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Hybrid Metal–Phenol Nanoparticles with Polydopamine-like Coating for PET/SPECT/CT Imaging

机译:杂化金属 - 酚纳米颗粒,具有用于PET / SPECT / CT成像的聚二胺状涂层

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The validation of metal–phenolic nanoparticles (MPNs) in preclinical imaging studies represents a growing field of interest due to their versatility in forming predesigned structures with unique properties. Before MPNs can be used in medicine, their pharmacokinetics must be optimized so that accumulation in nontargeted organs is prevented and toxicity is minimized. Here, we report the fabrication of MPNs made of a coordination polymer core that combines In(III), Cu(II), and a mixture of the imidazole 1,4-bis(imidazole-1-ylmethyl)-benzene and the catechol 3,4-dihydroxycinnamic acid ligands. Furthermore, a phenolic-based coating was used as an anchoring platform to attach poly(ethylene glycol) (PEG). The resulting MPNs, with effective hydrodynamic diameters of around 120 nm, could be further derivatized with surface-embedded molecules, such as folic acid, to facilitate in vivo targeting and multifunctionality. The prepared MPNs were evaluated for in vitro plasma stability, cytotoxicity, and cell internalization and found to be biocompatible under physiological conditions. First, biomedical evaluations were then performed by intrinsically incorporating trace amounts of the radioactive metals ~(111)In or ~(64)Cu during the MPN synthesis directly into their polymeric matrix. The resulting particles, which had identical physicochemical properties to their nonradioactive counterparts, were used to perform in vivo single-photon emission computed tomography (SPECT) and positron emission tomography (PET) in tumor-bearing mice. The ability to incorporate multiple metals and radiometals into MPNs illustrates the diverse range of functional nanoparticles that can be prepared with this approach and broadens the scope of these nanoconstructs as multimodal preclinical imaging agents.
机译:金属-酚醛纳米颗粒(MPN)在临床前成像研究中的验证代表着一个日益增长的兴趣领域,因为它们在形成具有独特性质的预先设计的结构方面具有多功能性。在MPN用于医学之前,必须优化其药代动力学,以防止其在非靶器官中积聚,并将毒性降至最低。在这里,我们报告了由配位聚合物核制成的MPN的制造,该配位聚合物核结合In(III)、Cu(II)以及咪唑1,4-双(咪唑-1-基甲基)-苯和邻苯二酚3,4-二羟基肉桂酸配体的混合物。此外,使用酚醛基涂层作为锚定平台来连接聚乙二醇(PEG)。由此产生的MPN的有效流体动力学直径约为120nm,可以进一步衍生表面嵌入分子,如叶酸,以促进体内靶向性和多功能性。对制备的MPN进行体外血浆稳定性、细胞毒性和细胞内化评估,发现其在生理条件下具有生物相容性。首先,在MPN合成过程中,通过将微量放射性金属~(111)In或~(64)Cu直接加入其聚合物基质中,进行生物医学评估。所得粒子的理化性质与非放射性粒子相同,用于荷瘤小鼠体内单光子发射计算机断层扫描(SPECT)和正电子发射断层扫描(PET)。将多种金属和放射性物质结合到MPN中的能力说明了用这种方法可以制备多种功能性纳米颗粒,并拓宽了这些纳米结构作为多模式临床前显像剂的范围。

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