Northeastern University, Department of Bioengineering, Boston, Massachusetts, United States.
Northeastern University, Department of Electrical and Computer Engineering, Boston, Massachusetts, United States.
J Biomed Opt. 2019 Aug;24(8):1-11. doi: 10.1117/1.JBO.24.8.085004.
Circulating tumor cells (CTCs) are of great interest in cancer research because of their crucial role in hematogenous metastasis. We recently developed “diffuse in vivo flow cytometry” (DiFC), a preclinical research tool for enumerating extremely rare fluorescently labeled CTCs directly in vivo. In this work, we developed a green fluorescent protein (GFP)-compatible version of DiFC and used it to noninvasively monitor tumor cell numbers in circulation in a multiple myeloma (MM) disseminated xenograft mouse model. We show that DiFC allowed enumeration of CTCs in individual mice overtime during MM growth, with sensitivity below 1 CTC mL − 1 of peripheral blood. DiFC also revealed the presence of CTC clusters (CTCCs) in circulation to our knowledge for the first time in this model and allowed us to calculate CTCC size, frequency, and kinetics of shedding. We anticipate that the unique capabilities of DiFC will have many uses in preclinical study of metastasis, in particular, with a large number of GFP-expressing xenograft and transgenic mouse models.
循环肿瘤细胞 (CTCs) 在癌症研究中备受关注,因为它们在血源性转移中起着关键作用。我们最近开发了“弥散体内流动细胞术”(DiFC),这是一种用于在体内直接计数极其罕见的荧光标记 CTC 的临床前研究工具。在这项工作中,我们开发了一种绿色荧光蛋白 (GFP) 兼容的 DiFC 版本,并将其用于非侵入性监测多发性骨髓瘤 (MM) 弥散异种移植小鼠模型中循环中的肿瘤细胞数量。我们表明,DiFC 允许在 MM 生长过程中对单个小鼠的 CTC 进行随时间的计数,其外周血中的检测灵敏度低于 1 个 CTC mL-1。DiFC 还首次在该模型中显示了循环中 CTC 簇 (CTCC) 的存在,并使我们能够计算 CTCC 的大小、频率和脱落动力学。我们预计 DiFC 的独特功能将在转移的临床前研究中得到广泛应用,特别是在大量 GFP 表达的异种移植和转基因小鼠模型中。