CCT8 associates with the MYO10 motor domain and regulates filopodia and breast cancer cell invasion

Cancer cells utilize filopodia to explore, adhere to, and invade their surrounding microenvironment, yet the protein networks that organize these protrusions remain incompletely defined. To uncover the molecular machinery underlying MYO10-positive filopodia, we targeted the fast biotin ligase TurboID to the motor protein MYO10. Proximity biotinylation in two cell types revealed hundreds of potential MYO10 interactors. A targeted microscopy and siRNA screen identified MINK1, SCRIB, CSNK1A1, and CCT8 as new regulators of MYO10 filopodia formation. Focusing on one of the common interactors between cell lines, CCT8, known as a subunit of the chaperonin TRiC (TCP1 Ring Complex), we found that CCT8 associates with the MYO10 motor domain and regulates MYO10 filopodia independently of TRiC. Depleting CCT8 affected filopodia dynamics and impaired cell spreading, migration, and invasion in breast cancer cells. These findings establish CCT8 as a TRiC-independent regulator of MYO10 filopodia across diverse cancer cell types.

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Publication Details

Journal
Journal of Cell Science
Published
2026-09-01
DOI
https://doi.org/10.1242/jcs.265278
Primary Topic
Cellular Mechanics and Interactions
Type
article
Field-Weighted Citation Impact
0.00
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article

CCT8 associates with the MYO10 motor domain and regulates filopodia and breast cancer cell invasion

Guillaume Jacquemet, Joanna W. Pylvänäinen, Neil J. Ball, Johanna Ivaska et al.
Journal of Cell Science
Cellular Mechanics and Interactions
article

CCT8 associates with the MYO10 motor domain and regulates filopodia and breast cancer cell invasion

Guillaume Jacquemet, Joanna W. Pylvänäinen, Neil J. Ball, Johanna Ivaska, Michal Dibus, Marjaana Ojalill, Omkar Joshi, Mitro Miihkinen, Christine Touma, Ana Popović, Benjamin T. Goult
article en

Abstract

Cancer cells utilize filopodia to explore, adhere to, and invade their surrounding microenvironment, yet the protein networks that organize these protrusions remain incompletely defined. To uncover the molecular machinery underlying MYO10-positive filopodia, we targeted the fast biotin ligase TurboID to the motor protein MYO10. Proximity biotinylation in two cell types revealed hundreds of potential MYO10 interactors. A targeted microscopy and siRNA screen identified MINK1, SCRIB, CSNK1A1, and CCT8 as new regulators of MYO10 filopodia formation. Focusing on one of the common interactors between cell lines, CCT8, known as a subunit of the chaperonin TRiC (TCP1 Ring Complex), we found that CCT8 associates with the MYO10 motor domain and regulates MYO10 filopodia independently of TRiC. Depleting CCT8 affected filopodia dynamics and impaired cell spreading, migration, and invasion in breast cancer cells. These findings establish CCT8 as a TRiC-independent regulator of MYO10 filopodia across diverse cancer cell types.

Journal of Cell Science
Åbo Akademi University (FI), University of Helsinki (FI), University of Liverpool (GB), University of Turku (FI), Turku Centre for Computer Science (FI), Finnish Cancer Registry (FI), Institute for Molecular Medicine Finland (FI), Turku Centre for Biotechnology (FI)
Good health and well-being
Openalex Percentile: Top 14%
Cellular Mechanics and Interactions
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