Jacquemet Guillaume, Paatero Ilkka, Carisey Alexandre F, Padzik Artur, Orange Jordan S, Hamidi Hellyeh, Ivaska Johanna
Turku Centre for Biotechnology, University of Turku and Åbo Akademi University, Turku, Finland
Turku Centre for Biotechnology, University of Turku and Åbo Akademi University, Turku, Finland.
J Cell Biol. 2017 Oct 2;216(10):3387-3403. doi: 10.1083/jcb.201704045. Epub 2017 Aug 1.
Defective filopodia formation is linked to pathologies such as cancer, wherein actively protruding filopodia, at the invasive front, accompany cancer cell dissemination. Despite wide biological significance, delineating filopodia function in complex systems remains challenging and is particularly hindered by lack of compatible methods to quantify filopodia properties. Here, we present FiloQuant, a freely available ImageJ plugin, to detect filopodia-like protrusions in both fixed- and live-cell microscopy data. We demonstrate that FiloQuant can extract quantifiable information, including protrusion dynamics, density, and length, from multiple cell types and in a range of microenvironments. In cellular models of breast ductal carcinoma in situ, we reveal a link between filopodia formation at the cell-matrix interface, in collectively invading cells and 3D tumor spheroids, and the in vitro invasive capacity of the carcinoma. Finally, using intravital microscopy, we observe that tumor spheroids display filopodia in vivo, supporting a potential role for these protrusions during tumorigenesis.
丝状伪足形成缺陷与癌症等病理状况相关,在癌症中,侵袭前沿的活跃伸出的丝状伪足伴随着癌细胞的扩散。尽管具有广泛的生物学意义,但在复杂系统中描绘丝状伪足的功能仍然具有挑战性,并且由于缺乏量化丝状伪足特性的兼容方法而尤其受到阻碍。在这里,我们展示了FiloQuant,这是一个免费的ImageJ插件,用于检测固定细胞和活细胞显微镜数据中的丝状伪足样突起。我们证明,FiloQuant可以从多种细胞类型和一系列微环境中提取可量化的信息,包括突起动力学、密度和长度。在原位乳腺导管癌的细胞模型中,我们揭示了在集体侵袭的细胞和三维肿瘤球体中,细胞-基质界面处的丝状伪足形成与癌的体外侵袭能力之间的联系。最后,利用活体显微镜,我们观察到肿瘤球体在体内显示丝状伪足,支持这些突起在肿瘤发生过程中的潜在作用。