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Sipkova, J.

Publications and source records attributed to Sipkova, J..

2 recordsLinked to original sources

Characterization of cellular wound resistance in the giant ciliate Stentor coeruleus

Resistance to mechanical stress is essential for cells to prevent wounding and maintain structural integrity. This capability is especially critical for free-living single-celled organisms, which routinely encounter mechanical stress from their natural habitats. We investigated Stentor coeruleus, a single-celled ciliate known for its remarkable wound repair capacity, as a model for studying mechanical wound resistance. While previous work focused on wound repair in Stentor, the structures that enable it to resist wounding remain poorly understood. We characterized how Stentor resisted mechanical stress during transit through a microfluidic constriction. Using high- speed imaging, we tracked the transit dynamics of the cells and linked them to wounding outcomes. Larger cells experienced longer transit times in the constriction and were more prone to rupture, often failing to recover shape due to membrane rupture and loss of cytoplasm. To elucidate the role of the Stentor cytoskeleton, we performed drug-mediated disruption of KM fibers, which are microtubule bundles in the Stentor cytoskeleton. Drug-treated cells exhibited an increased likelihood of membrane rupture at the constriction, implicating KM fibers in wound resistance. To investigate the resistance of Stentor cells to hydrodynamic stress, we injected the cells at increasing flow rates through the constriction. Interestingly, cells were more resistant to larger hydrodynamic stresses up to a threshold, potentially due to shear-thinning of the cytoplasm. Together, these results suggest that Stentor relies on both cytoskeletal architecture and cytoplasmic rheology to withstand mechanical stress, offering insights into cellular strategies for wound resistance in the absence of rigid extracellular structures.

cell biology↗

Eph/ephrin signalling in the developing brain is regulated by tissue stiffness

Eph receptors and their membrane-bound ligands, ephrins, provide key signals in many biological processes, such as cell proliferation, cell motility and cell sorting at tissue boundaries. However, despite immense progress in our understanding of Eph/ephrin signalling, there are still discrepancies between in vitro and in vivo work, and the regulation of Eph/ephrin signalling remains incompletely understood. Since a major difference between in vivo and most in vitro experiments is the stiffness of the cellular environment, we here investigated the interplay between tissue mechanics and Eph/ephrin signalling using the Xenopus laevis optic pathway as a model system. Xenopus retinal neurons cultured on soft substrates mechanically resembling brain tissue showed the opposite response to ephrinB1 compared to those cultured on glass. In vivo atomic force microscopy (AFM)-based stiffness mapping revealed that the visual area of the Xenopus brain, the optic tectum, becomes mechanically heterogeneous during its innervation by axons of retinal neurons. The resulting stiffness gradient correlated with both a cell density gradient and expression patterns of EphB and ephrinB family members. Exposing ex vivo brains to stiffer matrices or locally stiffening the optic tectum in vivo led to an increase in EphB2 expression in the optic tectum, indicating that tissue mechanics is an important regulator of Eph/ephrin signalling. Similar mechanisms are likely to be involved in the development and diseases of many other organ systems.

developmental biology↗