A Trio–Rac1–Pak1 signalling axis drives invadopodia disassembly

被引:0
|
作者
Yasmin Moshfegh
Jose Javier Bravo-Cordero
Veronika Miskolci
John Condeelis
Louis Hodgson
机构
[1] Gruss-Lipper Biophotonics Center,Department of Anatomy and Structural Biology
[2] Albert Einstein College of Medicine of Yeshiva University,undefined
来源
Nature Cell Biology | 2014年 / 16卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Rho family GTPases control cell migration and participate in the regulation of cancer metastasis. Invadopodia, associated with invasive tumour cells, are crucial for cellular invasion and metastasis. To study Rac1 GTPase in invadopodia dynamics, we developed a genetically encoded, single-chain Rac1 fluorescence resonance energy (FRET) transfer biosensor. The biosensor shows Rac1 activity exclusion from the core of invadopodia, and higher activity when invadopodia disappear, suggesting that reduced Rac1 activity is necessary for their stability, and Rac1 activation is involved in disassembly. Photoactivating Rac1 at invadopodia confirmed this previously unknown Rac1 function. We describe here an invadopodia disassembly model, where a signalling axis involving TrioGEF, Rac1, Pak1, and phosphorylation of cortactin, causes invadopodia dissolution. This mechanism is critical for the proper turnover of invasive structures during tumour cell invasion, where a balance of proteolytic activity and locomotory protrusions must be carefully coordinated to achieve a maximally invasive phenotype.
引用
收藏
页码:571 / 583
页数:12
相关论文
共 50 条
  • [41] Functional role of Pak1/Erk signaling in Rac1-related diseases
    Araiza-Olivera, Daniela
    Chernoff, Jonathan
    CANCER RESEARCH, 2016, 76
  • [42] Effect of PAK Inhibition on Cell Mechanics Depends on Rac1
    Mierke, Claudia Tanja
    Puder, Stefanie
    Aermes, Christian
    Fischer, Tony
    Kunschmann, Tom
    FRONTIERS IN CELL AND DEVELOPMENTAL BIOLOGY, 2020, 8
  • [43] Transient Mechanical Strain Promotes the Maturation of Invadopodia through PAK1 Signaling.
    Gasparski, A. N.
    Wilson, J.
    Beningo, K. A.
    MOLECULAR BIOLOGY OF THE CELL, 2017, 28
  • [44] Targeting PAK1
    Semenova, Galina
    Chernoff, Jonathan
    BIOCHEMICAL SOCIETY TRANSACTIONS, 2017, 45 : 79 - 88
  • [45] PAK1, PAK1Δ15, and PAK2: similarities, differences and mutual interactions
    Grebenova, Dana
    Holoubek, Ales
    Roselova, Pavla
    Obr, Adam
    Brodska, Barbora
    Kuzelova, Katerina
    SCIENTIFIC REPORTS, 2019, 9 (1)
  • [46] PAK1, PAK1Δ15, and PAK2: similarities, differences and mutual interactions
    Dana Grebeňová
    Aleš Holoubek
    Pavla Röselová
    Adam Obr
    Barbora Brodská
    Kateřina Kuželová
    Scientific Reports, 9
  • [47] Rac1/Cdc42/PAK1信号通路在星形细胞瘤进展中的可能作用
    曾敬
    张惠忠
    何洁华
    侯景辉
    符珈
    吴秋良
    中国肿瘤, 2010, 19 (04) : 262 - 265
  • [48] Supervillin Binds the Rac/Rho-GEF Trio and Increases Trio-Mediated Rac1 Activation
    Son, Kyonghee
    Smith, Tara C.
    Luna, Elizabeth J.
    CYTOSKELETON, 2015, 72 (01) : 47 - 64
  • [49] Supervillin Binds the Rac/Rho-GEF Trio and Increases Trio-mediated Rac1 Activation
    Son, Kyonghee
    Smith, Tara
    Luna, Elizabeth
    FASEB JOURNAL, 2015, 29
  • [50] Rac1/PAK1 signaling contributes to bone cancer pain by Regulation dendritic spine remodeling in rats (vol 19, 17448069231161031, 2023)
    Xu, L.
    Yang, L.
    Wu, Y.
    MOLECULAR PAIN, 2023, 19