藤黄酸
癌症研究
化学
细胞生物学
癌细胞
程序性细胞死亡
调节器
生物化学
丝氨酸
乳腺癌
线粒体
生物
去甲基化
自噬
丝氨酸羟甲基转移酶
阿皮拉酶
细胞毒性
谷氨酰胺分解
药理学
赫拉
三阴性乳腺癌
核苷酸回收
HEK 293细胞
癌症
下调和上调
半胱氨酸
细胞
新陈代谢
四氢异喹啉
癌基因
天然产物
氧化磷酸化
化学生物学
代谢途径
活性氧
生物能学
受体
作者
Tong Yang,Qiu C,Yulei Li,Ying Zhang,Chen Wang,Jie Zhou,Zheng Chu,Ang Ma,Ling Huang,Yin Kwan Wong,Junzhe Zhang,Junzhe Zhang,Peng Gao,Cui Liu,Junhua Zhang,Jigang Wang,Huan Tang,Jigang Wang
标识
DOI:10.1002/advs.202520252
摘要
Triple-negative breast cancer (TNBC) is an aggressive subtype lacking targeted therapies due to the absence of hormone receptors and HER2 expression, resulting in poor clinical outcomes and limited treatment options. Identifying novel vulnerabilities is therefore critical to advancing TNBC therapeutics. Mitochondrial metabolism has emerged as a key regulator of cancer cell survival and proliferation, with serine hydroxymethyltransferase 2 (SHMT2) playing a central role in mitochondrial one-carbon metabolism by supplying one-carbon units for nucleotide biosynthesis and maintaining redox homeostasis. Despite its established importance in cancer metabolism, the functional role and therapeutic potential of SHMT2 in TNBC remain underexplored. Here, we demonstrate that gambogic acid (GA), a natural product with reported anticancer properties, exerts potent and selective cytotoxicity against TNBC cells by covalently targeting SHMT2. GA binds specifically to the critical cysteine residue Cys241, inhibiting SHMT2 enzymatic activity and disrupting mitochondrial function. This leads to bioenergetic collapse, activation of the Nrf2/HO-1 axis, iron overload, and induction of ferroptosis, a non-apoptotic form of cell death increasingly recognized for its therapeutic potential. Our integrative chemoproteomic and mechanistic studies reveal a novel SHMT2-mitochondria-Nrf2/HO-1-ferroptosis axis driving GA's anti-TNBC activity. Moreover, SHMT2 overexpression in TNBC correlates with tumor aggressiveness and poor prognosis, underscoring its role as a metabolic oncogene and promising drug target. These findings establish GA as a novel covalent SHMT2 inhibitor and provide a new framework for exploiting metabolic vulnerabilities to overcome TNBC treatment resistance.
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