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1.
Philos Trans R Soc Lond B Biol Sci ; 379(1906): 20230223, 2024 Jul 29.
Artigo em Inglês | MEDLINE | ID: mdl-38853551

RESUMO

Commentaries about long-term potentiation (LTP) generally proceed with an implicit assumption that largely the same physiological effect is sampled across different experiments. However, this is clearly not the case. We illustrate the point by comparing LTP in the CA3 projections to CA1 with the different forms of potentiation in the dentate gyrus. These studies lead to the hypothesis that specialized properties of CA1-LTP are adaptations for encoding unsupervised learning and episodic memory, whereas the dentate gyrus variants subserve learning that requires multiple trials and separation of overlapping bodies of information. Recent work has added sex as a second and somewhat surprising dimension along which LTP is also differentiated. Triggering events for CA1-LTP differ between the sexes and the adult induction threshold is significantly higher in females; these findings help explain why males have an advantage in spatial learning. Remarkably, the converse is true before puberty: Females have the lower LTP threshold and are better at spatial memory problems. A mechanism has been identified for the loss-of-function in females but not for the gain-of-function in males. We propose that the many and disparate demands of natural environments, with different processing requirements across ages and between sexes, led to the emergence of multiple LTPs. This article is part of a discussion meeting issue 'Long-term potentiation: 50 years on'.


Assuntos
Potenciação de Longa Duração , Animais , Feminino , Humanos , Masculino , Região CA1 Hipocampal/fisiologia , Região CA3 Hipocampal/fisiologia , Giro Denteado/fisiologia , Potenciação de Longa Duração/fisiologia , Memória/fisiologia , Fatores Sexuais
2.
J Alzheimers Dis ; 99(4): 1375-1383, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38759019

RESUMO

Background: Currently, no evidence exists on the expression of apoptosis (CASP3), autophagy (BECN1), and mitophagy (BNIP3) genes in the CA3 area after ischemia with long-term survival. Objective: The goal of the paper was to study changes in above genes expression in CA3 area after ischemia in the period of 6-24 months. Methods: In this study, using quantitative RT-PCR, we present the expression of genes associated with neuronal death in a rat ischemic model of Alzheimer's disease. Results: First time, we demonstrated overexpression of the CASP3 gene in CA3 area after ischemia with survival ranging from 0.5 to 2 years. Overexpression of the CASP3 gene was accompanied by a decrease in the activity level of the BECN1 and BNIP3 genes over a period of 0.5 year. Then, during 1-2 years, BNIP3 gene expression increased significantly and coincided with an increase in CASP3 gene expression. However, BECN1 gene expression was variable, increased significantly at 1 and 2 years and was below control values 1.5 years post-ischemia. Conclusions: Our observations suggest that ischemia with long-term survival induces neuronal death in CA3 through activation of caspase 3 in cooperation with the pro-apoptotic gene BNIP3. This study also suggests that the BNIP3 gene regulates caspase-independent pyramidal neuronal death post-ischemia. Thus, caspase-dependent and -independent death of neuronal cells occur post-ischemia in the CA3 area. Our data suggest new role of the BNIP3 gene in the regulation of post-ischemic neuronal death in CA3. This suggests the involvement of the BNIP3 together with the CASP3 in the CA3 in neuronal death post-ischemia.


Assuntos
Doença de Alzheimer , Apoptose , Autofagia , Proteína Beclina-1 , Caspase 3 , Modelos Animais de Doenças , Proteínas de Membrana , Mitofagia , Animais , Proteína Beclina-1/genética , Proteína Beclina-1/metabolismo , Doença de Alzheimer/genética , Doença de Alzheimer/patologia , Proteínas de Membrana/genética , Proteínas de Membrana/metabolismo , Mitofagia/genética , Mitofagia/fisiologia , Autofagia/genética , Autofagia/fisiologia , Apoptose/genética , Masculino , Caspase 3/metabolismo , Caspase 3/genética , Ratos , Região CA3 Hipocampal/patologia , Região CA3 Hipocampal/metabolismo , Isquemia Encefálica/genética , Isquemia Encefálica/patologia , Proteínas Reguladoras de Apoptose/genética , Proteínas Reguladoras de Apoptose/metabolismo , Proteínas Mitocondriais/genética , Proteínas Mitocondriais/metabolismo , Ratos Wistar
3.
Sci Adv ; 10(20): eadm9326, 2024 May 17.
Artigo em Inglês | MEDLINE | ID: mdl-38758792

RESUMO

Intellectual disability (ID) affects ~2% of the population and ID-associated genes are enriched for epigenetic factors, including those encoding the largest family of histone lysine acetyltransferases (KAT5-KAT8). Among them is KAT6A, whose mutations cause KAT6A syndrome, with ID as a common clinical feature. However, the underlying molecular mechanism remains unknown. Here, we find that KAT6A deficiency impairs synaptic structure and plasticity in hippocampal CA3, but not in CA1 region, resulting in memory deficits in mice. We further identify a CA3-enriched gene Rspo2, encoding Wnt activator R-spondin 2, as a key transcriptional target of KAT6A. Deletion of Rspo2 in excitatory neurons impairs memory formation, and restoring RSPO2 expression in CA3 neurons rescues the deficits in Wnt signaling and learning-associated behaviors in Kat6a mutant mice. Collectively, our results demonstrate that KAT6A-RSPO2-Wnt signaling plays a critical role in regulating hippocampal CA3 synaptic plasticity and cognitive function, providing potential therapeutic targets for KAT6A syndrome and related neurodevelopmental diseases.


Assuntos
Cognição , Histona Acetiltransferases , Via de Sinalização Wnt , Animais , Camundongos , Histona Acetiltransferases/metabolismo , Histona Acetiltransferases/genética , Região CA3 Hipocampal/metabolismo , Região CA3 Hipocampal/patologia , Trombospondinas/metabolismo , Trombospondinas/genética , Trombospondinas/deficiência , Plasticidade Neuronal , Camundongos Knockout
4.
Curr Biol ; 34(9): 2011-2019.e7, 2024 05 06.
Artigo em Inglês | MEDLINE | ID: mdl-38636511

RESUMO

Environmental enrichment (EE) improves memory, particularly the ability to discriminate similar past experiences.1,2,3,4,5,6 The hippocampus supports this ability via pattern separation, the encoding of similar events using dissimilar memory representations.7 This is carried out in the dentate gyrus (DG) and CA3 subfields.8,9,10,11,12 Upregulation of adult neurogenesis in the DG improves memory through enhanced pattern separation.1,2,3,4,5,6,11,13,14,15,16 Adult-born granule cells (abGCs) in DG are suggested to contribute to pattern separation by driving inhibition in regions such as CA3,13,14,15,16,17,18 leading to sparser, nonoverlapping representations of similar events (although a role for abGCs in driving excitation in the hippocampus has also been reported16). Place cells in the hippocampus contribute to pattern separation by remapping to spatial and contextual alterations to the environment.19,20,21,22,23,24,25,26,27 How spatial responses in CA3 are affected by EE and input from increased numbers of abGCs in DG is, however, unknown. Here, we investigate the neural mechanisms facilitating improved memory following EE using associative recognition memory tasks that model the automatic and integrative nature of episodic memory. We find that EE-dependent improvements in difficult discriminations are related to increased neurogenesis and sparser memory representations across the hippocampus. Additionally, we report for the first time that EE changes how CA3 place cells discriminate similar contexts. CA3 place cells of enriched rats show greater spatial tuning, increased firing rates, and enhanced remapping to contextual changes. These findings point to more precise and flexible CA3 memory representations in enriched rats, which provides a putative mechanism for EE-dependent improvements in fine memory discrimination.


Assuntos
Região CA3 Hipocampal , Meio Ambiente , Animais , Ratos , Região CA3 Hipocampal/fisiologia , Masculino , Neurogênese/fisiologia , Ratos Long-Evans , Memória/fisiologia , Giro Denteado/fisiologia
5.
Science ; 383(6687): eadg6757, 2024 Mar 08.
Artigo em Inglês | MEDLINE | ID: mdl-38452088

RESUMO

The hippocampal mossy fiber synapse, formed between axons of dentate gyrus granule cells and dendrites of CA3 pyramidal neurons, is a key synapse in the trisynaptic circuitry of the hippocampus. Because of its comparatively large size, this synapse is accessible to direct presynaptic recording, allowing a rigorous investigation of the biophysical mechanisms of synaptic transmission and plasticity. Furthermore, because of its placement in the very center of the hippocampal memory circuit, this synapse seems to be critically involved in several higher network functions, such as learning, memory, pattern separation, and pattern completion. Recent work based on new technologies in both nanoanatomy and nanophysiology, including presynaptic patch-clamp recording, paired recording, super-resolution light microscopy, and freeze-fracture and "flash-and-freeze" electron microscopy, has provided new insights into the structure, biophysics, and network function of this intriguing synapse. This brings us one step closer to answering a fundamental question in neuroscience: how basic synaptic properties shape higher network computations.


Assuntos
Fibras Musgosas Hipocampais , Terminações Pré-Sinápticas , Fibras Musgosas Hipocampais/fisiologia , Fibras Musgosas Hipocampais/ultraestrutura , Terminações Pré-Sinápticas/fisiologia , Terminações Pré-Sinápticas/ultraestrutura , Transmissão Sináptica , Região CA3 Hipocampal , Células Piramidais , Humanos , Animais
6.
Neural Comput ; 36(4): 501-548, 2024 Mar 21.
Artigo em Inglês | MEDLINE | ID: mdl-38457750

RESUMO

The hippocampus plays a critical role in the compression and retrieval of sequential information. During wakefulness, it achieves this through theta phase precession and theta sequences. Subsequently, during periods of sleep or rest, the compressed information reactivates through sharp-wave ripple events, manifesting as memory replay. However, how these sequential neuronal activities are generated and how they store information about the external environment remain unknown. We developed a hippocampal cornu ammonis 3 (CA3) computational model based on anatomical and electrophysiological evidence from the biological CA3 circuit to address these questions. The model comprises theta rhythm inhibition, place input, and CA3-CA3 plastic recurrent connection. The model can compress the sequence of the external inputs, reproduce theta phase precession and replay, learn additional sequences, and reorganize previously learned sequences. A gradual increase in synaptic inputs, controlled by interactions between theta-paced inhibition and place inputs, explained the mechanism of sequence acquisition. This model highlights the crucial role of plasticity in the CA3 recurrent connection and theta oscillational dynamics and hypothesizes how the CA3 circuit acquires, compresses, and replays sequential information.


Assuntos
Região CA3 Hipocampal , Hipocampo , Região CA3 Hipocampal/fisiologia , Hipocampo/fisiologia , Aprendizagem/fisiologia , Neurônios/fisiologia , Ritmo Teta/fisiologia
7.
Cogn Neurosci ; 15(2): 27-55, 2024 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-38384107

RESUMO

Learning regularities in the environment is a fundament of human cognition, which is supported by a network of brain regions that include the hippocampus. In two experiments, we assessed the effects of selective bilateral damage to human hippocampal subregion CA3, which was associated with autobiographical episodic amnesia extending ~50 years prior to the damage, on the ability to recognize complex, deterministic event sequences presented either in a spatial or a non-spatial configuration. In contrast to findings from related paradigms, modalities, and homologue species, hippocampal damage did not preclude recognition memory for an event sequence studied and tested at four spatial locations, whereas recognition memory for an event sequence presented at a single location was at chance. In two additional experiments, recognition memory for novel single-items was intact, whereas the ability to recognize novel single-items in a different location from that presented at study was at chance. The results are at variance with a general role of the hippocampus in the learning and recognition of complex event sequences based on non-adjacent spatial and temporal dependencies. We discuss the impact of the results on established theoretical accounts of the hippocampal contributions to implicit sequence learning and episodic memory.


Assuntos
Região CA3 Hipocampal , Reconhecimento Psicológico , Humanos , Reconhecimento Psicológico/fisiologia , Masculino , Feminino , Região CA3 Hipocampal/fisiologia , Região CA3 Hipocampal/fisiopatologia , Região CA3 Hipocampal/diagnóstico por imagem , Pessoa de Meia-Idade , Aprendizagem/fisiologia , Memória Episódica , Idoso , Adulto , Testes Neuropsicológicos
8.
Mol Psychiatry ; 29(4): 1192-1204, 2024 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-38212372

RESUMO

At the center of the hippocampal tri-synaptic loop are synapses formed between mossy fiber (MF) terminals from granule cells in the dentate gyrus (DG) and proximal dendrites of CA3 pyramidal neurons. However, the molecular mechanism regulating the development and function of these synapses is poorly understood. In this study, we showed that neurotrophin-3 (NT3) was expressed in nearly all mature granule cells but not CA3 cells. We selectively deleted the NT3-encoding Ntf3 gene in the DG during the first two postnatal weeks to generate a Ntf3 conditional knockout (Ntf3-cKO). Ntf3-cKO mice of both sexes had normal hippocampal cytoarchitecture but displayed impairments in contextual memory, spatial reference memory, and nest building. Furthermore, male Ntf3-cKO mice exhibited anxiety-like behaviors, whereas female Ntf3-cKO showed some mild depressive symptoms. As MF-CA3 synapses are essential for encoding of contextual memory, we examined synaptic transmission at these synapses using ex vivo electrophysiological recordings. We found that Ntf3-cKO mice had impaired basal synaptic transmission due to deficits in excitatory postsynaptic currents mediated by AMPA receptors but normal presynaptic function and intrinsic excitability of CA3 pyramidal neurons. Consistent with this selective postsynaptic deficit, Ntf3-cKO mice had fewer and smaller thorny excrescences on proximal apical dendrites of CA3 neurons and lower GluR1 levels in the stratum lucidum area where MF-CA3 synapses reside but normal MF terminals, compared with control mice. Thus, our study indicates that NT3 expressed in the dentate gyrus is crucial for the postsynaptic structure and function of MF-CA3 synapses and hippocampal-dependent memory.


Assuntos
Região CA3 Hipocampal , Giro Denteado , Camundongos Knockout , Fibras Musgosas Hipocampais , Neurotrofina 3 , Sinapses , Animais , Giro Denteado/metabolismo , Fibras Musgosas Hipocampais/metabolismo , Sinapses/metabolismo , Camundongos , Neurotrofina 3/metabolismo , Neurotrofina 3/genética , Masculino , Feminino , Região CA3 Hipocampal/metabolismo , Células Piramidais/metabolismo , Células Piramidais/fisiologia , Potenciais Pós-Sinápticos Excitadores/fisiologia , Transmissão Sináptica/fisiologia , Cognição/fisiologia , Hipocampo/metabolismo , Camundongos Endogâmicos C57BL , Memória/fisiologia , Receptores de AMPA/metabolismo
9.
Int J Mol Sci ; 25(2)2024 Jan 05.
Artigo em Inglês | MEDLINE | ID: mdl-38255783

RESUMO

Memory traces are believed to be broadly allocated in cerebral cortices and the hippocampus. Mutual synapse innervations among these brain areas are presumably formed in associative memory. In the present study, we have used neuronal tracing by pAAV-carried fluorescent proteins and neuroligin-3 mRNA knockdown by shRNAs to examine the role of neuroligin-3-mediated synapse formation in the interconnection between primary associative memory cells in the sensory cortices and secondary associative memory cells in the hippocampus during the acquisition and memory of associated signals. Our studies show that mutual synapse innervations between the barrel cortex and the hippocampal CA3 region emerge and are upregulated after the memories of associated whisker and odor signals come into view. These synapse interconnections are downregulated by a knockdown of neuroligin-3-mediated synapse linkages. New synapse interconnections and the strengthening of these interconnections appear to endorse the belief in an interaction between the hippocampus and sensory cortices for memory consolidation.


Assuntos
Hipocampo , Neuroliginas , Córtex Cerebral , Região CA3 Hipocampal , Lobo Parietal
10.
Proc Natl Acad Sci U S A ; 121(6): e2312281120, 2024 Feb 06.
Artigo em Inglês | MEDLINE | ID: mdl-38289953

RESUMO

The hippocampal formation is crucial for learning and memory, with submodule CA3 thought to be the substrate of pattern completion. However, the underlying synaptic and computational mechanisms of this network are not well understood. Here, we perform circuit reconstruction of a CA3 module using three dimensional (3D) electron microscopy data and combine this with functional connectivity recordings and computational simulations to determine possible CA3 network mechanisms. Direct measurements of connectivity schemes with both physiological measurements and structural 3D EM revealed a high connectivity rate, multi-fold higher than previously assumed. Mathematical modelling indicated that such CA3 networks can robustly generate pattern completion and replay memory sequences. In conclusion, our data demonstrate that the connectivity scheme of the hippocampal submodule is well suited for efficient memory storage and retrieval.


Assuntos
Hipocampo , Aprendizagem , Hipocampo/fisiologia , Aprendizagem/fisiologia , Modelos Teóricos , Região CA3 Hipocampal/fisiologia
11.
J Neurosci Res ; 102(1): e25276, 2024 01.
Artigo em Inglês | MEDLINE | ID: mdl-38284845

RESUMO

Transient ischemia and reperfusion selectively damage neurons in brain, with hippocampal pyramidal cells being particularly vulnerable. Even within hippocampus, heterogeneous susceptibility is evident, with higher vulnerability of CA1 versus CA3 neurons described for several decades. Therefore, numerous studies have focused exclusively on CA1. Pediatric cardiac surgery is increasingly focusing on studies of hippocampal structures, and a negative impact of cardiopulmonary bypass on the hippocampus cannot be denied. Recent studies show a shift in selective vulnerability from neurons of CA1 to CA3. This review shows that cell damage is increased in CA3, sometimes stronger than in CA1, depending on several factors (method, species, age, observation period). Despite a highly variable pattern, several markers illustrate greater damage to CA3 neurons than previously assumed. Nevertheless, the underlying cellular mechanisms have not been fully deciphered to date. The complexity is reflected in possible pathomechanisms discussed here, with numerous factors (NMDA, kainate and AMPA receptors, intrinsic oxidative stress potential and various radicals, AKT isoforms, differences in vascular architecture, ratio of pro- and anti-apoptotic Bcl-2 factors, vulnerability of interneurons, mitochondrial dysregulation) contributing to either enhanced CA1 or CA3 vulnerability. Furthermore, differences in expressed genome, proteome, metabolome, and transcriptome in CA1 and CA3 appear to influence differential behavior after damaging stimuli, thus metabolomics-, transcriptomics-, and proteomics-based analyses represent a viable option to identify pathways of selective vulnerability in hippocampal neurons. These results emphasize that future studies should focus on the CA3 field in addition to CA1, especially with regard to improving therapeutic strategies after ischemic/hypoxic brain injury.


Assuntos
Hipocampo , Células Piramidais , Humanos , Criança , Neurônios , Região CA3 Hipocampal , Interneurônios
12.
Hippocampus ; 34(2): 100-122, 2024 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-38145465

RESUMO

In this study, we aimed to understand the contributions of hippocampal anteroposterior subregions (head, body, tail) and subfields (cornu ammonis 1-3 [CA1-3], dentate gyrus [DG], and subiculum [Sub]) and encoding strategies to the age-related verbal memory decline. Healthy participants were administered the California Verbal Learning Test-II to evaluate verbal memory performance and encoding strategies and underwent 4.7 T magnetic resonance imaging brain scan with subsequent hippocampal subregions and subfields manual segmentation. While total hippocampal volume was not associated with verbal memory performance, we found the volumes of the posterior hippocampus (body) and Sub showed significant effects on verbal memory performance. Additionally, the age-related volume decline in hippocampal body volume contributed to lower use of semantic clustering, resulting in lower verbal memory performance. The effect of Sub on verbal memory was statistically independent of encoding strategies. While total CA1-3 and DG volumes did not show direct or indirect effects on verbal memory, exploratory analyses with DG and CA1-3 volumes within the hippocampal body subregion suggested an indirect effect of age-related volumetric reduction on verbal memory performance through semantic clustering. As semantic clustering is sensitive to age-related hippocampal volumetric decline but not to the direct effect of age, further investigation of mechanisms supporting semantic clustering can have implications for early detection of cognitive impairments and decline.


Assuntos
Envelhecimento Saudável , Longevidade , Adulto , Humanos , Hipocampo/diagnóstico por imagem , Hipocampo/patologia , Memória , Região CA3 Hipocampal , Imageamento por Ressonância Magnética/métodos
13.
Neurobiol Aging ; 133: 51-66, 2024 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-37913626

RESUMO

In the present study we investigated whether hippocampal subfield (cornu ammonis 1-3, dentate gyrus, and subiculum) and anteroposterior hippocampal subregion (head,body, and tail) volumes can predict episodic memory function using high-field high resolution structural magnetic resonance imaging (MRI). We recruited 126 healthy participants (18-85 years). MRI datasets were collected on a 4.7 T system. Participants were administered the Wechsler Memory Scale (WMS-IV) to evaluate episodic memory function. Structural equation modeling was used to test the relationship between studied variables. We found that the volume of the dentate gyrus subfield and posterior hippocampus (body) showed a significant direct effect on visuospatial memory performance; additionally, an indirect effect of age on visuospatial memory mediated through these hippocampal subfield/subregion was significant. Logical and verbal memory were not significantly associated with hippocampal subfield or subregion volumes.


Assuntos
Envelhecimento Cognitivo , Memória Episódica , Humanos , Hipocampo/diagnóstico por imagem , Hipocampo/patologia , Região CA3 Hipocampal , Região CA1 Hipocampal , Imageamento por Ressonância Magnética/métodos
14.
Nat Commun ; 14(1): 8312, 2023 Dec 14.
Artigo em Inglês | MEDLINE | ID: mdl-38097535

RESUMO

The consolidation of recent memories depends on memory replays, also called ripples, generated within the hippocampus during slow-wave sleep, and whose inactivation leads to memory impairment. For now, the mobilisation, localisation and importance of synaptic plasticity events associated to ripples are largely unknown. To tackle this question, we used cell surface AMPAR immobilisation to block post-synaptic LTP within the hippocampal region of male mice during a spatial memory task, and show that: 1- hippocampal synaptic plasticity is engaged during consolidation, but is dispensable during encoding or retrieval. 2- Plasticity blockade during sleep results in apparent forgetting of the encoded rule. 3- In vivo ripple recordings show a strong effect of AMPAR immobilisation when a rule has been recently encoded. 4- In situ investigation suggests that plasticity at CA3-CA3 recurrent synapses supports ripple generation. We thus propose that post-synaptic AMPAR mobility at CA3 recurrent synapses is necessary for ripple-dependent rule consolidation.


Assuntos
Consolidação da Memória , Camundongos , Masculino , Animais , Consolidação da Memória/fisiologia , Hipocampo/fisiologia , Plasticidade Neuronal/fisiologia , Sono/fisiologia , Memória Espacial , Região CA1 Hipocampal/fisiologia , Região CA3 Hipocampal/fisiologia
15.
Cell Rep ; 42(12): 113467, 2023 12 26.
Artigo em Inglês | MEDLINE | ID: mdl-37979171

RESUMO

The hippocampus is broadly impacted by neuromodulations. However, how neuropeptides shape the function of the hippocampus and the related spatial learning and memory remains unclear. Here, we discover the crucial role of cholecystokinin (CCK) in heterosynaptic neuromodulation from the medial entorhinal cortex (MEC) to the hippocampus. Systematic knockout of the CCK gene impairs CA3-CA1 LTP and space-related performance. The MEC provides most of the CCK-positive neurons projecting to the hippocampal region, which potentiates CA3-CA1 long-term plasticity heterosynaptically in a frequency- and NMDA receptor (NMDAR)-dependent manner. Selective inhibition of MEC CCKergic neurons or downregulation of their CCK mRNA levels also impairs CA3-CA1 LTP formation and animals' performance in the water maze. This excitatory extrahippocampal projection releases CCK upon high-frequency excitation and is active during animal exploration. Our results reveal the critical role of entorhinal CCKergic projections in bridging intra- and extrahippocampal circuitry at electrophysiological and behavioral levels.


Assuntos
Região CA1 Hipocampal , Região CA2 Hipocampal , Região CA3 Hipocampal , Colecistocinina , Córtex Entorrinal , Plasticidade Neuronal , Aprendizagem Espacial , Colecistocinina/genética , Colecistocinina/metabolismo , Córtex Entorrinal/metabolismo , Região CA3 Hipocampal/fisiologia , Região CA1 Hipocampal/fisiologia , Região CA2 Hipocampal/fisiologia , Sinapses/fisiologia , Aprendizagem Espacial/fisiologia , Animais , Camundongos , Camundongos Knockout , Potenciação de Longa Duração
16.
Cell Mol Neurobiol ; 43(8): 4007-4022, 2023 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-37874456

RESUMO

Growing evidence supports the notion that brain-derived neurotrophic factor (BDNF) and lactate are potent modulators of mammalian brain function. The modulatory actions of those biomolecules influence a wide range of neuronal responses, from the shaping of neuronal excitability to the induction and expression of structural and synaptic plasticity. The biological actions of BDNF and lactate are mediated by their cognate receptors and specific transporters located in the neuronal membrane. Canonical functions of BDNF occur via the tropomyosin-related kinase B receptor (TrkB), whereas lactate acts via monocarboxylate transporters or the hydroxycarboxylic acid receptor 1 (HCAR1). Both receptors are highly expressed in the central nervous system, and some of their physiological actions are particularly well characterized in the hippocampus, a brain structure involved in the neurophysiology of learning and memory. The multifarious neuronal circuitry between the axons of the dentate gyrus granule cells, mossy fibers (MF), and pyramidal neurons of area CA3 is of great interest given its role in specific mnemonic processes and involvement in a growing number of brain disorders. Whereas the modulation exerted by BDNF via TrkB has been extensively studied, the influence of lactate via HCAR1 on the properties of the MF-CA3 circuit is an emerging field. In this review, we discuss the role of both systems in the modulation of brain physiology, with emphasis on the hippocampal CA3 network. We complement this review with original data that suggest cross-modulation is exerted by these two independent neuromodulatory systems.


Assuntos
Fator Neurotrófico Derivado do Encéfalo , Fibras Musgosas Hipocampais , Animais , Fator Neurotrófico Derivado do Encéfalo/metabolismo , Fibras Musgosas Hipocampais/metabolismo , Ácido Láctico/metabolismo , Hipocampo/metabolismo , Células Piramidais/metabolismo , Proteínas de Transporte/metabolismo , Região CA3 Hipocampal/metabolismo , Mamíferos/metabolismo
17.
Elife ; 122023 10 04.
Artigo em Inglês | MEDLINE | ID: mdl-37792453

RESUMO

Hippocampal place cell sequences have been hypothesized to serve as diverse purposes as the induction of synaptic plasticity, formation and consolidation of long-term memories, or navigation and planning. During spatial behaviors of rodents, sequential firing of place cells at the theta timescale (known as theta sequences) encodes running trajectories, which can be considered as one-dimensional behavioral sequences of traversed locations. In a two-dimensional space, however, each single location can be visited along arbitrary one-dimensional running trajectories. Thus, a place cell will generally take part in multiple different theta sequences, raising questions about how this two-dimensional topology can be reconciled with the idea of hippocampal sequences underlying memory of (one-dimensional) episodes. Here, we propose a computational model of cornu ammonis 3 (CA3) and dentate gyrus (DG), where sensorimotor input drives the direction-dependent (extrinsic) theta sequences within CA3 reflecting the two-dimensional spatial topology, whereas the intrahippocampal CA3-DG projections concurrently produce intrinsic sequences that are independent of the specific running trajectory. Consistent with experimental data, intrinsic theta sequences are less prominent, but can nevertheless be detected during theta activity, thereby serving as running-direction independent landmark cues. We hypothesize that the intrinsic sequences largely reflect replay and preplay activity during non-theta states.


Assuntos
Células de Lugar , Corrida , Hipocampo , Região CA3 Hipocampal , Memória de Longo Prazo , Ritmo Teta , Potenciais de Ação
18.
Neuron ; 111(19): 2984-2994.e4, 2023 Oct 04.
Artigo em Inglês | MEDLINE | ID: mdl-37689058

RESUMO

Neuronal activity during experience is thought to induce plastic changes within the hippocampal network that underlie memory formation, although the extent and details of such changes in vivo remain unclear. Here, we employed a temporally precise marker of neuronal activity, CaMPARI2, to label active CA1 hippocampal neurons in vivo, followed by immediate acute slice preparation and electrophysiological quantification of synaptic properties. Recently active neurons in the superficial sublayer of stratum pyramidale displayed larger post-synaptic responses at excitatory synapses from area CA3, with no change in pre-synaptic release probability. In contrast, in vivo activity correlated with weaker pre- and post-synaptic excitatory weights onto pyramidal cells in the deep sublayer. In vivo activity of deep and superficial neurons within sharp-wave/ripples was bidirectionally changed across experience, consistent with the observed changes in synaptic weights. These findings reveal novel, fundamental mechanisms through which the hippocampal network is modified by experience to store information.


Assuntos
Região CA3 Hipocampal , Hipocampo , Região CA3 Hipocampal/fisiologia , Hipocampo/fisiologia , Neurônios/fisiologia , Células Piramidais/fisiologia , Sinapses/fisiologia , Região CA1 Hipocampal/fisiologia
19.
Front Neural Circuits ; 17: 1198573, 2023.
Artigo em Inglês | MEDLINE | ID: mdl-37484208

RESUMO

The theta rhythm plays a crucial role in synchronizing neural activity during attention and memory processes. However, the mechanisms behind the formation of neural activity during theta rhythm generation remain unknown. To address this, we propose a mathematical model that explains the distribution of interneurons in the CA1 field during the theta rhythm phase. Our model consists of a network of seven types of interneurons in the CA1 field that receive inputs from the CA3 field, entorhinal cortex, and local pyramidal neurons in the CA1 field. By adjusting the parameters of the connections in the model. We demonstrate that it is possible to replicate the experimentally observed phase relations between interneurons and the theta rhythm. Our model predicts that populations of interneurons receive unimodal excitation and inhibition with coinciding peaks, and that excitation dominates to determine the firing dynamics of interneurons.


Assuntos
Região CA1 Hipocampal , Ritmo Teta , Ritmo Teta/fisiologia , Região CA1 Hipocampal/fisiologia , Interneurônios/fisiologia , Células Piramidais/fisiologia , Região CA3 Hipocampal , Hipocampo/fisiologia , Potenciais de Ação/fisiologia
20.
Sci Rep ; 13(1): 10548, 2023 06 29.
Artigo em Inglês | MEDLINE | ID: mdl-37386056

RESUMO

Pharmacologically-induced persistent hippocampal γ oscillation in area CA3 requires activation of α-Amino-3-hydroxy-5-methyl-4-isoxazolepropionate receptors (AMPARs). However, we demonstrated that exogenous AMPA dose-dependently inhibited carbachol (CCH)-induced γ oscillation in the CA3 area of rat hippocampal slices, but the underlying mechanism is not clear. Application of AMPARs antagonist NBQX (1 µM) did not affect γ oscillation power (γ power), nor AMPA-mediated γ power reduction. At 3 µM, NBQX had no effect on γ power but largely blocked AMPA-mediated γ power reduction. Ca2+-permeable AMPA receptor (CP-AMPAR) antagonist IEM1460 or CaMKK inhibitor STO-609 but not CaMKIIα inhibitor KN93 enhanced γ power, indicating that activation of CP-AMPAR or CaMKK negatively modulated CCH-induced γ oscillation. Either CP-AMPAR antagonist or CaMKK inhibitor alone did not affected AMPA-mediated γ power reduction, but co-administration of IEM1460 and NBQX (1 µM) largely prevented AMPA-mediated downregulation of γ suggesting that CP-AMPARs and CI-AMPARs are involved in AMPA downregulation of γ oscillation. The recurrent excitation recorded at CA3 stratum pyramidale was significantly reduced by AMPA application. Our results indicate that AMPA downregulation of γ oscillation may be related to the reduced recurrent excitation within CA3 local neuronal network due to rapid CI-AMPAR and CP-AMPAR activation.


Assuntos
Quinase da Proteína Quinase Dependente de Cálcio-Calmodulina , Hipocampo , Animais , Ratos , Ácido alfa-Amino-3-hidroxi-5-metil-4-isoxazol Propiônico , Modalidades de Fisioterapia , Região CA3 Hipocampal , Carbacol/farmacologia
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