小分子
化学
合理设计
计算生物学
表位
生物物理学
组合化学
结构母题
对接(动物)
血浆蛋白结合
药物发现
分子
纳米技术
蛋白质-蛋白质相互作用
结构-活动关系
蛋白质结构
程序性细胞死亡
抗体
拟肽
免疫系统
分子模型
生物系统
分子生物物理学
立体化学
星团(航天器)
蛋白质折叠
劈开
折叠(DSP实现)
细胞
热点(地质)
原籍国
结合位点
作者
Imma Capriello,Thiago M. Pereira,Gustavo Barbosa‐Reis,Vishwanatha Thimmalapura Marulappa,Katarzyna Magiera‐Mularz,Jacek Plewka,Tad A. Holak,Alexander Dömlingꝉ
标识
DOI:10.1021/acs.jmedchem.6c00674
摘要
Protein-protein interactions dominated by large, flat interfaces are widely considered challenging drug targets. The programmed cell death protein-1/programmed death ligand-1 (PD-1/PD-L1) immune checkpoint exemplifies this problem, as the interaction is mediated by an extended β-sheet surface lacking deep pockets. Despite this, PD-L1 has been successfully inhibited by chemically distinct modalities, including antibodies, macrocyclic peptides, and small molecules. Here, we present a comparative, structure-driven analysis of PD-L1 complexes deposited in the Protein Data Bank and demonstrate a striking convergence: all effective inhibitors engage the same CC'FG β-sheet face of PD-L1. Antibodies directly occlude this surface, macrocyclic peptides such as pAC65 reproduce antibody-like surface coverage in a compact and preorganized scaffold, and biphenyl small molecules neutralize the same epitope indirectly by inducing PD-L1 homodimerization. This unified structural framework reveals modality-agnostic design principles for targeting flat immune checkpoint PPIs. This Perspective provides a unified structural framework for understanding PD-L1 inhibition across clinically tested antibodies, macrocyclic peptides, and small molecules. Both visualizing and quantitatively comparing interface overlap, hotspot conservation, and buried surface area, the work demonstrates that distinct inhibitory modalities converge on the same functional CC'FG hotspot region while employing fundamentally different neutralization mechanisms. These findings establish structure-guided principles for the rational design of next-generation PD-L1 modulators across diverse therapeutic modalities.
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