Literature DB >> 35319463

Bayesian machine learning analysis of single-molecule fluorescence colocalization images.

Yerdos A Ordabayev1, Larry J Friedman1, Jeff Gelles1, Douglas L Theobald1.   

Abstract

Multi-wavelength single-molecule fluorescence colocalization (CoSMoS) methods allow elucidation of complex biochemical reaction mechanisms. However, analysis of CoSMoS data is intrinsically challenging because of low image signal-to-noise ratios, non-specific surface binding of the fluorescent molecules, and analysis methods that require subjective inputs to achieve accurate results. Here, we use Bayesian probabilistic programming to implement Tapqir, an unsupervised machine learning method that incorporates a holistic, physics-based causal model of CoSMoS data. This method accounts for uncertainties in image analysis due to photon and camera noise, optical non-uniformities, non-specific binding, and spot detection. Rather than merely producing a binary 'spot/no spot' classification of unspecified reliability, Tapqir objectively assigns spot classification probabilities that allow accurate downstream analysis of molecular dynamics, thermodynamics, and kinetics. We both quantitatively validate Tapqir performance against simulated CoSMoS image data with known properties and also demonstrate that it implements fully objective, automated analysis of experiment-derived data sets with a wide range of signal, noise, and non-specific binding characteristics.
© 2022, Ordabayev et al.

Entities:  

Keywords:  CoSMoS; TIRF; Tapqir; biochemistry; chemical biology; fluorescence microscopy; molecular biophysics; none; probablistic programming; pyro; structural biology

Mesh:

Year:  2022        PMID: 35319463      PMCID: PMC9183235          DOI: 10.7554/eLife.73860

Source DB:  PubMed          Journal:  Elife        ISSN: 2050-084X            Impact factor:   8.713


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  1 in total

1.  Bayesian machine learning analysis of single-molecule fluorescence colocalization images.

Authors:  Yerdos A Ordabayev; Larry J Friedman; Jeff Gelles; Douglas L Theobald
Journal:  Elife       Date:  2022-03-23       Impact factor: 8.713

  1 in total

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