The method of isolation of the crayfish abdominal stretch receptor maintaining a connection of the sensory neuron to the ventral nerve cord ganglion.

Q4 Neuroscience Invertebrate Neuroscience Pub Date : 2015-01-01 Epub Date: 2014-11-06 DOI:10.1007/s10158-014-0176-2
Andrej M Khaitin, Mikhail V Rudkovskii, Anatoly B Uzdensky
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引用次数: 13

Abstract

The crayfish stretch receptor consisting of the single mechanoreceptor neurons enveloped by satellite glial cells is the simplest functioning neuroglial preparation. However, during isolation, its axons are usually transected that eliminates afferent regulation and induces complex axotomy-related signaling responses in neurons and satellite glia. We developed new microsurgical method of crayfish stretch receptor isolation, which preserves connections of sensory neurons to the ventral nerve cord ganglion. The stretch receptor may either remain on the abdominal carapace, or be completely isolated. In both cases, it may be either intact, or axotomized. The integrity of axons was confirmed by firing recording from proximal and distal axon points. Normal, necrotic and apoptotic cells were visualized using double fluorochroming with Hoechst 33342 and propidium iodide. The isolated mechanoreceptor neurons maintain regular firing during 8-10 or more hours. Glial cells surrounding non-axotomized neurons demonstrate lower necrosis and apoptosis levels than the axotomized ones. Unlike the existing method, in which the sensory neurons were axotomized, the present method preserves links between the sensory neurons and the ganglion and makes possible to avoid consequences of axotomy in neurons and satellite glia. The present neuroglial preparation may be used as a simple but informative model object in studies of axotomy-induced degeneration and survival of peripheral neurons, the role of glia in neuron injury, the signaling mechanisms of neuroglial interactions, and the effects of diverse physical and chemical factors on neuronal and glial cells.

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保持感觉神经元与腹侧神经束神经节连接的小龙虾腹部拉伸受体的分离方法。
由卫星神经胶质细胞包裹的单个机械受体神经元构成的小龙虾拉伸受体是功能最简单的神经胶质制剂。然而,在分离过程中,其轴突通常被横断,这消除了传入调节,并在神经元和卫星胶质中诱导复杂的与轴突切断术相关的信号反应。我们开发了一种新的显微外科分离小龙虾拉伸受体的方法,该方法保留了感觉神经元与腹侧神经索神经节的连接。拉伸感受器可能保留在腹膜上,也可能完全分离。在这两种情况下,它要么是完整的,要么是切除的。通过近端和远端轴突点的放电记录证实了轴突的完整性。用Hoechst 33342和碘化丙啶双荧光染色观察正常、坏死和凋亡细胞。分离的机械感受器神经元在8-10小时或更长时间内保持有规律的放电。神经细胞周围的神经胶质细胞坏死和细胞凋亡水平低于无轴突切除的神经元。与现有方法不同的是,该方法保留了感觉神经元和神经节之间的联系,并且可以避免神经元和卫星胶质的轴突切除的后果。本研究制备的神经胶质可作为一种简单但信息丰富的模型对象,用于研究腋切开术诱导的周围神经元变性和存活、胶质在神经元损伤中的作用、神经胶质相互作用的信号机制以及各种物理和化学因素对神经元和胶质细胞的影响。
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来源期刊
Invertebrate Neuroscience
Invertebrate Neuroscience NEUROSCIENCES-
自引率
0.00%
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>12 weeks
期刊介绍: Invertebrate Neurosciences publishes peer-reviewed original articles, reviews and technical reports describing recent advances in the field of invertebrate neuroscience. The journal reports on research that exploits the simplicity and experimental tractability of the invertebrate preparations to underpin fundamental advances in neuroscience. Articles published in Invertebrate Neurosciences serve to highlight properties of signalling in the invertebrate nervous system that may be exploited in the field of antiparisitics, molluscicides and insecticides. Aspects of particular interest include: Functional analysis of the invertebrate nervous system; Molecular neuropharmacology and toxicology; Neurogenetics and genomics; Functional anatomy; Neurodevelopment; Neuronal networks; Molecular and cellular mechanisms of behavior and behavioural plasticity.
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