Optimization of sample preparation and green color imaging using the mNeonGreen fluorescent protein in bacterial cells for photoactivated localization microscopy

mNeonGreen fluorescent protein is capable of photo-switching, hence in principle applicable for super-resolution imaging. However, difficult-to-control blinking kinetics that lead to simultaneous emission of multiple nearby mNeonGreen molecules impedes its use for PALM. Here, we determined the on- a...

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Veröffentlicht in:Scientific reports 2018-07, Vol.8 (1), p.10137-11, Article 10137
Hauptverfasser: Stockmar, Iris, Feddersen, Helge, Cramer, Kimberly, Gruber, Stephan, Jung, Kirsten, Bramkamp, Marc, Shin, Jae Yen
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container_issue 1
container_start_page 10137
container_title Scientific reports
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creator Stockmar, Iris
Feddersen, Helge
Cramer, Kimberly
Gruber, Stephan
Jung, Kirsten
Bramkamp, Marc
Shin, Jae Yen
description mNeonGreen fluorescent protein is capable of photo-switching, hence in principle applicable for super-resolution imaging. However, difficult-to-control blinking kinetics that lead to simultaneous emission of multiple nearby mNeonGreen molecules impedes its use for PALM. Here, we determined the on- and off- switching rate and the influence of illumination power on the simultaneous emission. Increasing illumination power reduces the probability of simultaneous emission, but not enough to generate high quality PALM images. Therefore, we introduce a simple data post-processing step that uses temporal and spatial information of molecule localizations to further reduce artifacts arising from simultaneous emission of nearby emitters. We also systematically evaluated various sample preparation steps to establish an optimized protocol to preserve cellular morphology and fluorescence signal. In summary, we propose a workflow for super-resolution imaging with mNeonGreen based on optimization of sample preparation, data acquisition and simple post-acquisition data processing. Application of our protocol enabled us to resolve the expected double band of bacterial cell division protein DivIVA, and to visualize that the chromosome organization protein ParB organized into sub-clusters instead of the typically observed diffraction-limited foci. We expect that our workflow allows a broad use of mNeonGreen for super-resolution microscopy, which is so far difficult to achieve.
doi_str_mv 10.1038/s41598-018-28472-0
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subjects 14
14/35
14/63
631/1647/328
631/57
Cell division
Data acquisition
Data processing
Emissions
Humanities and Social Sciences
Illumination
Information processing
Localization
Microscopy
multidisciplinary
Proteins
Sample preparation
Science
Science (multidisciplinary)
title Optimization of sample preparation and green color imaging using the mNeonGreen fluorescent protein in bacterial cells for photoactivated localization microscopy
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