4.7 Article

Surface-Functionalized NdVO4:Gd3+ Nanoplates as Active Agents for Near-Infrared-Light-Triggered and Multimodal-Imaging-Guided Photothermal Therapy

期刊

PHARMACEUTICS
卷 14, 期 6, 页码 -

出版社

MDPI
DOI: 10.3390/pharmaceutics14061217

关键词

near infrared light; NdVO4; polydopamine; photothermal therapy; multimodal imaging

资金

  1. Chinese Government [2017YFE0132300]
  2. Australian Government [2017YFE0132300]
  3. National Natural Science Foundation of China [NSFC 52072082, 32101143, 51929201, 51672268, 51720105015, 51972138, 51872263, 51828202]
  4. Science and Technology Development Planning Project of Jilin Province [20190201232JC]
  5. CAS-Croucher Funding Scheme for Joint Laboratories [CAS18204]
  6. Guangdong Natural Science Foundation [2019A1515012214]
  7. Guangdong Provincial Department of Education [2020ZDZX2020]
  8. Sixth Affiliated Hospital of Guangzhou Medical University, Qingyuan People's Hospital [202011-105]

向作者/读者索取更多资源

Development of nanotheranostic agents with near-infrared absorption provides an effective tool for fighting malignant diseases. In this study, a nanoplatform based on gadolinium-ion-doped NdVO4 nanoplates was employed for multiple-imaging-assisted photothermal therapy.
Development of nanotheranostic agents with near-infrared (NIR) absorption offers an effective tool for fighting malignant diseases. Lanthanide ion neodymium (Nd3+)-based nanomaterials, due to the maximum absorption at around 800 nm and unique optical properties, have caught great attention as potential agents for simultaneous cancer diagnosis and therapy. Herein, we employed an active nanoplatform based on gadolinium-ion-doped NdVO4 nanoplates (NdVO4:Gd3+ NPs) for multiple-imaging-assisted photothermal therapy. These NPs exhibited enhanced NIR absorption and excellent biocompatibility after being grafted with polydopamine (pDA) and bovine serum albumin (BSA) layers on their surface. Upon expose to an 808 nm laser, these resulting NPs were able to trigger hyperthermia rapidly and cause photo-destruction of cancer cells. In a xenograft tumor model, tumor growth was also significantly inhibited by these photothermal agents under NIR laser irradiation. Owing to the multicomponent nanostructures, we demonstrated these nanoagents as being novel contrast agents for in vivo magnetic resonance (MR) imaging, X-ray computed tomography (CT), photoacoustic (PA) imaging, and second biological window fluorescent imaging of tumor models. Thus, we believe that this new kind of nanotherapeutic will benefit the development of emerging nanosystems for biological imaging and cancer therapy.

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