Colomb W, Czerski J, Sau J D, Sarkar S K
Department of Physics, Colorado School of Mines, Golden, Colorado, U.S.A.
Department of Physics, University of Maryland, College Park, MD, U.S.A.
J Microsc. 2017 Jun;266(3):298-306. doi: 10.1111/jmi.12539. Epub 2017 Mar 22.
Fiducial markers are used to correct the microscope drift and should be photostable, be usable at multiple wavelengths and be compatible for multimodal imaging. Fiducial markers such as beads, gold nanoparticles, microfabricated patterns and organic fluorophores lack one or more of these criteria. Moreover, the localization accuracy and drift correction can be degraded by other fluorophores, instrument noise and artefacts due to image processing and tracking algorithms. Estimating mechanical drift by assuming Gaussian distributed noise is not suitable under these circumstances. Here we present a method that uses fluorescent nanodiamonds as fiducial markers and uses an improved maximum likelihood algorithm to estimate the drift with both accuracy and precision within the range 1.55-5.75 nm.
基准标记用于校正显微镜漂移,应具有光稳定性,可在多个波长下使用,并适用于多模态成像。诸如珠子、金纳米颗粒、微加工图案和有机荧光团等基准标记缺乏这些标准中的一项或多项。此外,由于图像处理和跟踪算法,其他荧光团、仪器噪声和伪像会降低定位精度和漂移校正。在这些情况下,通过假设高斯分布噪声来估计机械漂移是不合适的。在这里,我们提出了一种方法,该方法使用荧光纳米金刚石作为基准标记,并使用改进的最大似然算法在1.55-5.75nm范围内精确估计漂移。