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由超顺磁性γ-FeO纳米卫星包覆的上转换β-NaY[YbEr]F纳米颗粒:制备、表征及细胞毒性

Up-converting β-NaY[YbEr]F nanoparticles coated by superparamagnetic γ-FeO nanosatellites: elaboration, characterization and cytotoxicity.

作者信息

Parvizian M, Mnasri W, Pleckaitis M, Karabanovas V, Khan H, Nowak S, Gam-Derouich S, Ben Tahar L, Sandre O, Rotomskis R, Ammar S

机构信息

Université Paris Cité, ITODYS, CNRS UMR-7086 Paris 75205 France souad.ammar-

National Cancer Institute, Biomedical Physics Laboratory Vilnius 08406 Lithuania.

出版信息

RSC Adv. 2024 Oct 4;14(43):31486-31497. doi: 10.1039/d4ra00909f. eCollection 2024 Oct 1.

Abstract

Current biomedical imaging techniques are vital for the diagnosis of various diseases. They are related to the development of multimodal probes encompassing all the functionalities required for comprehensive imaging. In this context, we applied a simple and reproducible wet synthesis route to produce such probes. This method allowed us to prepare about 100 nm sized lanthanide-doped yttrium fluoride nanoparticles β-NaY[YbEr]F, coated with about 10 nm sized iron oxide γ-FeO nanocrystals. By this way, the built granular hetero-nanostructures combine desirable up-converting photoluminescence (the core) and superparamagnetic properties (the satellites), enabling dual optical and magnetic resonance imaging applications. Through citrate ligand grafting, the designed core-satellite particles formed stable aqueous colloids, which are valuable for biomedical applications. Optical spectroscopy and confocal microscopy revealed their capability for sustained visible light emission (predominantly green) upon near-infrared excitation (980 nm). Additionally, based on XTT assays, when incubated for 24 hours with mammalian healthy or cancer cells, even at doses as high as 0.1 mg mL (milligrams of particles), they did not induce significant cytotoxicity. The measured body temperature magnetization of the engineered nanoconstructs was found to be about 10 emu g (grams of particles) at 1.5 T, which is high enough to use them as positive or negative contrast magnetic resonance agents in the clinic, as confirmed by relaxometry measurements in Milli-Q water. This result underscores their promising biomedical utility as bimodal probes for optical and magnetic imaging.

摘要

当前的生物医学成像技术对于各种疾病的诊断至关重要。它们与多模态探针的发展相关,这些探针涵盖了全面成像所需的所有功能。在这种背景下,我们应用了一种简单且可重复的湿合成路线来制备此类探针。该方法使我们能够制备出尺寸约为100 nm的镧系掺杂氟化钇纳米颗粒β-NaY[YbEr]F,其表面包覆着尺寸约为10 nm的氧化铁γ-Fe₂O₃纳米晶体。通过这种方式,构建的颗粒状异质纳米结构结合了理想的上转换光致发光(核心)和超顺磁性(卫星部分),实现了双模态光学和磁共振成像应用。通过柠檬酸盐配体接枝,设计的核-卫星颗粒形成了稳定的水性胶体,这对于生物医学应用具有重要价值。光谱学和共聚焦显微镜显示,它们在近红外激发(980 nm)下能够持续发出可见光(主要为绿色)。此外,基于XTT分析,当与哺乳动物健康或癌细胞孵育24小时时,即使在高达0.1 mg/mL(颗粒毫克数)的剂量下,它们也不会诱导明显的细胞毒性。在1.5 T下,工程化纳米结构测得的体温度磁化强度约为10 emu/g(颗粒克数),通过在超纯水(Milli-Q水)中的弛豫测量证实,这一强度足以使其在临床上用作磁共振成像的阳性或阴性对比剂。这一结果强调了它们作为光学和磁成像双模态探针具有广阔的生物医学应用前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e6e8/11450549/b56f3ebecbeb/d4ra00909f-f1.jpg

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