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Combined fluorescence imaging of hippocampal dentate gyrus neural activity.

机译:海马齿状回神经活动的联合荧光成像。

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摘要

Dynamic imaging of neuronal function is one of the main techniques capable of resolving the emergent function of brain circuits, but no single technique is sufficient to capture all levels of information necessary to understand these networks. Specifically, calcium indicators can measure action potentials from individual neurons but are unable to detect membrane potential dynamics of the cell body and dendrites. In contrast, voltage sensitive dye imaging can measure neuronal transmembrane voltage changes occurring during synaptic activation, but is often unable to detect action potential firing in individual neurons within heterogeneous networks. I combined calcium and voltage imaging to create a novel imaging technique that merges the strengths of both methods to more completely evaluate the overall behavior of a network, allowing me to resolve both synaptic potentials and action potential firing in hippocampus microcircuits.;I built a system that combined two-photon excitation microscopy and epifluorescence microscopy in order to image voltage and calcium signals from the same tissue using the same objective lens. Integration of these imaging modalities required optimization of compatible dyes, lenses, filters, and custom development of analytical software. Implementation of this integrated microscope allowed me to image both calcium and voltage signals from multi-stained hippocampal slices with minimal interference between the two modalities.;I next investigated the postnatal development of circuit function of the hippocampal dentate gyrus using the combined calcium and voltage imaging system. I found that the gating function of the dentate exhibited a prolonged maturation, which could contribute to altered behavioral characteristics evident in mouse pups relative to adult animals. I also found that granule cells exhibit precise, deterministic firing characteristics at all ages. In addition, I found strong asymmetry in cellular activation within the infra- and suprapyramidal blades of the dentate gyrus.;This new microscope is capable of imaging dynamic circuit activity in virtually any tissue in the brain or spinal cord, revealing both network and individual neural properties. This is critical in elucidating mechanisms underlying both healthy function and disease states in these various microcircuits. This knowledge can help guide efforts directed towards development of effective preventative methods as well as improve our current treatment strategies in various neurologic and psychiatric disorders.
机译:神经元功能的动态成像是能够解决大脑回路紧急功能的主要技术之一,但是没有一种技术足以捕获理解这些网络所必需的所有级别的信息。具体而言,钙指示剂可以测量单个神经元的动作电位,但无法检测细胞体和树突的膜电位动态。相反,电压敏感染料成像可以测量突触激活过程中发生的神经元跨膜电压变化,但通常无法检测异质网络中单个神经元的动作电位触发。我结合了钙和电压成像技术,创建了一种新颖的成像技术,该技术融合了这两种方法的优势,可以更全面地评估网络的整体行为,从而使我能够解析海马微电路中的突触电位和动作电位触发。结合了双光子激发显微镜和落射荧光显微镜,以便使用同一物镜对来自同一组织的电压和钙信号进行成像。这些成像方式的集成需要优化兼容的染料,镜片,滤光片以及定制开发分析软件。集成显微镜的实现使我能够对来自多染色海马切片的钙和电压信号进行成像,而这两种方式之间的干扰最小。我接下来使用钙和电压成像技术研究了海马齿状回的产后电路发育系统。我发现,齿状动物的门控功能表现出延长的成熟度,这可能导致小鼠幼崽相对于成年动物表现出明显的行为特征改变。我还发现,颗粒细胞在所有年龄段都表现出精确的确定性发射特征。此外,我发现齿状回的下,上锥体神经节刀片内的细胞激活存在强烈的不对称性;这种新型显微镜能够对大脑或脊髓中几乎任何组织的动态电路活动进行成像,从而揭示网络和单个神经属性。这对于阐明这些各种微电路中健康功能和疾病状态的机制至关重要。这些知识可以帮助指导针对开发有效预防方法的努力,并改善我们目前在各种神经系统疾病和精神疾病中的治疗策略。

著录项

  • 作者

    Yu, Esther Pinsien.;

  • 作者单位

    University of Pennsylvania.;

  • 授予单位 University of Pennsylvania.;
  • 学科 Biomedical engineering.;Neurosciences.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 143 p.
  • 总页数 143
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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