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Sluimer, L. M.

Publications and source records attributed to Sluimer, L. M..

2 recordsLinked to original sources

Dissection of centrosomal γ-TuRC activation pathways controlling microtubule density in interphase cells

Animal microtubule-organizing centers, including the centrosome and the Golgi apparatus, regulate microtubule nucleation and anchoring through the {gamma}-tubulin ring complex ({gamma}-TuRC) and CAMSAP-mediated minus-end stabilization. However, functional redundancy between these pathways has impeded dissection of their contributions to controlling microtubule organization and density. Here, we addressed this problem using combinatorial gene knockouts, protein depletions and Expansion Microscopy. By simultaneously eliminating CAMSAP2 and the {gamma}-TuRC-targeting proteins AKAP450, pericentrin, CDK5RAP2, myomegalin, ninein and AKNA, we generated viable RPE1 cells that lack both Golgi-derived microtubules and {gamma}-TuRC localization within the pericentriolar material and at subdistal appendages. Despite the disruption of these major microtubule-organizing pathways, overall microtubule density was only partially reduced. The remaining microtubules depended on CEP192 and NEDD1, which, together with ch-TOG, can activate {gamma}-TuRC at the centriole wall, in acentriolar cells, and in biochemical reconstitution assays. Our results demonstrate that in the absence of CAMSAP-mediated stabilization, interphase microtubule formation strongly relies on {gamma}-TuRC activation, which occurs through several redundant pathways.

cell biology↗

SKOR1 mediates FER kinase-dependent invasive growth of breast cancer cells

High expression of the tyrosine kinase FER is an independent prognostic factor that correlates with poor survival in breast cancer patients. To investigate whether the kinase activity is essential for FER oncogenic properties, we developed an ATP analogue-sensitive knock-in allele (FERASKI). Specific FER kinase inhibition in MDA-MD-231 cells reduces migration, invasion, and metastasis in a mouse model of breast cancer. Using the FERASKI system, we identify SKI family transcriptional corepressor 1 (SKOR1) as a direct FER kinase substrate. SKOR1 loss phenocopies FER inhibition, leading to impaired proliferation, migration and invasion, and inhibition of breast cancer growth and metastasis formation in mice. We show that the candidate FER phosphorylation residue, SKOR1-Y234, is essential for FER-dependent tumor progression features. Finally, our work suggests that the SKOR1-Y234 residue promotes Smad2/3 signaling through SKOR1 binding to Smad3 attenuation. Our study thus identifies SKOR1 as a mediator of FER-dependent breast cancer progression, advocating FER kinase inhibition as a candidate strategy to treat high-grade breast cancers. SummaryThe SKI FAMILY TRANSCRIPTIONAL COREPRESSOR 1 (SKOR1) has been mainly associated with neuronal development. Now, Sluimer et al. identify SKOR1 as a new substrate of the oncogenic tyrosine kinase FER, and a driver of TNBC progression.

cancer biology↗