Department of Geriatrics, Shenzhen People's Hospital (The Second Clinical Medical College, Jinan University, The First Affiliated Hospital, Southern University of Science and Technology), Shenzhen, Guangdong, 518020, P. R. China.
Integrated Chinese and Western Medicine Postdoctoral Research Station, Jinan University, Guangzhou, 510632, P. R. China.
Small. 2022 Oct;18(41):e2202161. doi: 10.1002/smll.202202161. Epub 2022 Sep 11.
It is highly desirable to design a single modality that can simultaneously trigger apoptosis and ferroptosis to efficiently eliminate tumor progression. Herein, a nanosystem based on the intrinsic properties of tumor microenvironment (TME) is designed to achieve tumor control through the simultaneous induction of ferroptosis and apoptosis. CuCP molecules are encapsulated in a liposome-based nanosystem to assemble into biocompatible and stable CuCP nanoparticles (CuCP Lipo NPs). This nanosystem intrinsically possesses nanozymatic activity and photothermal characteristics due to the property of Cu atoms and the structure of CuCP Lipo NPs. It is demonstrated that the synergistic strategy increases the intracellular lipid-reactive oxides species, induces the occurrence of ferroptosis and apoptosis, and completely eradicates the tumors in vivo. Proteomics analysis further discloses the key involved proteins (including Tp53, HMOX1, Ptgs2, Tfrc, Slc11a2, Mgst2, Sod1, and several GST family members) and pathways (including apoptosis, ferroptosis, and ROS synthesis). Conclusively, this work develops a strategy based on one nanosystem to synergistically induce ferroptosis and apoptosis in vivo for tumor suppression, which holds great potential in the clinical translation for tumor therapy.
设计一种能够同时触发细胞凋亡和铁死亡以有效消除肿瘤进展的单一模态是非常可取的。本文设计了一种基于肿瘤微环境(TME)固有特性的纳米系统,通过同时诱导铁死亡和细胞凋亡来实现肿瘤控制。CuCP 分子被包裹在基于脂质体的纳米系统中,组装成具有生物相容性和稳定性的 CuCP 纳米颗粒(CuCP Lipo NPs)。由于 Cu 原子的性质和 CuCP Lipo NPs 的结构,该纳米系统具有内在的纳米酶活性和光热特性。结果表明,协同策略增加了细胞内脂质反应性氧化物种类,诱导铁死亡和细胞凋亡的发生,并在体内完全消除了肿瘤。蛋白质组学分析进一步揭示了关键涉及的蛋白质(包括 Tp53、HMOX1、Ptgs2、Tfrc、Slc11a2、Mgst2、Sod1 和几个 GST 家族成员)和途径(包括细胞凋亡、铁死亡和 ROS 合成)。总之,这项工作开发了一种基于一种纳米系统的策略,在体内协同诱导铁死亡和细胞凋亡以抑制肿瘤,这在肿瘤治疗的临床转化中具有很大的潜力。