Mravic Marco, He Li, Kratochvil Huong, Hu Hailin, Nick Sarah E, Bai Weiya, Edwards Anne, Jo Hyunil, Wu Yibing, DiMaio Daniel, DeGrado William F
bioRxiv. 2023 Feb 15:2023.02.13.526773. doi: 10.1101/2023.02.13.526773.
Transmembrane (TM) domains as simple as a single span can perform complex biological functions using entirely lipid-embedded chemical features. Computational design has potential to generate custom tool molecules directly targeting membrane proteins at their functional TM regions. Thus far, designed TM domain-targeting agents have been limited to mimicking binding modes and motifs of natural TM interaction partners. Here, we demonstrate the design of TM proteins targeting the erythropoietin receptor (EpoR) TM domain in a custom binding topology competitive with receptor homodimerization. The TM proteins expressed in mammalian cells complex with EpoR and inhibit erythropoietin-induced cell proliferation. the synthetic TM domain complex outcompetes EpoR homodimerization. Structural characterization reveals that the complex involves the intended amino acids and agrees with our designed molecular model of antiparallel TM helices at 1:1 stoichiometry. Thus, membrane protein TM regions can now be targeted in custom designed topologies.
像单跨膜这样简单的跨膜(TM)结构域可以利用完全嵌入脂质的化学特征执行复杂的生物学功能。计算设计有潜力直接在膜蛋白的功能性TM区域生成定制的工具分子。到目前为止,设计的靶向TM结构域的试剂仅限于模仿天然TM相互作用伙伴的结合模式和基序。在这里,我们展示了在与受体同源二聚化竞争的定制结合拓扑结构中靶向促红细胞生成素受体(EpoR)TM结构域的TM蛋白的设计。在哺乳动物细胞中表达的TM蛋白与EpoR形成复合物并抑制促红细胞生成素诱导的细胞增殖。合成的TM结构域复合物胜过EpoR同源二聚化。结构表征表明该复合物涉及预期的氨基酸,并且与我们设计的1:1化学计量比的反平行TM螺旋分子模型一致。因此,现在可以在定制设计的拓扑结构中靶向膜蛋白的TM区域。