Deep mutational scanning-guided design of a high-affinity helix–loop–helix peptide targeting G-CSF receptor

IF 2.5 4区 医学 Q3 CHEMISTRY, MEDICINAL Bioorganic & Medicinal Chemistry Letters Pub Date : 2024-12-10 DOI:10.1016/j.bmcl.2024.130071
Masataka Michigami , Yuka Kanata , Chang Iou Ven , Ayana Oshima , Asako Yamaguchi-Nomoto , Takayoshi Kinoshita , Takatsugu Hirokawa , Ikuo Fujii
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Abstract

At present, mid-sized binding peptides have emerged as a new class of drug modalities. We have de novo designed a helix–loop–helix (HLH) peptide (MW: ∼4,500), constructed phage-displayed libraries, and screened the libraries against a variety of disease-related proteins to successfully obtain molecular-targeting HLH peptides. The next essential step in developing HLH peptides into therapeutics involves affinity engineering to optimize binding affinity and specificity. Here, we demonstrate deep mutational scanning to improve binding affinity over 1000-fold for an HLH peptide (P8-2KA; KD = 380 nM) targeting granulocyte colony-stimulation factor receptor (G-CSFR). Site-saturation mutagenesis on the two helices was performed to produce a phage-displayed library that was screened against G-CSFR. The DNA sequences of mutants from the unselected and selected phage libraries were analyzed with next-generation sequencing. The enrichment ratio of each mutant was calculated from the sequencing data to identify beneficial mutations for G-CSFR binding. Grafting of the five beneficial mutations on P8-2KA dramatically increased the binding affinity (KD = 16 nM), while cyclization of the HLH peptide with an intramolecular disulfide bond further increased binding affinity for G-CSFR (KD = 0.18 nM). The combined strategy of phage-displayed library selection and deep mutational scanning-guided design generated high-affinity HLH peptides, emphasizing the potential of molecular-targeting HLH peptides as a new drug modality that serves as an alternative to antibodies.

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靶向G-CSF受体的高亲和螺旋-环-螺旋肽的深度突变扫描引导设计。
目前,中等大小的结合肽已成为一类新的药物模式。我们从头设计了一个螺旋-环-螺旋(HLH)肽(MW: ~ 4500),构建了噬菌体展示文库,并筛选了针对多种疾病相关蛋白的文库,成功获得了分子靶向的HLH肽。将HLH肽开发为治疗药物的下一个关键步骤涉及亲和工程,以优化结合亲和性和特异性。在这里,我们展示了深度突变扫描,以提高超过1000倍的结合亲和力的HLH肽(P8-2KA;KD = 380 nM)靶向粒细胞集落刺激因子受体(G-CSFR)。在两个螺旋上进行位点饱和诱变,产生一个噬菌体展示文库,该文库对G-CSFR进行了筛选。利用新一代测序技术分析未选择和选择噬菌体文库突变体的DNA序列。根据测序数据计算每个突变体的富集比,以确定G-CSFR结合的有益突变。在P8-2KA上接枝5个有益突变显著提高了G-CSFR的结合亲和力(KD = 16 nM),而用分子内二硫键环化HLH肽进一步提高了G-CSFR的结合亲和力(KD = 0.18 nM)。噬菌体展示文库选择和深度突变扫描引导设计相结合的策略产生了高亲和力的HLH肽,强调了分子靶向HLH肽作为替代抗体的新药物模式的潜力。
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来源期刊
CiteScore
5.70
自引率
3.70%
发文量
463
审稿时长
27 days
期刊介绍: Bioorganic & Medicinal Chemistry Letters presents preliminary experimental or theoretical research results of outstanding significance and timeliness on all aspects of science at the interface of chemistry and biology and on major advances in drug design and development. The journal publishes articles in the form of communications reporting experimental or theoretical results of special interest, and strives to provide maximum dissemination to a large, international audience.
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