Cyclic di-GMP suppresses cancer metastasis by targeting proteasome 26S subunit non-ATPase 3 independently of STING

蛋白酶体 癌症研究 转移 乳腺癌 调节器 蛋白质亚单位 体内 转移性乳腺癌 癌症 磷酸化 泛素 信号转导 医学 体外 细胞内 癌细胞 生物 化学 靶向治疗 功能(生物学) 抑制性突触后电位 下调和上调
作者
Jieqiong Wang,Alexander Mrozek,Kewen Hu,Hanyu You,Sarah Traverse,Hyemin Lee,Shelya X. Zeng,Xiufeng Pang,Heewon Park,Hua Lu
出处
期刊:Signal Transduction and Targeted Therapy [Springer Nature]
卷期号:11 (1): 44-44
标识
DOI:10.1038/s41392-025-02553-9
摘要

Cancer metastasis is the primary cause of cancer-related mortality, yet effective treatments remain limited. There is an urgent need to develop novel therapeutic strategies to combat metastasis. In this study, we demonstrate that the bacterial intracellular signaling molecule cyclic di-GMP (c-di-GMP, or cdG) exerts a potent inhibitory effect on cancer metastasis, particularly in metastatic breast cancer, via both in vitro and in vivo models, with little toxicity to mice. Interestingly, this antimetastatic function is achieved by suppressing the NF-κB signaling pathway, which is important for cancer progression and metastasis, but independent of STING, a previously identified c-di-GMP sensor and NF-κB regulator in mammalian cells. Surprisingly, c-di-GMP inhibits NF-κB activity (p-p65) by directly binding to the proteasome 26S subunit non-ATPase 3 (PSMD3) that we identified as a new TBK1-binding activator, and disrupting the interaction between PSMD3 and TBK1. This PSMD3-TBK1 interaction boosts the phosphorylation and activation of TBK1, representing a noncanonical function of PSMD3 distinct from its established role in proteasomal degradation. Significantly, PSMD3 is highly expressed in malignant and metastatic breast cancers, particularly triple-negative breast cancer. The compelling evidence strongly suggests PSMD3 as a promising target for developing a therapy against metastatic breast cancer. These findings underscore the high potential of c-di-GMP as a safe and effective therapeutic agent for metastatic cancers by targeting the PSMD3-TBK1-NF-κB pathway.
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