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Reconstruction of neuronal activity and connectivity patterns in the zebrafish olfactory bulb

机译:重建斑马鱼嗅球的神经元活动和连接模式

摘要

In the olfactory bulb (OB), odors evoke distributed patterns of activity across glomeruli that are reorganized by networks of interneurons (INs). This reorganization results in multiple computations including a decorrelation of activity patterns across the output neurons, the mitral cells (MCs). To understand the mechanistic basis of these computations it is essential to analyze the relationship between function and structure of the underlying circuit.udI combined in vivo twophoton calcium imaging with dense circuit reconstruction from complete serial block-face electron microscopy (SBEM) stacks of the larval zebrafish OB (4.5 dpf) with a voxel size of 9x9x25nm. To address bottlenecks in the workflow of SBEM, I developed a novel embedding and staining procedure that effectively reduces surface charging in SBEM and enables to acquire SBEM stacks with at least a ten-fold increase in both, signal-to-noise as well as acquisition speed.udI set up a high throughput neuron reconstruction pipeline with >30 professional tracers that is available for the scientific community (ariadne-service.com). To assure efficient and accurate circuit reconstruction, I developed PyKNOSSOS, a Python software for skeleton tracing and synapse annotation, and CORE, a skeleton consolidation procedure that combines redundant reconstruction with targeted expert input.udUsing these procedures I reconstructed all neurons (>1000) in the larval OB. Unlike in the adult OB, INs were rare and appeared to represent specific subtypes, indicating that different sub-circuits develop sequentially. MCs were uniglomerular whereas inter-glomerular projections of INs were complex and biased towards groups of glomeruli that receive input from common types of sensory neurons. Hence, the IN network in the OB exhibits a topological organization that is governed by glomerular identity.udCalcium imaging revealed that the larval OB circuitry already decorrelates activity patterns evoked by similar odors. The comparison of inter-glomerular connectivity to the functional interactions between glomeruli indicates that pattern decorrelation depends on specific, non-random inter-glomerular IN projections. Hence, the topology of IN networks in the OB appears to be an important determinant of circuit function.
机译:在嗅球(OB)中,气味会引起跨肾小球的活动分布模式,这些活动模式由中间神经元(IN)网络重新组织。这种重组导致多种计算,包括跨输出神经元,二尖瓣细胞(MCs)的活动模式的去相关。要了解这些计算的机理基础,必须分析基础电路的功能和结构之间的关系。 udI将体内双光子钙成像与从完整的串联块面电子显微镜(SBEM)堆叠的密集电路重建相结合幼体斑马鱼OB(4.5 dpf),体素大小为9x9x25nm。为了解决SBEM工作流程中的瓶颈,我开发了一种新颖的嵌入和染色程序,可有效减少SBEM中的表面电荷,并使SBEM叠层的信噪比和捕获率均增加至少十倍。 udI建立了一条包含30多个专业示踪剂的高通量神经元重建管道,该管道可用于科学界(ariadne-service.com)。为了确保高效,准确地进行电路重建,我开发了PyKNOSSOS,这是一个用于骨骼跟踪和突触注释的Python软件,而CORE是一个骨骼合并过程,将冗余重建与目标专家输入相结合。 ud使用这些过程,我重建了所有神经元(> 1000)。在幼虫OB中。与成人OB不同,IN很少见,并且似乎代表特定的亚型,表明不同的子电路是依次发展的。 MC是单肾小球,而IN的肾小球间投影很复杂,并且偏向从常见类型的感觉神经元接收输入的肾小球群。因此,OB中的IN网络表现出受肾小球同一性控制的拓扑结构。 ud钙成像显示,幼虫OB电路已经消除了由类似气味引起的活动模式。肾小球间连通性与肾小球之间的功能相互作用的比较表明,模式去相关取决于特定的,非随机的肾小球间IN投影。因此,OB中IN网络的拓扑似乎是电路功能的重要决定因素。

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    Wanner Adrian A.;

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  • 年度 2016
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  • 正文语种 {"code":"en","name":"English","id":9}
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