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Hubner, W.

Publications and source records attributed to Hubner, W..

3 recordsLinked to original sources

Offsetting ROS-mediated arrest of endothelial fenestration dynamics permits long-term optical super-resolution- and AFM-imaging

Advances in cell biology demand methods that resolve the structure and dynamics of subcellular organelles in living cells. Live-cell super-resolution fluorescence microscopy meets this need but is constrained by phototoxicity, which disturbs cellular function and biases interpretation. Liver sinusoidal endothelial cells (LSECs), with their physiologically critical and highly dynamic fenestrations, represent a particularly challenging model system. We show that photoactivation-generated reactive oxygen species (ROS) are the primary cause of fenestration arrest during fluorescence imaging. Using three-dimensional structured illumination microscopy (3D SR-SIM), we systematically evaluated fluorophores and ROS scavengers to optimize imaging conditions. A combination of BioTracker staining and CO2-independent medium supplemented with N-acetylcysteine (NAC) preserved fenestration dynamics without altering fenestration number or size. Complementary atomic force microscopy (AFM) confirmed ROS-dependent impairment of fenestration dynamics and revealed nanomechanical changes upon illumination. These findings establish the mechanism underlying imaging-induced artefacts in LSECs and provide a broadly applicable strategy to extend live-cell super-resolution microscopy.

cell biology↗

Hydrogen peroxide damage to scavenging function and ultrastructure of liver sinusoidal endothelial cells is prevented by n-acetyl-cysteine but not GSH

Reactive oxygen species (ROS) are prevalent in the liver during intoxication, infection, inflammation, and ageing. Changes in liver sinusoidal endothelial cells (LSECs) are associated with various liver diseases. We investigated how oxidative stress induced by H2O2 affects isolated rat LSECs at different concentrations (0.5-1000{micro}M) and exposure times (10-120 min). Our findings show that H2O2 exposure affects several LSEC functions in a dose- and time-dependent manner: (1) cell viability, reducing potential, and scavenging function decreased as H2O2 concentration and exposure time increased; (2) intracellular ROS levels rose with higher H2O2 concentrations; (3) fenestrations exhibited a dynamic response, initially closing but partially reopening at H2O2 concentrations above 100{micro}M after about 1 h; (4) scavenging function was affected after just 10 min of exposure, with the impact being irreversible and primarily affecting degradation rather than receptor-mediated uptake; (5) the tubulin network was disrupted in high H2O2 concentration while the actin cytoskeleton appears to remain largely intact. Finally, we found that reducing agents and thiol donors such as N-Acetyl Cysteine (NAC) and Glutathione (GSH) could protect cells from ROS-induced damage but could not reverse existing damage. Pretreatment with NAC, but not GSH, reduced the negative effects of ROS exposure suggesting that LSEC does not store an excess amount of GSH but rather can readily produce it in the occurrence of oxidative stress conditions. The observed thresholds in dose and time-dependent changes as well as the treatments with NAC/GSH confirm the existence of ROS depleting system in LSEC. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=113 SRC="FIGDIR/small/609175v1_ufig1.gif" ALT="Figure 1"> View larger version (28K): org.highwire.dtl.DTLVardef@1f25779org.highwire.dtl.DTLVardef@14cda58org.highwire.dtl.DTLVardef@92dea4org.highwire.dtl.DTLVardef@56e97c_HPS_FORMAT_FIGEXP M_FIG C_FIG HighlightsO_LIROS by H2O2 irreversibly depletes LSEC endocytic/scavenging function in vitro C_LIO_LIH2O2 exposure causes dynamic, dose-dependent defenestration of LSEC within 0.5 h C_LIO_LIPartial refenestration can occur after about 1h of exposure to H2O2 C_LIO_LINAC/GSH mitigate H2O2-induced ROS effects in LSEC C_LIO_LILSEC do not store excess GSH but produce GSH when exposed to oxidative stress C_LI

cell biology↗

Intercellular Mitochondrial Transfer as a Rescue Mechanism in Response to Protein Import Failure

Mitochondria are the powerhouses of eukaryotic cells, composed mostly of nuclear-encoded proteins imported from the cytosol. Thus, problems with the import machinery will disrupt their regenerative capacity and the cells energy (ATP) supplies-particularly troublesome for energy demanding cells like neurons and myocytes. Unsurprisingly then, dysfunctional import is implicated in disease. This study explores the consequences of import failure in mammalian cells; wherein, blocking the import machinery has profound effects on mitochondrial ultra-structure and dynamics, but, surprisingly, does not impact import. The explanation is an astonishing response involving intercellular mitochondrial transfer via tunnelling nanotubes: for the import of healthy mitochondria and jettisoning of those with jammed import sites. These observations support the existence of a widespread mechanism for the rescue of mitochondrial protein import failure. One-Sentence SummaryA mitochondrial import rescue mechanism involving intercellular mitochondrial transport through tunneling nanotubes (TNTs).

cell biology↗