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Kadzik, R. S.

Publications and source records attributed to Kadzik, R. S..

2 recordsLinked to original sources

Rapid actin filament turnover maintains cortical connectivity while allowing for cell cortex deformation and flow

Cells harness the actomyosin contractility of the cell cortex to drive rapid cellular deformations and intracellular flows during cell polarization, migration, and division. To sustain contractile network architectures while allowing for network deformation and remodeling, the balance of actin filament assembly and disassembly must be finely tuned, but how this is coordinated in the cell remains obscure. Here, we combine quantitative measurements and manipulations of filament assembly and disassembly rates with live imaging of network contractility dynamics in the C. elegans zygote to identify co-dependencies between assembly rates, disassembly rates, and large-scale deformations of the cortical actin network. We find that strong reductions in either filament assembly or disassembly rates both result in actin cortex collapse, but each perturbation has distinct effects on actin cortex and cell membrane dynamics. These findings demonstrate that rapid turnover, involving tightly coordinated assembly and disassembly, allows the cortex to maintain a connected architecture while undergoing rapid deformation and coherent flow.

cell biology↗

Capping protein regulates the balance of assembly among diverse actin networks in C. elegans zygotes

Actin cytoskeleton networks exhibit specialized architectural properties for specific cellular tasks, as determined by the actin-binding proteins (ABPs) associated with each network. Proper allocation of a limiting pool of actin monomers also helps shape the assembly of different F-actin networks. The ABP capping protein (CP) modulates F-actin network architecture through regulation of actin filament length by capping filament barbed ends. Using a combination of in vitro biochemistry and quantitative live-cell imaging, we characterize CP as a major regulator of inter-network competition between filopodia and mini-comets, two F-actin networks in the one-cell C. elegans embryo (zygote). We establish that this regulation is facilitated in part by competition for binding barbed ends between CP and the F-actin elongator formin CYK-1. Together, these results reveal a role for CP in determining F-actin network architecture and dynamics, regulating the coordination between actin assembly factors to assemble and maintain different dynamic F-actin networks, and allocation of G-actin between competing cortical F-actin networks. Summary for table of contentsCells assemble diverse actin cytoskeleton networks within a common cytoplasm for essential cellular processes. Yde et al. establish a role for Capping Protein, a regulator of actin filament length, in coordinating the balanced assembly of distinct actin networks in the C. elegans zygote.

cell biology↗