Pipeline for illumination correction of images for high-throughput microscopy

被引:65
|
作者
Singh, S. [1 ]
Bray, M. -A. [1 ]
Jones, T. R. [1 ]
Carpenter, A. E. [1 ]
机构
[1] Broad Inst MIT & Harvard, Cambridge, MA USA
基金
美国国家科学基金会;
关键词
Fluorescence microscopy; high-throughput microscopy; illumination correction; shading correction; vignetting; SHADING CORRECTION; CALIBRATION; VALIDATION; SCREENS; CELLS; LIGHT;
D O I
10.1111/jmi.12178
中图分类号
TH742 [显微镜];
学科分类号
摘要
The presence of systematic noise in images in high-throughput microscopy experiments can significantly impact the accuracy of downstream results. Among the most common sources of systematic noise is non-homogeneous illumination across the image field. This often adds an unacceptable level of noise, obscures true quantitative differences and precludes biological experiments that rely on accurate fluorescence intensity measurements. In this paper, we seek to quantify the improvement in the quality of high-content screen readouts due to software-based illumination correction. We present a straightforward illumination correction pipeline that has been used by our group across many experiments. We test the pipeline on real-world high-throughput image sets and evaluate the performance of the pipeline at two levels: (a) Z-factor to evaluate the effect of the image correction on a univariate readout, representative of a typical high-content screen, and (b) classification accuracy on phenotypic signatures derived from the images, representative of an experiment involving more complex data mining. We find that applying the proposed post-hoc correction method improves performance in both experiments, even when illumination correction has already been applied using software associated with the instrument. To facilitate the ready application and future development of illumination correction methods, we have made our complete test data sets as well as open-source image analysis pipelines publicly available. This software-based solution has the potential to improve outcomes for a wide-variety of image-based HTS experiments.
引用
收藏
页码:231 / 236
页数:6
相关论文
共 50 条
  • [1] A simple image correction method for high-throughput microscopy
    Coster, Adam D.
    Wichaidit, Chonlarat
    Rajaram, Satwik
    Altschuler, Steven J.
    Wu, Lani F.
    NATURE METHODS, 2014, 11 (06) : 602 - 602
  • [2] A simple image correction method for high-throughput microscopy
    Adam D Coster
    Chonlarat Wichaidit
    Satwik Rajaram
    Steven J Altschuler
    Lani F Wu
    Nature Methods, 2014, 11 : 602 - 602
  • [3] High-throughput line-illumination Raman microscopy with multislit detection
    Mochizuki, Kentaro
    Kumamoto, Yasuaki
    Maeda, Shunsuke
    Tanuma, Masato
    Kasai, Atsushi
    Takemura, Masashi
    Harada, Yoshinori
    Hashimoto, Hitoshi
    Tanaka, Hideo
    Smith, Nicholas Isaac
    Fujita, Katsumasa
    BIOMEDICAL OPTICS EXPRESS, 2023, 14 (03) : 1015 - 1026
  • [4] A high-throughput framework to detect synapses in electron microscopy images
    Navlakha, Saket
    Suhan, Joseph
    Barth, Alison L.
    Bar-Joseph, Ziv
    BIOINFORMATICS, 2013, 29 (13) : 9 - 17
  • [5] Flat-field correction for high-throughput fluorescence microscopy
    Chang, Songtao
    Xia, Haojie
    OPTICAL ENGINEERING, 2022, 61 (03)
  • [6] A Simple and Fast Drift Correction Method for High-throughput Microscopy
    Marchesi, Arias
    Casuso, Ignacio
    Scheuring, Simon
    Rico, Felix
    BIOPHYSICAL JOURNAL, 2018, 114 (03) : 385A - 385A
  • [7] Optimized illumination for high-throughput ptychography
    Yao, Yudong
    Deng, Junjing
    Klug, Jeffrey A.
    Jiang, Yi
    Wojcik, Michael
    Nashed, Youssef
    Preissner, Curt
    Roehrig, Christian
    Cai, Zhonghou
    Cossairt, Oliver
    Vogt, Stefan
    Lai, Barry
    X-RAY NANOIMAGING: INSTRUMENTS AND METHODS IV, 2019, 11112
  • [8] High-throughput hyperspectral microscopy
    Gehm, M. E.
    Brady, D. J.
    THREE-DIMENSIONAL AND MULTIDIMENSIONAL MICROSCOPY: IMAGE ACQUISITION AND PROCESSING XIII, 2006, 6090
  • [9] A high-throughput pipeline for validation of antibodies
    Sikorski, Krzysztof
    Mehta, Adi
    Inngjerdingen, Marit
    Thakor, Flourina
    Kling, Simon
    Kalina, Tomas
    Nyman, Tuula A.
    Stensland, Maria Ekman
    Zhou, Wei
    de Souza, Gustavo A.
    Holden, Lars
    Stuchly, Jan
    Templin, Markus
    Lund-Johansen, Fridtjof
    NATURE METHODS, 2018, 15 (11) : 909 - +
  • [10] iTree: a high-throughput phylogenomic pipeline
    Moustafa, Ahmed
    Bhattacharya, Debashish
    Allen, Andrew E.
    2010 5TH CAIRO INTERNATIONAL BIOMEDICAL ENGINEERING CONFERENCE (CIBEC 2010), 2010, : 103 - 107