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Extracting neuronal activity signals from microscopy recordings of contractile tissue using B-spline Explicit Active Surfaces (BEAS) cell tracking

机译:用B样条曲线显式有源表面(BEA)电池跟踪,从收缩组织的显微镜记录中提取神经元活动信号

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摘要

Abstract Ca2+ imaging is a widely used microscopy technique to simultaneously study cellular activity in multiple cells. The desired information consists of cell-specific time series of pixel intensity values, in which the fluorescence intensity represents cellular activity. For static scenes, cellular signal extraction is straightforward, however multiple analysis challenges are present in recordings of contractile tissues, like those of the enteric nervous system (ENS). This layer of critical neurons, embedded within the muscle layers of the gut wall, shows optical overlap between neighboring neurons, intensity changes due to cell activity, and constant movement. These challenges reduce the applicability of classical segmentation techniques and traditional stack alignment and regions-of-interest (ROIs) selection workflows. Therefore, a signal extraction method capable of dealing with moving cells and is insensitive to large intensity changes in consecutive frames is needed. Here we propose a b-spline active contour method to delineate and track neuronal cell bodies based on local and global energy terms. We develop both a single as well as a double-contour approach. The latter takes advantage of the appearance of GCaMP expressing cells, and tracks the nucleus’ boundaries together with the cytoplasmic contour, providing a stable delineation of neighboring, overlapping cells despite movement and intensity changes. The tracked contours can also serve as landmarks to relocate additional and manually-selected ROIs. This improves the total yield of efficacious cell tracking and allows signal extraction from other cell compartments like neuronal processes. Compared to manual delineation and other segmentation methods, the proposed method can track cells during large tissue deformations and high-intensity changes such as during neuronal firing events, while preserving the shape of the extracted Ca2+ signal. The analysis package represents a significant improvement to available Ca2+ imaging analysis workflows for ENS recordings and other systems where movement challenges traditional Ca2+ signal extraction workflows.
机译:摘要CA2 +成像是一种广泛使用的显微镜​​技术,同时研究多个细胞中的细胞活性。所需信息由细胞特定时间序列的像素强度值组成,其中荧光强度表示细胞活动。对于静态场景,细胞信号提取是简单的,然而,在收缩组织的记录中存在多种分析挑战,例如肠道神经系统(ENS)。这种关键神经元层嵌入肠壁的肌层内,示出了相邻神经元之间的光学重叠,由于细胞活动,强度变化,并且恒定的运动。这些挑战降低了经典分割技术和传统堆栈对齐和兴趣区的适用性和兴趣区(ROIS)选择工作流程。因此,需要一种能够处理移动电池并对连续帧的大强度变化不敏感的信号提取方法。在这里,我们提出了一种基于局部和全球能量术语描绘和跟踪神经元细胞体的B样条曲线活动轮廓方法。我们开发一个单身以及双轮廓方法。后者利用丙氨酸表达细胞的外观,并与细胞质轮廓一起追踪核心的边界,尽管运动和强度变化,但是稳定地描绘相邻,重叠细胞。跟踪轮廓也可以作为重新定位额外和手动选择的ROI的地标。这改善了有效电池跟踪的总产率,并允许来自其他细胞隔间的信号提取,如神经元过程。与手动描绘和其他分割方法相比,所提出的方法可以在大组织变形和高强度变化期间跟踪细胞,例如神经元射击事件期间,同时保留提取的CA2 +信号的形状。分析包代表可用CA2 +成像分析工作流程的显着改进,用于ENS录制和其他系统,其中运动挑战传统CA2 +信号提取工作流程。

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