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Biology subjects

Butts, S. M.

Publications and source records attributed to Butts, S. M..

2 recordsLinked to original sources

Septin crosstalk with microtubules and actin is regulated by a GSK3-dependent phosphoswitch

Septins are cytoskeletal filaments that associate with the actin and microtubule cytoskeleton, but the mechanisms that govern septin crosstalk and function with these networks are largely unknown. Here, we show that glycogen synthase kinase 3 (GSK3) directly phosphorylates septin-9 (SEPT9), acting as a molecular switch that bidirectionally controls septin distribution between actin and microtubules. We show that GSK3 inhibition redistributes endogenous SEPT9 toward microtubules in multiple cell types. Phosphomimetic mutations at serines 82 and 85 reduce microtubule binding and enhance actin association in cells and in vitro, while phosphonull mutations promote microtubule binding and growth. In primary hippocampal neurons, GSK3{beta} inactivation promotes SEPT9-microtubule association, and phosphomimetic mutations impair asymmetric neurite growth during neuronal polarization. These findings reveal a phosphorylation-dependent mechanism of septin partitioning between actin and microtubules, placing the cytoskeletal functions of septins under the control of GSK3 - a kinase linked to multiple signaling pathways of cell physiology and metabolism. HighlightsO_LIGSK3{beta} phosphorylates SEPT9, and its activity gates septin-cytoskeleton association C_LIO_LIS82/S85 phosphorylation reduce microtubule binding and increase actin localization C_LIO_LIUnphosphorylated SEPT9 binds preferentially to microtubules, promoting their growth C_LIO_LIGSK3{beta} inactivation drives SEPT9 to microtubules to establish neuronal polarity C_LI

cell biology↗

Septins buffer actomyosin forces to protect the nucleus from genotoxic mechanical stress

Invasively migrating cells thread their nucleus through confined interstitial spaces. How cells protect the nucleus from intracellular forces is poorly understood. Here, we show that the septin cytoskeleton buffers the actomyosin forces that power nuclear movement. Septin filaments comprising SEPT9, a septin amplified in breast cancer, align with perinuclear actomyosin cables which exhibit higher tensile stress during 3D confined migration through narrower pores. SEPT9 depletion amplifies actin stress during confined migration and after myosin II hyper-activation in non-migrating cells causing actin and nuclear envelope ruptures. Following confined migration, DNA breaks, nuclear blebs, micronuclei and cell death increase in SEPT9-depleted cells, phenotypes rescued by the oncogenic SEPT9 isoform 1. Clinicogenomic data reveal that SEPT9 amplification associates with lower genomic alteration in aggressive breast tumors and higher patient mortality. We propose that septins are a mechanoprotective element of the cytoskeleton, and SEPT9 amplification enhances tumor cell survival by preventing nuclear damage.

cell biology↗