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长期对器官型新皮质外植体中谷氨酸介导的生物电活动进行慢性阻断,对锥体/非锥体树突形态产生不同影响。

Chronic blockade of glutamate-mediated bioelectric activity in long-term organotypic neocortical explants differentially effects pyramidal/non-pyramidal dendritic morphology.

作者信息

Baker R E, Wolters P, van Pelt J

机构信息

Netherlands Institute for Brain Research, Amsterdam.

出版信息

Brain Res Dev Brain Res. 1997 Dec 19;104(1-2):31-9. doi: 10.1016/s0165-3806(97)00133-8.

Abstract

Dendritic/axonal growth has been examined in long-term organotypic neocortical explants taken from neonatal rat pups and grown either as isolated slices or as co-cultures. The quantitative light microscopic measurement of dendritic and axonal branching patterns within both types of explants was carried out on Golgi-stained materials. Spontaneous bioelectric activity (SBA) was blocked within both types of explants using a combination of APV and DNQX, NMDA and non-NMDA receptor antagonists, respectively. No extracellularly measurable SBA was observed to occur in the silenced explants in the presence of both antagonists but reappeared following wash-out with control medium. In both control and silenced explants, the overall cellular organization of the slice was maintained throughout the culturing period, with distinguishable pyramidal and non-pyramidal neurons located within the same layers and with the same orientations as observed in situ. The major findings of the present study show the following. (i) Pyramidal neurones chronically exposed to APV/DNQX exhibited no basal dendritic growth in co-cultured explants, while growth of apical dendritic lengths was similar to control values in the absence of SBA. (ii) Pyramidal neurones, nonetheless, exhibited significant terminal segment growth under SBA blockade which was correlated with a concomitant decrease in number of basal dendrites. (iii) Axonal growth in co-cultures was not sustained in silenced pyramidal neurones. (iv) Non-pyramidal neurones showed significant total dendritic and axonal growth in co-cultures following APV/DNQX treatment. (v) Non-pyramidal cells in co-cultures experienced an increase in terminal segment length at 2 weeks which declined in the third week. This increase-decrease was correlated with a decrease-increase in the total number of dendritic segments during the second and third weeks, respectively. (vi) In isolated explants the only departure from control growth curves was a significant increase in terminal segment length which was offset by a similar decrease in number of dendritic segments under APV/DNQX growth conditions. Thus the chronic loss of glutamate-mediated SBA differentially effected pyramidal and non-pyramidal neurones in isolated and co-cultured explants, with pyramidal neurones experiencing the more pronounced effects. We conclude that SBA effects the dynamics of neuritic elongation and branching and that these changes are most dramatically seen in co-cultures which cross-innervate one another, presumably via pyramidal axons. We hypothesize that the activity-dependent changes associated with reduction in pyramidal dendritic and axonal growth may be associated with neurotrophin receptor production/maturation.

摘要

在取自新生大鼠幼崽的长期器官型新皮质外植体中,研究了树突/轴突的生长情况,这些外植体以分离切片或共培养的方式生长。对两种类型外植体内的树突和轴突分支模式进行了定量光学显微镜测量,测量对象是高尔基染色材料。分别使用APV和DNQX(NMDA和非NMDA受体拮抗剂的组合)阻断两种类型外植体内的自发生物电活动(SBA)。在两种拮抗剂存在的情况下,沉默的外植体中未观察到可在细胞外测量到的SBA,但在用对照培养基冲洗后又重新出现。在对照和沉默的外植体中,切片的整体细胞组织在整个培养期间都得以维持,可区分的锥体神经元和非锥体神经元位于同一层,且与原位观察到的方向相同。本研究的主要发现如下:(i)长期暴露于APV/DNQX的锥体神经元在共培养的外植体中未表现出基底树突生长,而在没有SBA的情况下,顶树突长度的生长与对照值相似。(ii)尽管如此,锥体神经元在SBA阻断下表现出显著的终末节段生长,这与基底树突数量的相应减少相关。(iii)沉默的锥体神经元在共培养中的轴突生长无法持续。(iv)非锥体神经元在APV/DNQX处理后的共培养中表现出显著的总树突和轴突生长。(v)共培养中的非锥体细胞在第2周时终末节段长度增加,在第3周时下降。这种增加-减少分别与第2周和第3周树突节段总数的减少-增加相关。(vi)在分离的外植体中,与对照生长曲线的唯一差异是终末节段长度显著增加,在APV/DNQX生长条件下,这被树突节段数量的类似减少所抵消。因此,谷氨酸介导的SBA的长期丧失对分离和共培养外植体中的锥体神经元和非锥体神经元产生了不同的影响,其中锥体神经元受到的影响更为明显。我们得出结论,SBA影响神经突伸长和分支的动力学,并且这些变化在相互交叉支配的共培养中最为显著,大概是通过锥体轴突实现的。我们假设与锥体树突和轴突生长减少相关的活动依赖性变化可能与神经营养因子受体的产生/成熟有关。

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