三维共聚焦图像中纤维支架细胞骨架结构的鲁棒检测和可视化

Doyoung Park, Desiree Jones, N. Moldovan, R. Machiraju, T. Pécot
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引用次数: 3

摘要

聚合肌动蛋白为基础的细胞骨架结构提供了细胞的形状、弹性和动力学。对肌动蛋白结构的机制理解对于解决组织工程中需要细胞与材料相互作用的实际问题至关重要。在这方面,第一步是在三维细胞集合中检测和量化基于肌动蛋白的结构。在这项工作中,我们提出了视觉分析工具来描绘细胞中涉及f -肌动蛋白的特定结构。凹形肌动蛋白束(cab)经常出现在杂交细胞种子纤维支架中,并且似乎包裹着纤维,这可能是一种稳定附着的机制。在对纤维的检测和鉴定过程中,存在着许多不确定性。我们的工具依赖于众所周知的图像分析算法。我们首先采用自适应最小切割-最大流量算法来描绘纤维。然后,从被分割的纤维的末端出发,采用模板匹配和纤维跟踪算法更精确地表征图像中的纤维。通过观察其在焦点附近模板周围的径向分布,可以定位横向环绕支架纤维的cab。最后,我们可视地检查可能包含cab的候选模板,并进一步确定候选cab是否确实合法。可以明确地说,在没有提出的可视化分析工具的情况下,cab的检测是难以处理的任务。
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Robust detection and visualization of cytoskeletal structures in fibrillar scaffolds from 3-dimensional confocal image
Polymerized actin-based cytoskeletal structures provide the cells with shape, resilience and dynamics. A mechanistic understanding of actin-based structures is crucial for finding solutions to practical problems occurring in tissue engineering constructs that require the interaction of cells with materials. In this regard, the first step is to detect and quantify actin-based structures in 3D cellular ensembles. In this work, we propose visual-analytic tools to delineate specific structures involving F-actin in cells. Concave actin bundles (CABs) often occur in hybrid cell-seeded fibrillar scaffolds and seem to envelope the fibers, as a possible mechanism of stable attachment. There is much uncertainty that accompanies the detection and the identification of fibers. Our tools rely on well-known algorithms of image analysis. We first delineate fibers by employing an adaptive min-cut-max-flow algorithm. Then, from the extremities of the segmented fibers, a template matching and a fiber tracking algorithm is applied to more precisely characterize the fibers in the image. CABs that surround the scaffold fibers transversally are located by observing their radial distribution around the nearby templates in focus. Finally, we visually examine candidate templates that possibly contain CABs and further determine if candidate CABs are indeed legitimate. It can be unequivocally stated that in the absence of the proposed visual analytic tools, the detection of CABs is intractable tasks.
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MoClo planner: Interactive visualization for Modular Cloning bio-design Robust detection and visualization of cytoskeletal structures in fibrillar scaffolds from 3-dimensional confocal image Leveraging wall-sized high-resolution displays for comparative genomics analyses of copy number variation From biochemical reaction networks to 3D dynamics in the cell: The ZigCell3D modeling, simulation and visualisation framework neuroMAP — Interactive graph-visualization of the fruit fly's neural circuit
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