化学
计算生物学
热稳定性
蛋白质设计
生物分子
生物化学
组合化学
蛋白质工程
血浆蛋白结合
蛋白质标签
合成生物学
高通量筛选
肽库
脚手架
连接器
蛋白质-蛋白质相互作用
纳米技术
化学生物学
生物制药
支架蛋白
蛋白质阵列分析
固相合成
蛋白质结构
体外
肽序列
人类蛋白质
体内
靶蛋白
生物物理学
结合位点
镧系元素
定向进化
药物发现
DNA结合蛋白
结构生物学
小分子
蛋白质表达
作者
Robert Klassen,Anna Heider,Hannah Kugler,Michael Groll,Cathleen Zeymer
标识
DOI:10.1021/acschembio.5c00670
摘要
The specific incorporation of lanthanide ions is a promising strategy to equip biomolecules with a new function. Their long-lived luminescence, strong anomalous X-ray scattering, paramagnetism, Lewis acidity, and photoredox activity are attractive features for protein-based probes, materials, and catalysts. However, natural lanthanide-binding proteins are rare, and de novo design is often complicated by unspecific binding to negatively charged patches on protein surfaces. We thus aimed to develop an efficient workflow to screen libraries of protein scaffolds for their ability to coordinate lanthanides. Here, we introduce a microtiter plate-based assay, which employs commercial filter plates and a dual readout based on sensitized Tb3+ luminescence. We first benchmarked our procedure using control proteins with and without lanthanide-binding sites, demonstrating that site-specific coordination and surface binding can be distinguished. The stringency of this protocol also allowed screening for small lanthanide-binding peptides in the presence of a large expression tag. We then designed a de novo scaffold library derived from a helical bundle protein and applied our screening platform. We could identify lanthanide-binding variants with nanomolar affinity, distinct lanthanide specificity, and increased thermostability in response to metal binding. Our approach will support the discovery and evolution of lanthanide-binding peptides and proteins for various applications in vitro and in living cells.
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