LimeSeg: a coarse-grained lipid membrane simulation for 3D image segmentation

被引:47
|
作者
Machado, Sarah [1 ]
Mercier, Vincent [2 ]
Chiaruttini, Nicolas [2 ]
机构
[1] Univ Geneva, Dept Biochem, Marcos Gonzalez Gaitan Lab, Quai Ernest Ansermet 30, CH-1211 Geneva, Switzerland
[2] Univ Geneva, Dept Biochem, Aurelien Roux Lab, Quai Ernest Ansermet 30, CH-1211 Geneva, Switzerland
基金
瑞士国家科学基金会;
关键词
3D segmentation; ImageJ; Surfel-based; Point-cloud; Cell volume; Cell surface; Cell membrane segmentation; CELL SEGMENTATION; SNAKES; MICROSCOPY; MODELS;
D O I
10.1186/s12859-018-2471-0
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Background3D segmentation is often a prerequisite for 3D object display and quantitative measurements. Yet existing voxel-based methods do not directly give information on the object surface or topology. As for spatially continuous approaches such as level-set, active contours and meshes, although providing surfaces and concise shape description, they are generally not suitable for multiple object segmentation and/or for objects with an irregular shape, which can hamper their adoption by bioimage analysts.ResultsWe developed LimeSeg, a computationally efficient and spatially continuous 3D segmentation method. LimeSeg is easy-to-use and can process many and/or highly convoluted objects. Based on the concept of SURFace ELements (Surfels), LimeSeg resembles a highly coarse-grained simulation of a lipid membrane in which a set of particles, analogous to lipid molecules, are attracted to local image maxima. The particles are self-generating and self-destructing thus providing the ability for the membrane to evolve towards the contour of the objects of interest.The capabilities of LimeSeg: simultaneous segmentation of numerous non overlapping objects, segmentation of highly convoluted objects and robustness for big datasets are demonstrated on experimental use cases (epithelial cells, brain MRI and FIB-SEM dataset of cellular membrane system respectively).ConclusionIn conclusion, we implemented a new and efficient 3D surface reconstruction plugin adapted for various sources of images, which is deployed in the user-friendly and well-known ImageJ environment.
引用
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页数:12
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