions but also a precocious CP for visual input-induced ocular dominance plasticity and its induction activity - coincident binocular inputs right after eye-opening. Mechanistically, the Crmp2 deficiency accelerates the maturation process of cortical inhibitory transmission and subsequently promotes an early emergence of balanced excitatory-inhibitory cortical circuits during the postnatal development. Moreover, the precocious CP plasticity results in deteriorated binocular depth perception in adulthood. Thus, these findings suggest that the Crmp2 deficiency dysregulates the timing of CP for experience-dependent refinement of circuit connections and further leads to impaired sensory perception in later life.


Subject(s)
Schizophrenia , Visual Cortex , Humans , Animals , Mice , Vision, Binocular/physiology , Schizophrenia/genetics , Vision, Ocular , Neurons
5.
Cell ; 181(2): 410-423.e17, 2020 04 16.
Article in English | MEDLINE | ID: mdl-32187527

ABSTRACT

Memories are believed to be encoded by sparse ensembles of neurons in the brain. However, it remains unclear whether there is functional heterogeneity within individual memory engrams, i.e., if separate neuronal subpopulations encode distinct aspects of the memory and drive memory expression differently. Here, we show that contextual fear memory engrams in the mouse dentate gyrus contain functionally distinct neuronal ensembles, genetically defined by the Fos- or Npas4-dependent transcriptional pathways. The Fos-dependent ensemble promotes memory generalization and receives enhanced excitatory synaptic inputs from the medial entorhinal cortex, which we find itself also mediates generalization. The Npas4-dependent ensemble promotes memory discrimination and receives enhanced inhibitory drive from local cholecystokinin-expressing interneurons, the activity of which is required for discrimination. Our study provides causal evidence for functional heterogeneity within the memory engram and reveals synaptic and circuit mechanisms used by each ensemble to regulate the memory discrimination-generalization balance.


Subject(s)
Fear/physiology , Memory/physiology , Neurons/metabolism , Animals , Basic Helix-Loop-Helix Transcription Factors/metabolism , Brain/physiology , Dentate Gyrus/physiology , Interneurons/physiology , Male , Mice , Mice, Inbred C57BL , Neurons/physiology , Proto-Oncogene Proteins c-fos/metabolism
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