计算生物学
脆弱性(计算)
化学
透视图(图形)
化学生物学
合成致死
生物网络
计算机科学
乳腺癌
表观遗传学
风险分析(工程)
可药性
杀伤力
纳米技术
有机体
相关性(法律)
钥匙(锁)
控制(管理)
连接器
药物发现
合成生物学
资源(消歧)
光学(聚焦)
工件(错误)
模态(人机交互)
神经科学
动作(物理)
系统生物学
数据科学
组合化学
合理设计
依赖关系(UML)
占用率
小分子
作者
Weikun Zeng,Yihua Chen,Nouri Neamati,Yi Jin
标识
DOI:10.1021/acs.jmedchem.6c01107
摘要
Triple-negative breast cancer (TNBC) remains difficult to treat because durable response is rarely achieved with conventional occupancy-driven inhibition. The central challenge is not simply a lack of actionable targets but a mismatch between TNBC's adaptive network biology and the limited depth of reversible node-by-node intervention. In this Perspective, we argue that the key medicinal chemistry question is not only which protein to engage, but which chemical modality best matches a given biological liability. We focus on metabolic coupling, epigenetic scaffold dependence, immune-stromal exclusion, and DNA damage response plasticity and discuss how these vulnerabilities motivate targeted degradation, molecular glues, covalent inhibition, rational polypharmacology, or prodrug design. Across these modalities, ternary-complex productivity, linker topology, warhead presentation, isoform selectivity, exposure control, and postwashout persistence often matter more than potency alone. Biological vulnerability defines the design problem, chemical modality defines the intervention logic, and durable network control defines success.
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