Abdellah Marwan, Bilgili Ahmet, Eilemann Stefan, Markram Henry, Schürmann Felix
BMC Bioinformatics. 2015;16 Suppl 11(Suppl 11):S8. doi: 10.1186/1471-2105-16-S11-S8. Epub 2015 Aug 13.
We present a physically-based computational model of the light sheet fluorescence microscope (LSFM). Based on Monte Carlo ray tracing and geometric optics, our method simulates the operational aspects and image formation process of the LSFM. This simulated, in silico LSFM creates synthetic images of digital fluorescent specimens that can resemble those generated by a real LSFM, as opposed to established visualization methods producing visually-plausible images. We also propose an accurate fluorescence rendering model which takes into account the intrinsic characteristics of fluorescent dyes to simulate the light interaction with fluorescent biological specimen.
We demonstrate first results of our visualization pipeline to a simplified brain tissue model reconstructed from the somatosensory cortex of a young rat. The modeling aspects of the LSFM units are qualitatively analysed, and the results of the fluorescence model were quantitatively validated against the fluorescence brightness equation and characteristic emission spectra of different fluorescent dyes.
Modelling and simulation.
我们提出了一种基于物理的光片荧光显微镜(LSFM)计算模型。基于蒙特卡罗光线追踪和几何光学,我们的方法模拟了LSFM的操作方面和图像形成过程。这种模拟的、计算机模拟的LSFM创建了数字荧光标本的合成图像,这些图像可以类似于真实LSFM生成的图像,这与产生视觉上合理图像的既定可视化方法相反。我们还提出了一种精确的荧光渲染模型,该模型考虑了荧光染料的内在特性,以模拟光与荧光生物标本的相互作用。
我们向从幼鼠体感皮层重建的简化脑组织模型展示了我们可视化流程的初步结果。对LSFM单元的建模方面进行了定性分析,并根据荧光亮度方程和不同荧光染料的特征发射光谱对荧光模型的结果进行了定量验证。
建模与仿真。