棕榈酰化
化学
生物物理学
细胞生物学
HEK 293细胞
突变
蛋白质结构
程序性细胞死亡
染色质
核孔
溶解循环
血浆蛋白结合
生物化学
德隆
单体
串扰
自噬
结构生物学
细胞
细胞膜
上睑下垂
纳米技术
生物
细胞凋亡
膜蛋白
基质(水族馆)
突变
锚蛋白重复序列
毛茛
作者
Gang Du,Julian F. Ehrmann,Judy Lieberman,Hao Wu
标识
DOI:10.1073/pnas.2614339123
摘要
Pyroptosis is defined as gasdermin-mediated lytic programmed cell death. Gasdermin E (GSDME), a substrate of the apoptotic caspase-3, can convert apoptosis into pyroptosis, with critical roles in antitumor immunity and chemotherapy-induced tissue damage. Despite its importance, the structural mechanism of GSDME pore formation and its regulation by posttranslational modifications remain largely unknown. Here, we present the cryo-electron microscopy (cryo-EM) structure at 3.16 Å resolution of the human GSDME N-terminal (NT) pore using proteins expressed from mammalian cells. The structure reveals a GSDME-NT pore assembled mainly as a 28-subunit homo-oligomer, and a dramatic conformational rearrangement from the autoinhibited state, with refolding of the two β-hairpins in each monomer to form a membrane-spanning β-barrel with an acidic conduit. Unexpectedly, we identify endogenous S-palmitoylation of C45, C168, and C180, required for membrane binding and pore formation. In addition, extra cryo-EM densities are visible adjacent to the C45 side chain, potentially corresponding to the flexibly linked palmitate chain. Structure-guided mutagenesis demonstrates that these palmitoylation sites synergistically control pore formation. The structure served as a molecular blueprint for analyzing cancer-associated mutations, known to disrupt GSDME function. These mutations cluster at functional hotspots in the oligomerization interfaces, membrane-contact regions, and the β-barrel, where they disrupt pore integrity. Collectively, our findings establish palmitoylation as an obligatory licensing step for membrane binding and pore formation, provide structural visualization of a palmitoylated gasdermin, and reveal how cancer-associated mutations impair pyroptotic function. This structure and these insights will be useful for developing strategies that target GSDME to treat cancer and inflammatory disease.
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