首页> 外文期刊>Theranostics >Faster, sharper, more precise: Automated Cluster-FLIM in preclinical testing directly identifies the intracellular fate of theranostics in live cells and tissue
【24h】

Faster, sharper, more precise: Automated Cluster-FLIM in preclinical testing directly identifies the intracellular fate of theranostics in live cells and tissue

机译:更快,更锐利,更精确:临床前测试中的自动簇 - FLIM直接识别活细胞和组织中治疗器的细胞内命运

获取原文
获取外文期刊封面目录资料

摘要

Fluorescence microscopy is widely used for high content screening in 2D cell cultures and 3D models. In particular, 3D tissue models are gaining major relevance in modern drug development. Enabling direct multiparametric evaluation of complex samples, fluorescence lifetime imaging (FLIM) adds a further level to intensity imaging by the sensitivity of the fluorescence lifetime to the microenvironment. However, the use of FLIM is limited amongst others by the acquisition of sufficient photon numbers without phototoxic effects in live cells. Herein, we developed a new cluster-based analysis method to enhance insight, and significantly speed up analysis and measurement time for the accurate translation of fluorescence lifetime information into pharmacological pathways. Methods: We applied a fluorescently-labeled dendritic core-multishell nanocarrier and its cargo Bodipy as molecules of interest (MOI) to human cells and reconstructed human tissue. Following the sensitivity and specificity assessment of the fitting-free Cluster-FLIM analysis of data in silico and in vitro, we evaluated the dynamics of cellular molecule uptake and intracellular interactions. For 3D live tissue investigations, we applied multiphoton (mp) FLIM. Owing to Cluster-FLIM's statistics-based fitting-free analysis, we utilized this approach for automatization. Results: To discriminate the fluorescence lifetime signatures of 5 different fluorescence species in a single color channel, the Cluster-FLIM method requires only 170, respectively, 90 counts per pixel to obtain 95% sensitivity (hit rate) and 95% specificity (correct rejection rate). Cluster-FLIM revealed cellular interactions of MOIs, representing their spatiotemporal intracellular fate. In a setting of an automated workflow, the assessment of lysosomal trapping of the MOI revealed relevant differences between normal and tumor cells, as well as between 2D and 3D models. Conclusion: The automated Cluster-FLIM tool is fitting-free, providing images with enhanced information, contrast, and spatial resolution at short exposure times and low fluorophore concentrations. Thereby, Cluster-FLIM increases the applicability of FLIM in high content analysis of target molecules in drug development and beyond.? The author(s).
机译:荧光显微镜广泛用于2D细胞培养物和3D模型中的高含量筛选。特别是,3D组织模型在现代药物开发中取得了重大相关性。通过荧光寿命与微环境的敏感性增加,荧光寿命成像(Flim)能够增加荧光寿命成像(Flim),将进一步的水平增加到强度成像。然而,通过采集足够的光子数而没有在活细胞中的光毒性作用的情况下,使用Flim的使用是有限的。在此,我们开发了一种新的基于群集的分析方法,以提高洞察力,并显着加速分析和测量时间,以便将荧光寿命信息的准确转换为药理学途径。方法:我们将荧光标记的树突状核心 - MultiShell纳米载体及其货物BODIPY作为感兴趣的分子(MOI)应用于人体细胞和重建人体组织。遵循硅和体外数据的无刺激簇 - Flim分析的敏感性和特异性评估,我们评估了细胞分子摄取和细胞内相互作用的动态。对于3D直播组织调查,我们施加了MultiOphoton(MP)Flim。由于群集的基于统计的无统计学分析,我们利用了这种自动化方法。结果:为了区分5种不同荧光物种在单个颜色通道中的荧光寿命签名,簇 - FLIM方法分别只需要170个,每像素90个计数,以获得95%的灵敏度(命中率)和95%的特异性(正确的拒绝速度)。簇生揭示了沼泽的细胞相互作用,代表它们的时空细胞内命运。在自动工作流程的设置中,MOI溶酶体诱捕的评估显示了正常和肿瘤细胞之间的相关差异,以及2D和3D模型之间的相关差异。结论:自动簇 - 柔软工具可挂得无缝,提供具有增强的信息,对比度和短时间内的空间分辨率的图像,以及低荧光团浓度。由此,簇 - FLIM增加了FLIM在药物发育中靶分子的高含量分析中的适用性。作者。

著录项

获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号