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Magnetic Nanoparticles as a Theranostic Platform in Brain Tumor Treatment: Surmounting the Bench-to-Bedside Barriers.

Magnetic Nanoparticles as a Theranostic Platform in Brain Tumor Treatment: Surmounting the Bench-to-Bedside Barriers.

期刊: International journal of nanomedicine 日期: 2026-01-01 PMID: 42403540 DOI: 10.2147/IJN.S611920 浏览: 19
作者: Zhang F, Wang Y, Wang Q, Sun C, Jing Y, Wang S, Shan J, Liu H, Zhu Z
F, Z., Y, W., Q, W., C, S., Y, J., S, W., J, S., H, L., & Z, Z. (2026). Magnetic Nanoparticles as a Theranostic Platform in Brain Tumor Treatment: Surmounting the Bench-to-Bedside Barriers.. International journal of nanomedicine. https://doi.org/10.2147/IJN.S611920
F Z, Y W, Q W, C S, Y J, S W, et al. Magnetic Nanoparticles as a Theranostic Platform in Brain Tumor Treatment: Surmounting the Bench-to-Bedside Barriers.. International journal of nanomedicine. 2026; doi: 10.2147/IJN.S611920
F Z, Y W, Q W, et al. Magnetic Nanoparticles as a Theranostic Platform in Brain Tumor Treatment: Surmounting the Bench-to-Bedside Barriers.[J]. International journal of nanomedicine. 2026. DOI: 10.2147/IJN.S611920.
@article{f2026,
  author = {Zhang F and Wang Y and Wang Q and Sun C and Jing Y and Wang S and Shan J and Liu H and Zhu Z},
  title = {Magnetic Nanoparticles as a Theranostic Platform in Brain Tumor Treatment: Surmounting the Bench-to-Bedside Barriers.},
  journal = {International journal of nanomedicine},
  year = {2026},
  doi = {10.2147/IJN.S611920},
  note = {PMID: 42403540},
}
TY  - JOUR
AU  - Zhang F
AU  - Wang Y
AU  - Wang Q
AU  - Sun C
AU  - Jing Y
AU  - Wang S
AU  - Shan J
AU  - Liu H
AU  - Zhu Z
TI  - Magnetic Nanoparticles as a Theranostic Platform in Brain Tumor Treatment: Surmounting the Bench-to-Bedside Barriers.
T2  - International journal of nanomedicine
PY  - 2026
DO  - 10.2147/IJN.S611920
AN  - PMID:42403540
ER  - 

摘要

Malignant brain tumors, particularly glioblastoma, remain one of the greatest challenges in oncology due to their invasive nature, therapeutic resistance, and protection by the blood-brain barrier. Decades of limited therapeutic progress underscore the need for new treatment strategies beyond conventional modalities. Magnetic nanoparticles have emerged as a promising theranostic platform that integrates high-precision imaging, targeted delivery, and synergistic therapy. In this review, we outline a mechanistic framework for magnetic nanoparticle applications, with a focus on the link between ferroptosis and immune activation. We discuss how the intrinsic properties of magnetic nanoparticles can be engineered to induce iron-dependent ferroptotic cell death, which may help overcome apoptosis resistance and also trigger immunogenic cell death. This magnetic nanoparticle-induced immunogenic cell death may shift the immunosuppressive brain tumor microenvironment from a "cold" state toward a more immune-active phenotype, thereby supporting combination immunotherapy. We also examine key translational challenges and potential solutions, including quantitative magnetic particle imaging-guided therapeutic dosimetry, focused ultrasound-mediated delivery strategies, and issues related to Chemistry, Manufacturing, and Controls and regulatory science. By analyzing these translational challenges, this review aims to highlight practical considerations for advancing magnetic nanoparticle-based therapies toward clinical neuro-oncology.

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