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Wulffele, J.

Publications and source records attributed to Wulffele, J..

3 recordsLinked to original sources

Stress-induced nucleoid remodeling in Deinococcus radiodurans is associated with major changes in HU abundance and dynamics

Bacteria have developed a wide range of strategies to respond to stress, one of which is the rapid large-scale reorganization of their nucleoid, which is often associated with a major reprogramming of the gene expression profile. Nucleoid associated proteins (NAPs) are believed to be major actors in this process, but the molecular mechanisms underlying stress-induced nucleoid remodeling remain poorly understood. Here, using the radiation resistant bacterium, D. radiodurans, as a model, and advanced fluorescence microscopy approaches, we examined the changes in nucleoid morphology and compaction induced by either entry into stationary phase or exposure to UV-C light, and characterized the associated changes in abundance and dynamics of the major NAP in D. radiodurans, the heat-unstable (HU) protein. While both types of stress induced a similar macroscopic rearrangement of the nucleoid into a more compact structure, HU diffusion was significantly reduced in stationary phase cells, but was instead dramatically increased following exposure to UV-C, suggesting that the underlying mechanisms of remodeling are distinct. Furthermore, a detailed comparison of the cellular response to sublethal and lethal doses of UV-C light revealed that UV-induced nucleoid remodeling involves a rapid nucleoid condensation step associated with increased HU diffusion and abundance, followed by a slower decompaction phase to restore normal nucleoid morphology and HU dynamics, before cell growth and division can resume. Together, these findings shed light on the diversity and complexity of stressed-induced nucleoid remodeling processes in bacteria.

microbiology↗

Photophysical studies at cryogenic temperature reveal a novel photoswitching mechanism of rsEGFP2

Single-molecule-localization-microscopy (SMLM) at cryogenic temperature opens new avenues to investigate intact biological samples at the nanoscale and perform cryo-correlative studies. Genetically encoded fluorescent proteins (FPs) are markers of choice for cryo-SMLM, but their reduced conformational flexibility below the glass transition temperature hampers efficient photoswitching at low temperature. We investigated cryo-switching of rsEGFP2, one of the most efficient reversibly switchable fluorescent protein at ambient temperature due to facile cis-trans isomerization of the chromophore. UV-visible microspectrophotometry and X-ray crystallography revealed a completely different switching mechanism at [~]110 K. At this cryogenic temperature, on-off photoswitching involves the formation of 2 dark states with blue shifted absorption relative to that of the trans protonated chromophore populated at ambient temperature. Only one of these dark states can be switched back to the fluorescent state by 405 nm light, while both of them are sensitive to UV light at 355 nm. The rsEGFP2 photoswitching mechanism discovered in this work adds to the panoply of known switching mechanisms in fluorescent proteins. It suggests that employing 355 nm light in cryo-SMLM experiments using rsEGFP2 or possibly other FPs could improve the achievable effective labeling efficiency in this technique. Table of Contents artwork O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=113 SRC="FIGDIR/small/504779v1_ufig1.gif" ALT="Figure 1"> View larger version (76K): org.highwire.dtl.DTLVardef@1d5ed02org.highwire.dtl.DTLVardef@1bb2359org.highwire.dtl.DTLVardef@10dc6b1org.highwire.dtl.DTLVardef@16fcd94_HPS_FORMAT_FIGEXP M_FIG C_FIG

biophysics↗

mEos4b photoconversion efficiency depends on laser illumination conditions used in PALM

Green-to-red photoconvertible fluorescent proteins (PCFPs) are widely employed as markers in photoactivated localization microscopy (PALM). However, their highly complex photophysical behavior complicates their usage. The fact that only a limited fraction of a PCFP ensemble can form the photoconverted state upon near-UV light illumination, termed photoconversion efficiency (PCE), lowers the achievable spatial resolution in PALM and creates undercounting errors in quantitative counting applications. Here, we show that the PCE of mEos4b is not a fixed property of this PCFP, but strongly depends on illumination conditions. Attempts to reduce long-lived blinking in red mEos4b by application of 488 nm light leads to a reduction of the PCE. Furthermore, the PCE of mEos4b strongly depends on the applied 405-nm power density. A refined photophysical model of mEos4b accounts for the observed effects, involving nonlinear green-state photobleaching upon violet light illumination favored by photon absorption by a putative radical dark state. TOC GRAPHICS O_FIG_DISPLAY_L [Figure 1] M_FIG_DISPLAY C_FIG_DISPLAY

biophysics↗