Petrovic Ljubica Z, Oumano Michael, Hanlon Justin, Arnoldussen Mark, Koruga Igor, Yasmin-Karim Sayeda, Ngwa Wilfred, Celli Jonathan
Department of Physics, University of Massachusetts at Boston, Boston, MA 02125, USA.
Medical Physics Program, Department of Physics and Applied Physics, University of Massachusetts Lowell, Lowell, MA 02125, USA.
Pharmaceutics. 2022 Mar 18;14(3):667. doi: 10.3390/pharmaceutics14030667.
Gold nanoparticles (GNPs) have shown particular promise as radiosensitizing agents and as complementary drug delivery agents to improve therapeutic index in cancer treatment. Optimal implementation, however, depends critically on the localization of GNPs at the time of irradiation, which, in turn, depends on their size, shape, and chemical functionalization, as well as organism-level pharmacokinetics and interactions with the tumor microenvironment. Here, we use in vitro 3D cultures of A549 lung carcinoma cells, which recapitulate interaction with extracellular matrix (ECM) components, combined with quantitative fluorescence imaging to study how time-dependent localization of ultrasmall GNPs in tumors and ECM impacts the degree of damage enhancement to tumor cells. Confocal imaging of fluorescence-labeled GNPs in 3D culture reveals that nanoparticles are initially embedded in ECM and only gradually accumulate in cancer cells over multiple days. Furthermore, the timing of GNP redistribution from ECM to cellular compartments directly impacts efficacy, with major damage enhancement when irradiation is performed after GNPs have accumulated significantly in 3D tumor nodules. These results underscore the importance of the timing and scheduling in treatment planning to ensure optimal radiosensitization, as well as the necessity of studying these effects in model systems that recapitulate elements of tumor microenvironment interaction.
金纳米颗粒(GNPs)作为放射增敏剂和辅助药物递送剂,在癌症治疗中提高治疗指数方面显示出特别的前景。然而,最佳应用关键取决于照射时GNPs的定位,而这又取决于它们的大小、形状、化学功能化,以及机体水平的药代动力学和与肿瘤微环境的相互作用。在这里,我们使用A549肺癌细胞的体外3D培养,其概括了与细胞外基质(ECM)成分的相互作用,并结合定量荧光成像来研究超小GNPs在肿瘤和ECM中的时间依赖性定位如何影响对肿瘤细胞的损伤增强程度。3D培养中荧光标记GNPs的共聚焦成像显示,纳米颗粒最初嵌入ECM中,并且仅在数天内逐渐在癌细胞中积累。此外,GNPs从ECM重新分布到细胞区室的时间直接影响疗效,当在3D肿瘤结节中GNPs显著积累后进行照射时,损伤增强明显。这些结果强调了治疗计划中时间安排的重要性,以确保最佳放射增敏效果,以及在概括肿瘤微环境相互作用要素的模型系统中研究这些效应的必要性。