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Osterfield, M.

Publications and source records attributed to Osterfield, M..

2 recordsLinked to original sources

Alternating polarity integrates chemical and mechanical cues to drive tissue morphogenesis

The spatial patterning of molecules within a sheet of cells directs morphogenesis in many epithelial tissues. In Scaptodrosophila follicle cells, Par3/Bazooka and aPKC were previously shown to localize to a set of cell edges destined to elongate and form the base of each eggshell dorsal appendage. This study establishes that the mechanism underlying this localization pattern is an alternating, in-plane polarity of the cells. A candidate screen identified several potential molecular players, whose epistatic relationships were then examined using a custom culture assay. These experiments demonstrated that positive feedback between actin polymerization and PI4P production leads to polarization of these cells individually, while mechanical force coordinates polarization among these cells. This work adds to the growing evidence for a role of mechanics in cell polarity, and also provides an example where morphological differences between species can be understood at the level of changes in fundamental cell biological processes. SummaryIn Scaptodrosophila, the alternating (left, right, left) polarization in a row of cells drives the formation of up to eight eggshell respiratory filaments. This study uncovers the underlying pathway, which integrates chemical signaling through actin and PI4P with mechanical force.

developmental biology↗

Tissue recoil in the early Drosophila embryo is a passive not active process

Understanding tissue morphogenesis is impossible without knowing the mechanical properties of the tissue being shaped. Although techniques for measuring tissue material properties are continually being developed, methods for determining how individual proteins contribute to mechanical properties are very limited. Here, we developed two complementary techniques for the acute inactivation of sqh (the Drosophila myosin regulatory light chain), one based on the recently introduced AID2 system, and the other based on a novel method for conditional protein aggregation. Combining these techniques with rheological measurements, we show that passive material properties of the cellularization-stage Drosophila embryo are essentially unaffected by myosin activity. The significance of this study is two-fold. We introduce a system for the nearly instantaneous inactivation of proteins in a variety of systems. Additionally, we demonstrate a method to distinguish between active and passive contributions to effective tissue elasticity. SummaryTechniques to examine the contribution of specific proteins to tissue mechanical properties are extremely limited. Here, Goldner et al. develop two complementary techniques for rapid protein depletion combined with mechanical measurements, and show that myosin activity is dispensable for tissue elasticity.

cell biology↗