化学
纳米器件
线粒体
细胞生物学
计算生物学
DNA
小RNA
细胞器
DNA损伤
破译
信号(编程语言)
免疫系统
免疫疗法
纳米技术
DNA纳米技术
纳米医学
机制(生物学)
内质网
信号转导
神经科学
作者
Qin Xiang,Jinkun Huang,Lei Shuai,Shengwu Wen,Weiyun Zhang,Xuan Wang,Junjian Li,Zijia Zhou,Zhuangqiang Gao,Qi Wang,Yingfu Li,Haifeng Dong
摘要
Precision immunotherapy is critically hampered by the nonspecific toxicity of cGAS-STING pathway agonists. We overcome this fundamental barrier with a programmable DNA nanomaterial that operates as a logic-gated theranostic agent at the organelle level. Our nanodevice targets mitochondria and uses an integrated catalytic circuit to decipher the presence of oncogenic microRNA-21 (miR-21). Upon positive identification, it triggers the in situ architectural assembly of a physically disruptive DNA network on the mitochondrial surface. This targeted structural stress inflicts profound membrane damage, weaponizing the tumor cell's own mitochondrial DNA as a precision-guided agonist to ignite a powerful, localized STING-mediated immune assault. This strategy provides a dual function, enabling amplified diagnostic imaging of its molecular trigger while orchestrating the profound suppression of both primary and metastatic tumors in vivo with undetectable systemic toxicity. This work establishes a new design principle for intelligent therapeutics and defines a new therapeutic paradigm, the direct conversion of a fleeting molecular signal into a stable, physical, and immunomodulatory structure, forging a new frontier for dynamic materials in precision medicine.
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