Dynamics of Goldfish Subregional Hippocampal Pallium Activity throughout Spatial Memory Formation

被引:24
|
作者
Ocana, Francisco M. [1 ]
Uceda, Sara [1 ]
Arias, Jorge L. [2 ,3 ]
Salas, Cosme [1 ,4 ]
Rodriguez, Fernando [1 ]
机构
[1] Univ Seville, Lab Psicobiol, C Camilo Jose Cela S-N, ES-41018 Seville, Spain
[2] Univ Oviedo, Lab Neurociencia, Oviedo, Spain
[3] Univ Oviedo, Inst Neurociencias Principado Asturias INEUROPA, Oviedo, Spain
[4] Univ Autonoma Chile, Santiago, Chile
关键词
Hippocampal pallium; Hippocampal neural network; Spatial memory; Cytochrome oxidase histochemistry; Dentate gyrus/CA3 network; Parahippocampal region; Teleost fish; Forebrain evolution; CYTOCHROME-OXIDASE ACTIVITY; OLFACTORY-BULB PROJECTIONS; PATTERN SEPARATION; TELENCEPHALIC ABLATION; ENTORHINAL CORTEX; AVIAN HIPPOCAMPUS; PARAHIPPOCAMPAL CORTICES; PREGLOMERULAR NUCLEUS; NONSPATIAL CHANGES; SELECTIVE LESIONS;
D O I
10.1159/000478843
中图分类号
B84 [心理学]; C [社会科学总论]; Q98 [人类学];
学科分类号
03 ; 0303 ; 030303 ; 04 ; 0402 ;
摘要
The teleost fish hippocampal pallium, like the hippocampus of tetrapods, is essential for relational map-like spatial memories. In mammals, these relational memories involve the dynamic interactions among different hippocampal subregions and between the hippocampus-neocortex network, which performs specialized operations such as memory encoding and retrieval. However, how the teleost hippocampal homologue operates to achieve comparably sophisticated spatial cognition capabilities is largely unknown. In the present study, the progressive changes in the metabolic activity of the pallial regions that have been proposed as possible homologues of the mammalian hippocampus were monitored in goldfish. Quantitative cytochrome oxidase histochemistry was used to measure the level of activation along the rostrocaudal axis of the ventral (Dlv) and dorsal parts of the dorsolateral division (Dld) and in the dorsoposterior division (Dp) of the goldfish telencephalic pallium throughout the time course of the learning process of a spatial memory task. The results revealed a significant increase in spatial memory-related metabolic activity in the Dlv, but not in the Dld, suggesting that the Dlv, but not the Dld, is comparable to the amniote hippocampus. Regarding the Dlv, the level of activation of the precommissural Dlv significantly increased at training onset but progressively declined to finally return to the basal pretraining level when the animals mastered the spatial task. In contrast, the commissural DIN/activation persisted even when the acquisition phase was completed and the animal's performance reached an asymptotic level. These results suggest that, like the dentate gyrus of mammals, the goldfish precommissural Dlv seems to respond nonlinearly to increments of change in sensory input, performing pattern separation under highly dissimilar input patterns. In addition, like the CA3 of mammals, the commissural Dlv likely operates in a continuum between two modes, a pattern separation or storage operation mode at early acquisition when the change in the sensory input is high, probably driven by the precommissural Dlv output, and a pattern completion or recall operation mode when the animals have mastered the task and the change in sensory input is small. Finally, an unexpected result of the present study is the persistent activation of the area Dp throughout the complete spatial task training period, which suggests that the Dp could be an important component of the pallial network involved in spatial memory in goldfish, and supports the hypothesis proposing that the Dp is a specialized part of the hippocampal pallium network. (C) 2017 S. Karger AG, Basel
引用
收藏
页码:154 / 170
页数:17
相关论文
共 50 条
  • [1] Selective involvement of the goldfish lateral pallium in spatial memory
    Broglio, C.
    Rodriguez, F.
    Gomez, A.
    Arias, J. L.
    Salas, C.
    [J]. BEHAVIOURAL BRAIN RESEARCH, 2010, 210 (02) : 191 - 201
  • [2] Spatial learning-related changes in metabolic brain activity contribute to the delimitation of the hippocampal pallium in goldfish
    Uceda, S.
    Ocana, F. M.
    Martin-Monzon, I.
    Rodriguez-Exposito, B.
    Duran, E.
    Rodriguez, F.
    [J]. BEHAVIOURAL BRAIN RESEARCH, 2015, 292 : 403 - 408
  • [3] Lateral and medial telencephalic pallium lesions impair spatial memory in goldfish
    Givon, Shachar
    Altsuler-Nagar, Renana
    Oring, Naama
    Vinepinsky, Ehud
    Segev, Ronen
    [J]. BRAIN RESEARCH BULLETIN, 2023, 204
  • [4] Spatial memory and hippocampal pallium through vertebrate evolution:: Insights from reptiles and teleost fish
    Rodríguez, F
    López, JC
    Vargas, JP
    Broglio, C
    Gómez, Y
    Salas, C
    [J]. BRAIN RESEARCH BULLETIN, 2002, 57 (3-4) : 499 - 503
  • [5] Dynamics of Hippocampal Protein Expression During Long-term Spatial Memory Formation
    Borovok, Natalia
    Nesher, Elimelech
    Levin, Yishai
    Reichenstein, Michal
    Pinhasov, Albert
    Michaelevski, Izhak
    [J]. MOLECULAR & CELLULAR PROTEOMICS, 2016, 15 (02) : 523 - 541
  • [6] SPATIAL-ORGANIZATION OF PHYSIOLOGICAL-ACTIVITY IN THE HIPPOCAMPAL REGION - RELEVANCE TO MEMORY FORMATION
    BUZSAKI, G
    CHEN, LS
    GAGE, FH
    [J]. PROGRESS IN BRAIN RESEARCH, 1990, 83 : 257 - 268
  • [7] Dynamics of hippocampal memory formation in waking and sleep states
    Wilson, M
    [J]. JOURNAL OF PHYSIOLOGY-PARIS, 1996, 90 (5-6) : 351 - 352
  • [8] Dissociation of spatial and object memory in the hippocampal formation of Japanese quail
    Damphousse, Chelsey C.
    Miller, Noam
    Marrone, Diano F.
    [J]. ISCIENCE, 2022, 25 (02)
  • [9] Allocentric spatial memory activation of the hippocampal formation measured with fMRI
    Parslow, DM
    Rose, D
    Brooks, B
    Fleminger, S
    Gray, JA
    Giampietro, V
    Brammer, MJ
    Williams, S
    Gasston, D
    Andrew, C
    Vythelingum, GN
    Ioannou, G
    Simmons, A
    Morris, RG
    [J]. NEUROPSYCHOLOGY, 2004, 18 (03) : 450 - 461
  • [10] Differential role of hippocampal cannabinoid receptors in spatial memory formation
    Riedel, G.
    Robinson, L.
    [J]. BEHAVIOURAL PHARMACOLOGY, 2007, 18 : S9 - S9