Aloni E, Verbitsky S, Kushnireva L, Korkotian E, Segal M
Department of Neurobiology, Weizmann Institute, 76100, Rehovot, Israel.
Brain Struct Funct. 2021 Sep;226(7):2459-2466. doi: 10.1007/s00429-021-02346-0. Epub 2021 Jul 21.
Synaptopodin (SP) is localized within the spine apparatus, an enigmatic structure located in the neck of spines of central excitatory neurons. It serves as a link between the spine head, where the synapse is located, and the endoplasmic reticulum (ER) in the parent dendrite. SP is also located in the axon initial segment, in association with the cisternal organelle, another structure related to the endoplasmic reticulum. Extensive research using SP knockout (SPKO) mice suggest that SP has a pivotal role in structural and functional plasticity. Consequently, young adult SPKO mice were shown to be deficient in cognitive functions, and in ability to undergo long-term potentiation of reactivity to afferent stimulation. However, although SP expresses differently during maturation, its role in synaptic and intrinsic neuronal mechanisms in adult SPKO mice is still unclear. To address this knowledge gap we analyzed hippocampus bulk mRNA in SPKO mice, and we recorded the activity of CA1 neurons in the mouse hippocampus slice, with both extracellular and patch recording methods. Electrophysiologically, SPKO cells in CA1 region of the dorsal hippocampus were more excitable than wild type (wt) ones. In addition, exposure of mice to a complex environment caused a higher proportion of arc-expressing cells in SPKO than in wt mice hippocampus. These experiments indicate that higher excitability and higher expression of arc staining may reflect SP deficiency in the hippocampus of adult SPKO mice.
突触素(Synaptopodin,SP)定位于棘器内,棘器是位于中枢兴奋性神经元树突棘颈部的一种神秘结构。它充当突触所在的树突棘头部与母树突内质网(ER)之间的连接。SP也位于轴突起始段,与池状细胞器相关联,池状细胞器是另一种与内质网有关的结构。使用SP基因敲除(SPKO)小鼠进行的广泛研究表明,SP在结构和功能可塑性中起关键作用。因此,已证明年轻成年SPKO小鼠在认知功能以及对传入刺激的反应进行长期增强的能力方面存在缺陷。然而,尽管SP在成熟过程中表达不同,但其在成年SPKO小鼠的突触和内在神经元机制中的作用仍不清楚。为了填补这一知识空白,我们分析了SPKO小鼠海马体的总体mRNA,并使用细胞外记录和膜片钳记录方法记录了小鼠海马体切片中CA1神经元的活动。从电生理学角度来看,背侧海马体CA1区域的SPKO细胞比野生型(wt)细胞更易兴奋。此外,将小鼠置于复杂环境中时,与wt小鼠海马体相比,SPKO小鼠海马体中表达arc的细胞比例更高。这些实验表明,较高的兴奋性和较高的arc染色表达可能反映了成年SPKO小鼠海马体中SP的缺乏。