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Analysis of Aplysia Neuronal Network by Fluorescent Voltage Imaging

机译:荧光电压成像分析Aplysia神经元网络

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Aplysia has been used as an ideal experimental model for studying neuronal networks involved in learning and memory because large and identifiable neurons present in its central nervous system (CNS). Fluorescent voltage imaging with a voltage-sensitive dye (VSD) is a potential tool for multiple-site monitoring of neuronal activity. Fluorescent voltage imaging of Aplysia CNS would contribute greatly toward basic research on neuronal network; however, this has not yet been implemented because of the difficulty in staining of Aplysia neurons with a VSD. In the present study, we developed a variant of voltage imaging using Aplysia ganglion neurons and di-4-ANEPPS, which is a commonly used fluorescent VSD. An Aplysia abdominal ganglion was digested using protease to facilitate the removal of fibrous sheath with microscissors. This treated ganglion was soaked in di-4-ANEPPS solution containing Aplysia hemolymph. The ganglionic neurons were stained well with the VSD, which emitted a detectable fluorescence. The change in fluorescent intensity agreed with the spontaneous firing in membrane potentials of the neurons. Results showed that fluorescent voltage imaging of Aplysia CNS neurons was possible after appropriate pretreatment of the ganglion. However, the sensitivity of the fluorescence to the membrane potential vanished in approximately 2 h. Despite the time limit, the voltage imaging method offers a great breakthrough for basic studies on neuronal network in learning and memory of animals.
机译:Aplysia被用作学习学习和记忆中涉及的神经元网络的理想实验模型,因为其中枢神经系统(CNS)存在的大而识别的神经元。具有电压敏感染料(VSD)的荧光电压成像是用于多元宝部活动的多站点监测的潜在工具。 Aplysia CNS的荧光电压成像将大大促进神经元网络的基础研究;然而,这尚未实施,因为难以使用VSD染色的APLYSIA神经元。在本研究中,我们开发了使用Aplysia神经节神经元和DI-4-anepps的电压成像的变体,这是常用的荧光VSD。使用蛋白酶消化Aplysia腹部神经节,以便于用显微镜移除纤维护套。将这种治疗的神经节浸泡在含有Aplysia血淋巴的DI-4-anepps溶液中。与VSD染色神经节神经元,其发射可检测的荧光。荧光强度的变化同意神经元膜电位中的自发烧制。结果表明,在适当预处理神经节后,可能在Aplysia CNS神经元的荧光电压成像。然而,荧光与膜电位的敏感性在约2小时内消失。尽管存在时间限制,但电压成像方法为学习和记忆中的神经元网络进行了重要突破。

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