Department of Biochemistry, University of Washington, Seattle, WA 98195, USA; Institute for Protein Design, University of Washington, Seattle, WA 98195, USA; Molecular and Cellular Biology Graduate Program, University of Washington, Seattle, WA 98195, USA; Medical Scientist Training Program, University of Washington, Seattle, WA 98195, USA.
Institute for Stem Cell and Regenerative Medicine, University of Washington, Seattle, WA 98109, USA; Department of Bioengineering, University of Washington, Seattle, WA 98195, USA.
Cell. 2024 Jul 11;187(14):3726-3740.e43. doi: 10.1016/j.cell.2024.05.025. Epub 2024 Jun 10.
Many growth factors and cytokines signal by binding to the extracellular domains of their receptors and driving association and transphosphorylation of the receptor intracellular tyrosine kinase domains, initiating downstream signaling cascades. To enable systematic exploration of how receptor valency and geometry affect signaling outcomes, we designed cyclic homo-oligomers with up to 8 subunits using repeat protein building blocks that can be modularly extended. By incorporating a de novo-designed fibroblast growth factor receptor (FGFR)-binding module into these scaffolds, we generated a series of synthetic signaling ligands that exhibit potent valency- and geometry-dependent Ca release and mitogen-activated protein kinase (MAPK) pathway activation. The high specificity of the designed agonists reveals distinct roles for two FGFR splice variants in driving arterial endothelium and perivascular cell fates during early vascular development. Our designed modular assemblies should be broadly useful for unraveling the complexities of signaling in key developmental transitions and for developing future therapeutic applications.
许多生长因子和细胞因子通过与受体的细胞外结构域结合来传递信号,并驱动受体细胞内酪氨酸激酶结构域的缔合和磷酸化,从而启动下游信号级联反应。为了能够系统地研究受体价态和几何形状如何影响信号转导结果,我们使用可模块化扩展的重复蛋白构建块设计了多达 8 个亚基的环状同型寡聚物。通过将从头设计的成纤维细胞生长因子受体 (FGFR) 结合模块整合到这些支架中,我们生成了一系列具有强大价态和几何依赖性钙释放和丝裂原活化蛋白激酶 (MAPK) 途径激活的合成信号配体。所设计的激动剂具有很高的特异性,揭示了两种 FGFR 剪接变体在早期血管发育过程中驱动动脉内皮细胞和血管周围细胞命运中的独特作用。我们设计的模块化组装体对于揭示关键发育转变中信号传递的复杂性以及开发未来的治疗应用都应该具有广泛的用途。