The Suprapyramidal and Infrapyramidal Blades of the Dentate Gyrus Exhibit Different GluN Subunit Content and Dissimilar Frequency-Dependent Synaptic Plasticity In Vivo

IF 2.4 3区 医学 Q3 NEUROSCIENCES
Hippocampus Pub Date : 2025-02-24 DOI:10.1002/hipo.70002
Christina Strauch, Juliane Böge, Olena Shchyglo, Valentyna Dubovyk, Denise Manahan-Vaughan
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引用次数: 0

Abstract

The entorhinal cortex sends afferent information to the hippocampus by means of the perforant path (PP). The PP input to the dentate gyrus (DG) terminates in the suprapyramidal (sDG) and infrapyramidal (iDG) blades. Different electrophysiological stimulation patterns of the PP can generate hippocampal synaptic plasticity. Whether frequency-dependent synaptic plasticity differs in the sDG and iDG is unclear. Here, we compared medial PP–DG responses in freely behaving adult rats and found that synaptic plasticity in the sDG is broadly frequency dependent, whereby long-term depression (LTD, > 24 h) is induced with stimulation at 1 Hz, short-term depression (< 2 h) is triggered by 5 or 10 Hz, and long-term potentiation (LTP) of increasing magnitudes is induced by 200 and 400 Hz stimulation, respectively. By contrast, although the iDG expresses STD following 5 or 10 Hz stimulation, LTD induced by 1 Hz is weaker, LTP is not induced by 200 Hz and LTP induced by 400 Hz stimulation is significantly smaller in magnitude than LTP induced in sDG. Furthermore, the stimulus–response relationship of iDG is suppressed compared to sDG. These differences may arise from differences in granule cell properties, or the complement of NMDA receptors. Patch clamp recordings, in vitro, revealed reduced firing frequencies in response to high currents, and different action potential thresholds in iDG compared to sDG. Assessment of the expression of GluN subunits revealed significantly lower expression levels of GluN1, GluN2A, and GluN2B in the middle molecular layer of iDG compared to sDG. Taken together, these data indicate that synaptic plasticity in the iDG is weaker, less persistent and less responsive to afferent frequencies than synaptic plasticity in sDG. Effects may be mediated by weaker NMDA receptor expression and differences in neuronal responses in iDG versus sDG. These characteristics may explain reported differences in experience-dependent information processing in the suprapyramidal and infrapyramidal blades of the DG.

Abstract Image

齿状回锥体上叶和锥体下叶在体内表现出不同的GluN亚基含量和不同的频率依赖性突触可塑性
内嗅皮层通过穿孔通路(perforant path, PP)将传入信息传递给海马。PP输入到齿状回(DG)终止于锥体上叶(sDG)和锥体下叶(iDG)。PP的不同电生理刺激模式可产生海马突触可塑性。频率依赖性突触可塑性在sDG和iDG中是否不同尚不清楚。在这里,我们比较了自由行为的成年大鼠的内侧PP-DG反应,发现sDG的突触可塑性广泛依赖于频率,其中1hz的刺激会诱发长期抑郁(LTD, >; 24小时),5或10 Hz的刺激会诱发短期抑郁(<; 2小时),200和400 Hz的刺激分别会诱发不断增强的长期增强(LTP)。相比之下,虽然iDG在5 Hz或10 Hz刺激后表达STD,但1 Hz诱导的LTD较弱,200 Hz不诱导LTP, 400 Hz诱导的LTP在量级上明显小于sDG诱导的LTP。此外,与sDG相比,iDG的刺激-反应关系受到抑制。这些差异可能源于颗粒细胞特性的差异,或NMDA受体的补体。膜片钳体外记录显示,与sDG相比,iDG的放电频率降低,且动作电位阈值不同。GluN亚基表达评估显示,GluN1、GluN2A和GluN2B在iDG中间分子层的表达水平明显低于sDG。综上所述,这些数据表明,与sDG相比,iDG的突触可塑性更弱,持久性更差,对传入频率的反应也更弱。作用可能是由较弱的NMDA受体表达和iDG与sDG的神经元反应差异介导的。这些特征可以解释DG的锥体上叶和锥体下叶中经验依赖信息处理的差异。
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来源期刊
Hippocampus
Hippocampus 医学-神经科学
CiteScore
5.80
自引率
5.70%
发文量
79
审稿时长
3-8 weeks
期刊介绍: Hippocampus provides a forum for the exchange of current information between investigators interested in the neurobiology of the hippocampal formation and related structures. While the relationships of submitted papers to the hippocampal formation will be evaluated liberally, the substance of appropriate papers should deal with the hippocampal formation per se or with the interaction between the hippocampal formation and other brain regions. The scope of Hippocampus is wide: single and multidisciplinary experimental studies from all fields of basic science, theoretical papers, papers dealing with hippocampal preparations as models for understanding the central nervous system, and clinical studies will be considered for publication. The Editor especially encourages the submission of papers that contribute to a functional understanding of the hippocampal formation.
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