4.8 Article

Macrophage-Mediated Porous Magnetic Nanoparticles for Multimodal Imaging and Postoperative Photothermal Therapy of Gliomas

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 48, 页码 56825-56837

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c12406

关键词

glioma; macrophages; porous magnetic nanoparticles; photothermal therapy; magnetic resonance imaging

资金

  1. National Natural Science Foundation of China [82171997, 81771885, 81671743]
  2. Technological Innovation Project of Suzhou Jiangsu Province [SYS201734]
  3. Clinical Key Diseases Diagnosis and Therapy Special Project of Health and Family Planning Commission of Suzhou [LCZX201801]
  4. Guangdong Basic and Applied Basic Research Foundation for Distinguished Young Scholars [2020B1515020027]
  5. Guangzhou Science and Technology Bureau [202002020070, 202102010181, 202102010007]
  6. Guangdong Science and Technology Department [2020B1212060018, 2020B1212030004]
  7. HighLevel Health Personnel Six-One Project of Jiangsu Province [LGY2016035]
  8. Program for Advanced Talents within Six Industries of Jiangsu

向作者/读者索取更多资源

A macrophage loaded with a photothermal nanoprobe was developed to cross the blood-brain barrier and accumulate into deep gliomas for multimodal imaging and guided surgery purposes. This nanoplatform shows promise for achieving accurate diagnosis, imaging-guided surgery, and effective photothermal therapy for gliomas.
Because of the blood-brain barrier and the high infiltration of glioma cells, the diagnostic accuracy and treatment efficiency of gliomas are still facing challenges. There is an urgent need to explore the integration of diagnostic and therapeutic methods to achieve an accurate diagnosis, guide surgery, and inhibit postoperative recurrence. In this work, we developed a macrophage loaded with a photothermal nanoprobe (MFe3O4-Cy5.5), which is able to cross the blood-brain barrier and accumulate into deep gliomas to achieve multimodal imaging and guided glioma surgery purposes. With desirable probing depth and high signal-to-noise ratio, Fe3O4-Cy5.5 can perform fluorescence, photoacoustic, and magnetic resonance imaging, which can distinguish brain tumors from the surrounding normal tissues and accurately guide glioma resection. Meanwhile, Fe3O4-Cy5.5 can effectively induce local photothermal therapy and inhibit the recurrence of glioma after surgery. These results demonstrate that the macrophage-mediated Fe3O4-Cy5.5, which can achieve a multimodal diagnosis, accurate imaging-guided surgery, and effective photothermal therapy, is a promising nanoplatform for gliomas.

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