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Biology subjects

Lederer, L.

Publications and source records attributed to Lederer, L..

2 recordsLinked to original sources

Spatio-temporal visualisation and manipulation of endogenous Yap1 in medaka

A key requirement to address fundamental questions in developmental biology is the ability to visualise and manipulate endogenous signalling proteins in vivo. Here we generate such an enabling experimental tool for the highly conserved Hippo pathway and its transcriptional effector Yap1, which converts mechanical and chemical cues into transcriptional output during embryogenesis and regeneration. We generate and characterise a Yap1- mGreenLantern (Yap1-mGL) endogenous CRISPR/Cas9-mediated knock-in line that enables 4D analysis of Yap1 dynamics in medaka. We resolve Yap1- mGL expression and nuclear/cytoplasmic localisation in real time, revealing the onset of reporter fluorescence before gastrulation, tissue and cell-type specific Yap1-mGL localisation during somitogenesis and injury-induced Yap1 upregulation during larval spinal cord regeneration. Using the nanobody-based degron system, we degrade the Yap1 protein in vivo, recapitulating the genetic loss-of-function mutant phenotype. Combining endogenous tags with nanobody-based degrons offers a powerful approach to visualise and acutely perturb endogenous protein function in vivo.

developmental biology↗

Cell shape anisotropy enhances cytoplasm viscoelastic resistance to stabilize mitotic spindle position during early embryo development

Cell geometry is a key parameter for the regulation of mitotic spindle positioning during early embryo development and tissue morphogenesis. To date, however, we still lack an understanding for how intracellular forces that position, orient or hold mitotic spindles depend on cell geometry. Here, we used in vivo magnetic tweezers to directly measure the forces that maintain the mitotic spindle in the center of sea urchin cells that adopt different shapes during early embryo development. We found that spindles are held by viscoelastic forces that progressively increase in amplitude as cells become more elongated during early development. By coupling direct cell shape manipulations and in vivo force measurements, we establish how spindle associated forces increase in dose dependence with cell shape anisotropy. Cytoplasm flow analysis and hydrodynamic simulations suggest that this geometry-dependent mechanical enhancement results from a stronger hydrodynamic coupling between the spindle and cell boundaries, which dampens cytoplasm flows and spindle mobility as cells become more elongated. These findings establish how cell shape affects spindle associated forces, and suggest a novel mechanism for shape-sensing and division positioning mediated by intracellular hydrodynamics with functional implications for early embryo morphogenesis.

cell biology↗