4.8 Article

Tumor-self-targeted thermoferroptosis-sensitization magnetic nanodroplets for multimodal imaging-guided tumor-specific therapy

期刊

BIOMATERIALS
卷 277, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.biomaterials.2021.121100

关键词

Magnetic nanodroplets; Multimodal imaging; Ferroptosis; Magnetic fluid hyperthermia; Nanomedicine

资金

  1. Natural Science Foundation Project [81801718, 81571663, 81971608, 81901807]
  2. Kuanren Talents Program of the Second Affiliated Hospital of Chongqing Natural Science [CQYC2020030389, 2020-7]

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The use of magnetic nanodroplets (MNDs) as carriers for ferroptosis-based nanomedicine presents a novel strategy to address delivery and penetration challenges, enhancing the efficacy of antitumor therapy by allowing targeted and deep tissue penetration under multimodal imaging guidance.
Ferroptosis-based nanomedicine has drawn increasing attention in antitumor therapy because of the advantages of this unconventional mode of apoptosis, but the difficulties of delivery to the tumor site and surface-to-core penetration after arrival seriously hinder further clinical transformation and application. Herein, we propose an unprecedented strategy of injecting magnetic nanodroplets (MNDs) to solve these two longstanding problems. MNDs are nanocarriers that can carry multifunctional drugs and imaging materials. MNDs can effectively accumulate in the tumor site by active tumor targeting (multifunctional drugs) and passive tumor targeting (enhanced permeability and retention effect), allowing diffusion of the MNDs from the surface to the core through mild-temperature magnetic fluid hyperthermia (MHT) under multimodal imaging guidance. Finally, the ferroptosis pathway is activated deep within the tumor site through the drug release. This approach was inspired by the ability of mild-temperature MHT to allow MNDs to quickly pass through the blood vessel-tumor barrier and deeply penetrate the tumor tissue from the surface to the core to amplify the antitumor efficacy of ferroptosis. This strategy is termed as thermoferroptosis sensitization. Importantly, this behavior can be performed under the guidance of multimodal imaging, making the design of MNDs for cancer therapy safer and more reasonable.

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