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Arnaiz, C.

Publications and source records attributed to Arnaiz, C..

2 recordsLinked to original sources

Mitotic Spindle Positioning (MISP) is an actin bundler that selectively stabilizes the rootlets of epithelial microvilli

Microvilli are conserved actin-based surface protrusions that have been repurposed throughout evolution to fulfill diverse cell functions. In the case of transporting epithelia, microvilli are supported by a core of actin filaments bundled in parallel by villin, fimbrin, and espin. Remarkably, microvilli biogenesis persists in mice lacking all three of these factors, suggesting the existence of unknown bundlers. We identified Mitotic Spindle Positioning (MISP) as an actin binding factor that localizes specifically to the rootlet end of the microvillus. MISP promotes rootlet elongation in cells, and purified MISP exhibits potent filament bundling activity in vitro. MISP-bundled filaments also recruit fimbrin, which further elongates and stabilizes bundles. MISP confinement to the rootlet is enforced by ezrin, which prevents decoration of the membrane-wrapped distal end of the core bundle. These discoveries reveal how epithelial cells optimize apical membrane surface area and offer insight on the remarkable robustness of microvilli biogenesis.

cell biology

SSNA1 stabilizes dynamic microtubules and detects microtubule damage

Sjogrens Syndrome Nuclear Autoantigen 1 (SSNA1/NA14) is a microtubule-associated protein with important functions in cilia, dividing cells and developing neurons. However, the direct effects of SSNA1 on microtubules are not known. We employed in vitro reconstitution with purified proteins and TIRF microscopy to investigate the activity of human SSNA1 on dynamic microtubule ends and lattices. We find that SSNA1 modulates all parameters of microtubule dynamic instability - slowing down the rates of growth, shrinkage and catastrophe, and promoting rescue. SSNA1 accumulation on dynamic microtubule ends correlates with the growth rate slow-down. Furthermore, SSNA1 prevents catastrophe when soluble tubulin is removed or sequestered by Op18/Stathmin. Finally, SSNA1 detects spastin-induced damage and inhibits spastins severing activity. Therefore, SSNA1 is both a potent microtubule stabilizing protein and a sensor of microtubule damage; activities that likely underlie SSNA1s cellular functions.

biophysics