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Trebichalska, Z.

Publications and source records attributed to Trebichalska, Z..

3 recordsLinked to original sources

Cryo-electron tomography of enterovirus cell entry and endosome escape

Enveloped viruses deliver their genomes into the cell cytoplasm by membrane fusion; in contrast, membrane penetration by non-enveloped viruses is more diverse and less well understood. Enteroviruses, one of the largest groups of non-enveloped viruses, cause diseases ranging from the common cold to life-threatening encephalitis. To initiate infection, most enteroviruses enter cells by endocytosis. However, how enterovirus particles or RNA genomes cross the endosome membrane into the cytoplasm remains unknown. Here we used cryo-electron tomography of infected cells to show that endosomes containing rhinovirus 2, echovirus 18, echovirus 30, or enterovirus 71 deform, rupture, and release their content into the cytoplasm. Blocking endosome acidification with bafilomycin A1 reduced the number of enterovirus particles that released their genomes in endosomes, but did not prevent them from reaching the cytoplasm. Inhibiting N-WASP-mediated post-endocytic membrane remodeling with wiskostatin promoted abortive enterovirus genome release in endosomes. We show that the rupture of endosomes also occurs in uninfected cells. In summary, our results indicate that cellular membrane remodeling disrupts enterovirus-containing endosomes and thus releases the virus genomes and particles into the cytoplasm. Since the studied enteroviruses employ different receptors for cell entry but are all delivered into the cytoplasm by cell-mediated endosome disruption, it is possible that many other enteroviruses utilize endosome rupture to infect cells.

microbiology↗

The ultrastructural nature of human oocytes' cytoplasmatic abnormalities and the role of cytoskeleton dysfunction

BackgroundEgg quality is a limiting factor of female fertility and assisted reproductive technology (ART) success. Oocytes recovered from hyperstimulated ovaries often display morphological anomalies suspected to compromise their fertilization and developmental potential. Knowledge of (ab)normal oocytes intracellular organization is vital to establish reliable criteria for morphological evaluation of oocytes intended for in vitro fertilization (IVF). MethodsTransmission electron microscopy (TEM) was used to investigate the fine morphology of 22 dysmorphic IVF eggs exhibiting different types of cytoplasmic irregularities, namely (1) refractile bodies, (2) centrally-located cytoplasmic granularity (CLCG), (3) smooth endoplasmic reticulum (SER) disc, and (4) vacuoles. The cytoskeleton targeting compounds were employed to address the causative mechanism behind the anomalous cytoplasmic architecture observed in abnormal egg samples. A total of 133 immature oocytes were exposed to chemical inhibitors/control conditions, and their morphology was examined by fluorescent and electron microscopy. ResultsTEM exposed the structural basis of the common oocyte aberrations and revealed that the underlying cause of two of the studied morphotypes was excessive organelle clustering. Inhibition experiments showed that disruption of actin, not microtubules, allows inordinate aggregation of subcellular structures resembling the ultrastructural pattern seen in morphologically abnormal eggs retrieved in IVF cycles. These results imply that actin serves as a regulator of organelle distribution during human oocyte maturation. ConclusionsThe ultrastructural analogy between dysmorphic eggs and oocytes, in which actin network integrity was perturbed, suggests that malfunction of the actin cytoskeleton might be implicated in generating common cytoplasmic aberrations. Knowledge of human oocytes inner workings and the origin of morphological abnormalities is a step forward to more objective egg quality assessment in clinical practice.

cell biology↗

High-resolution 3D reconstruction of human oocytes using FIB-SEM.

The oocyte plays a pivotal role in the reproduction of our species. Nevertheless, its biology remains poorly understood. Electron microscopy is traditionally used to inspect the ultrastructure of female gametes. However, two-dimensional micrographs contain only fragmentary information about the spatial organization of the complex oocyte cytoplasm. Here, we employed the Focused Ion Beam Scanning Electron Microscopy (FIB-SEM) to explore human oocyte intracellular morphology in three dimensions (3D). Volume reconstruction from high-resolution image stacks provided an unprecedented view of ooplasmic architecture. Organelle distribution patterns observed in 9 donor oocytes, representing 3 maturational stages, documented structural changes underlying the process by which the egg acquires developmental competence. 3D image segmentation was performed to extract information about distinct organelle populations. The quantitative analysis of the organelle abundance revealed that mitochondrion occupies ~ 4.26 % of the maturing oocyte cytoplasm. This proof-of-concept study demonstrates the potential of FIB-SEM imaging to study human oocyte morphology.

cell biology↗