Liu Zhe, Yang Yanxi, Kong Xinru, Ren Xueli, Xuan Fengqi
Academy of Medical Engineering and Translational Medicine, Tianjin University, Tianjin 300072, China; Tianjin Key Laboratory of Brain Science and Neural Engineering, Tianjin University, Tianjin, 300072, China.
Academy of Medical Engineering and Translational Medicine, Tianjin University, Tianjin 300072, China; Tianjin Key Laboratory of Brain Science and Neural Engineering, Tianjin University, Tianjin, 300072, China.
Biomaterials. 2025 May;316:122990. doi: 10.1016/j.biomaterials.2024.122990. Epub 2024 Dec 2.
In spite of the hypoxia tumor microenvironment, an efficacious treatment with minimal invasiveness is highly desirable. Among common cellular organelles, mitochondria is a common target for inductive cellular apoptosis and tumor proliferation inhibition. Nevertheless, tumor hypoxic circumstances always give rise to poor therapeutic efficiency and instead lead to lesion recurrence and unsatisfactory prognosis. Herein, a home-tailored pyroelectric nanocomposites of BTO@PDA-FA-DOX-EGCG have been developed via a layer-by-layer synthesis to serve a cutting-edge tumor treatment with specific mitochondria-targeting, hypoxia-relieving, chemo-photodynamic performance and high anti-tumor efficacy. In particular, this therapeutic modality is featured as drug-device-field integration (DDFI) by combining chemo-drugs of DOX and EGCG, a commercially available medical laser and physical pyroelectric fields, which synergistically contributed to continuing ROS production and consequently cell apoptosis and tumor growth inhibition. Meanwhile, an anti-tumor mechanism of immune actuation and mitochondria dysfunction was elucidated by analyzing specific biomarkers of mitochondria complexes and MMPs, and therefore this research opened up a potential pathway for advanced tumor treatment by incorporating nanocomposites, medical devices and physical fields in a DDFI manner.
尽管存在缺氧的肿瘤微环境,但人们非常希望有一种微创的有效治疗方法。在常见的细胞器中,线粒体是诱导细胞凋亡和抑制肿瘤增殖的常见靶点。然而,肿瘤缺氧情况总是导致治疗效果不佳,反而会导致病变复发和预后不理想。在此,通过逐层合成开发了一种定制的热释电纳米复合材料BTO@PDA-FA-DOX-EGCG,以实现具有特定线粒体靶向、缓解缺氧、化学-光动力性能和高抗肿瘤功效的前沿肿瘤治疗。特别是,这种治疗方式通过将阿霉素(DOX)和表没食子儿茶素没食子酸酯(EGCG)等化疗药物、市售医用激光和物理热释电场相结合,以药物-装置-场一体化(DDFI)为特征,协同促进持续产生活性氧(ROS),从而导致细胞凋亡和肿瘤生长抑制。同时,通过分析线粒体复合物和基质金属蛋白酶(MMPs)的特定生物标志物,阐明了免疫激活和线粒体功能障碍的抗肿瘤机制,因此本研究通过以DDFI方式整合纳米复合材料、医疗装置和物理场,为先进的肿瘤治疗开辟了一条潜在途径。