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Fyn 生物传感器揭示了活哺乳动物细胞中脉动的、空间局部化的激酶活性和信号串扰。

A Fyn biosensor reveals pulsatile, spatially localized kinase activity and signaling crosstalk in live mammalian cells.

机构信息

Institute for Stem Cell Science and Regenerative Medicine, Bangalore, India.

SASTRA University, Thanjavur, India.

出版信息

Elife. 2020 Feb 4;9:e50571. doi: 10.7554/eLife.50571.

Abstract

Cell behavior is controlled through spatio-temporally localized protein activity. Despite unique and often contradictory roles played by Src-family-kinases (SFKs) in regulating cell physiology, activity patterns of individual SFKs have remained elusive. Here, we report a biosensor for specifically visualizing active conformation of SFK-Fyn in live cells. We deployed combinatorial library screening to isolate a binding-protein (F29) targeting activated Fyn. Nuclear-magnetic-resonance (NMR) analysis provides the structural basis of F29 specificity for Fyn over homologous SFKs. Using F29, we engineered a sensitive, minimally-perturbing fluorescence-resonance-energy-transfer (FRET) biosensor () that reveals cellular Fyn activity to be spatially localized, pulsatile and sensitive to adhesion/integrin signaling. Strikingly, growth factor stimulation further enhanced Fyn activity in pre-activated intracellular zones. However, inhibition of focal-adhesion-kinase activity not only attenuates Fyn activity, but abolishes growth-factor modulation. imaging uncovers spatially organized, sensitized signaling clusters, direct crosstalk between integrin and growth-factor-signaling, and clarifies how compartmentalized Src-kinase activity may drive cell fate.

摘要

细胞行为通过时空局部化的蛋白质活性来控制。尽管 Src 家族激酶(SFKs)在调节细胞生理学方面具有独特且常常相互矛盾的作用,但单个 SFK 的活性模式仍然难以捉摸。在这里,我们报告了一种用于在活细胞中特异性可视化 SFK-Fyn 活性构象的生物传感器。我们通过组合文库筛选分离出一种针对激活 Fyn 的结合蛋白(F29)。核磁共振(NMR)分析为 F29 特异性识别 Fyn 而非同源 SFKs 提供了结构基础。利用 F29,我们设计了一种灵敏且最小干扰的荧光共振能量转移(FRET)生物传感器(),该传感器揭示了细胞内 Fyn 活性是空间局部化的、脉冲式的,并对粘附/整合素信号敏感。引人注目的是,生长因子刺激进一步增强了预先激活的细胞内区域中的 Fyn 活性。然而,抑制粘着斑激酶活性不仅会减弱 Fyn 活性,而且会消除生长因子的调节作用。成像揭示了空间组织的、敏感的信号簇,整合素和生长因子信号之间的直接串扰,并阐明了分隔的 Src 激酶活性如何驱动细胞命运。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f4cb/7000222/8cfbaada1d42/elife-50571-fig1.jpg

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