Gong Rui, Reynolds Matthew J, Carney Keith R, Hamilton Keith, Bidone Tamara C, Alushin Gregory M
Laboratory of Structural Biophysics and Mechanobiology, The Rockefeller University, New York, NY, USA.
Huntsman Cancer Institute, University of Utah, Salt Lake City, UT, USA.
Nat Struct Mol Biol. 2025 May;32(5):940-952. doi: 10.1038/s41594-024-01477-2. Epub 2025 Jan 20.
Fascin cross-links actin filaments (F-actin) into bundles that support tubular membrane protrusions including filopodia and stereocilia. Fascin dysregulation drives aberrant cell migration during metastasis, and fascin inhibitors are under development as cancer therapeutics. Here, we use cryo-EM, cryo-electron tomography coupled with custom denoising and computational modeling to probe human fascin-1's F-actin cross-linking mechanisms across spatial scales. Our fascin cross-bridge structure reveals an asymmetric F-actin binding conformation that is allosterically blocked by the inhibitor G2. Reconstructions of seven-filament hexagonal bundle elements, variability analysis and simulations show how structural plasticity enables fascin to bridge varied interfilament orientations, accommodating mismatches between F-actin's helical symmetry and bundle hexagonal packing. Tomography of many-filament bundles and modeling uncover geometric rules underlying emergent fascin binding patterns, as well as the accumulation of unfavorable cross-links that limit bundle size. Collectively, this work shows how fascin harnesses fine-tuned nanoscale structural dynamics to build and regulate micron-scale F-actin bundles.
Fascin将肌动蛋白丝(F-肌动蛋白)交联成束,以支持包括丝状伪足和静纤毛在内的管状膜突出。Fascin失调会在转移过程中驱动异常的细胞迁移,目前正在开发Fascin抑制剂作为癌症治疗药物。在这里,我们使用冷冻电镜、结合定制去噪和计算建模的冷冻电子断层扫描技术,在不同空间尺度上探究人Fascin-1的F-肌动蛋白交联机制。我们的Fascin交叉桥结构揭示了一种不对称的F-肌动蛋白结合构象,该构象被抑制剂G2变构阻断。对七丝六角束元件的重建、变异性分析和模拟表明,结构可塑性如何使Fascin能够桥接不同的丝间取向,适应F-肌动蛋白螺旋对称性与束六角堆积之间的不匹配。多丝束的断层扫描和建模揭示了Fascin结合模式出现的几何规则,以及限制束大小的不利交联的积累。总的来说,这项工作展示了Fascin如何利用微调的纳米级结构动力学来构建和调节微米级的F-肌动蛋白束。