CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:AI-enabled discovery and biochemical optimization of minibinders targeting cancer cell-surface proteins.
AI-enabled discovery and biochemical optimization of minibinders targeting cancer cell-surface proteins.
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实验验证和功能优化仍是基于AI的蛋白质设计的瓶颈。我们提出了一种可扩展的工作流程,用于开发针对癌症相关表面蛋白的AI设计minibinders。利用哺乳动物细胞表面展示筛选数千个设计,鉴定出若干高亲和力PD-L1 minibinders,但针对CD276(B7-H3)和VTCN1(B7-H4)的则少得多,凸显了显著的靶点依赖性。由Chai-1结合ESM嵌入生成的界面预测模板建模(ipTM)评分与结合成功率相关,并能捕捉界面突变的有害效应。荧光团标记的AI-minibinders可实现与传统抗体相当的流式细胞术染色。
然而,当将其整合到嵌合抗原受体(CAR)中时,部分表现出较差的细胞表面转运和有限的功能。通过基于遗传算法的多样化策略进行重新设计,该策略保留结合界面同时改变非结合表面,实验揭示了一个等电点(pI)窗口,可改善CAR表达并增强靶点选择性肿瘤细胞杀伤。
我们的发现表明,结合界面之外的生化优化是将AI-minibinders转化为功能性应用的关键要求。
Experimental validation and functional optimization remain bottlenecks in AI-based protein design.
We present a scalable workflow for developing AI-designed minibinders against cancer-associated surface proteins. Screening thousands of designs using mammalian cell-surface display identifies several high-affinity PD-L1 minibinders but far fewer for CD276 (B7-H3) and VTCN1 (B7-H4), highlighting substantial target dependence.
Interface predicted template modeling (ipTM) scores generated by Chai-1 with ESM embeddings correlate with binding success and capture deleterious effects of interface mutations. Fluorophore-labeled AI-minibinders enable flow-cytometric staining comparable to conventional antibodies.
However, when incorporated into chimeric antigen receptors (CAR), some show poor cell-surface trafficking and limited functionality. Redesign through a genetic algorithm-based diversification strategy that preserves the binding interface while changing non-binding surfaces experimentally reveals an isoelectric point (pI) window that improves CAR expression and enhances target-selective tumor cell killing.
Our findings identify biochemical optimization beyond the binding interface as a critical requirement for translating AI-minibinders into functional applications.
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