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Biology subjects

Wubshet, N. H.

Publications and source records attributed to Wubshet, N. H..

2 recordsLinked to original sources

Cellular mechanotransduction of human osteoblasts in microgravity

Astronauts experience significant and rapid bone loss as a result of an extended stay in space, making the International Space Station (ISS) the perfect laboratory for studying osteoporosis due to the accelerated nature of bone loss on the ISS. This prompts the question, how does the lack of load due to zero-gravity propagate to bone-forming cells, human fetal osteoblasts (hFOBs), altering their maturation to mineralization? Here, we aim to study the mechanotransduction mechanisms by which bone loss occurs in microgravity. Two automated experiments, 4 microfluidic chips capable of measuring single-cell mechanics of hFOBs via aspiration and cell spheroids incubated in pressure-controlled chambers, were each integrated into a CubeLab deployed to the ISS National Laboratory. For the first experiment, we report protrusion measurements of aspirated cells after exposure to microgravity at the ISS and compare these results to ground control conducted inside the CubeLab. Our analysis revealed slightly elongated protrusions for space samples compared to ground samples indicating softening of hFOB cells in microgravity. In the second experiment, we encapsulated osteoblast spheroids in collagen gel and incubated the samples in pressure-controlled chambers. We found that microgravity significantly reduced filamentous actin levels in the hFOB spheroids. When subjected to pressure, the spheroids exhibited increased pSMAD1/5/9 expression, regardless of the microgravity condition. Moreover, microgravity reduced YAP expression, while pressure increased YAP levels, thus restoring YAP expression for spheroids in microgravity. Our study provides insights into the influence of microgravity on the mechanical properties of bone cells and the impact of compressive pressure on cell behavior and signaling in space.

cell biology↗

Differential regulation of GUV mechanics via actin network architectures

Actin networks polymerize and depolymerize to construct highly organized structures, thereby, endowing the mechanical phenotypes found in a cell. It is generally believed that the amount of filamentous actin and actin network architecture determine cytoplasmic viscosity and elasticity of the whole cell. However, the intrinsic complexity of a cell and numerous other endogenous cellular components make it difficult to study the differential role of distinct actin networks in regulating cell mechanics. Here, we model a cell by using giant unilamellar vesicles (GUVs) encapsulating actin filaments and networks assembled by various actin crosslinker proteins. Perturbation of these cytoskeletal vesicles using AC electric fields revealed that deformability depends on lumenal viscosity and actin network architecture. While actin-free vesicles exhibited large electromechanical deformations, deformations of GUVs encapsulating actin filaments were significantly dampened. The suppression of electrodeformation of actin-GUVs can be similarly recapitulated by using aqueous PEG 8000 solutions at different concentrations to modulate viscosity. Furthermore, alpha actinin-crosslinked actin networks resulted in decreased GUV deformability in comparison to actin filament-encapsulating GUVs, and membrane-associated actin networks through the formation of dendritic actin cortex greatly dampened electrodeformation of GUVs. These results highlight the organization of actin networks regulates the mechanics of GUVs and shed insights into the origin of differential deformability of cells.

biophysics↗