Chakrabarti Kristi R, Andorko James I, Whipple Rebecca A, Zhang Peipei, Sooklal Elisabeth L, Martin Stuart S, Jewell Christopher M
Medical Scientist Training Program, University of Maryland School of Medicine, Baltimore, MD 21201, USA.
Graduate Program in Molecular Medicine, University of Maryland School of Medicine, Baltimore, MD 21201, USA.
Oncotarget. 2016 Mar 1;7(9):10486-97. doi: 10.18632/oncotarget.7251.
Free-floating tumor cells located in the blood of cancer patients, known as circulating tumor cells (CTCs), have become key targets for studying metastasis. However, effective strategies to study the free-floating behavior of tumor cells in vitro have been a major barrier limiting the understanding of the functional properties of CTCs. Upon extracellular-matrix (ECM) detachment, breast tumor cells form tubulin-based protrusions known as microtentacles (McTNs) that play a role in the aggregation and re-attachment of tumor cells to increase their metastatic efficiency. In this study, we have designed a strategy to spatially immobilize ECM-detached tumor cells while maintaining their free-floating character. We use polyelectrolyte multilayers deposited on microfluidic substrates to prevent tumor cell adhesion and the addition of lipid moieties to tether tumor cells to these surfaces through interactions with the cell membranes. This coating remains optically clear, allowing capture of high-resolution images and videos of McTNs on viable free-floating cells. In addition, we show that tethering allows for the real-time analysis of McTN dynamics on individual tumor cells and in response to tubulin-targeting drugs. The ability to image detached tumor cells can vastly enhance our understanding of CTCs under conditions that better recapitulate the microenvironments they encounter during metastasis.
癌症患者血液中游离的肿瘤细胞,即循环肿瘤细胞(CTCs),已成为研究转移的关键靶点。然而,体外研究肿瘤细胞游离行为的有效策略一直是限制我们理解CTCs功能特性的主要障碍。在脱离细胞外基质(ECM)后,乳腺肿瘤细胞会形成基于微管蛋白的突起,即微触手(McTNs),这些微触手在肿瘤细胞的聚集和重新附着中发挥作用,从而提高其转移效率。在本研究中,我们设计了一种策略,在保持肿瘤细胞游离特性的同时,将脱离ECM的肿瘤细胞进行空间固定。我们利用沉积在微流控基板上的聚电解质多层膜来防止肿瘤细胞黏附,并添加脂质部分,通过与细胞膜的相互作用将肿瘤细胞束缚在这些表面。这种涂层保持光学透明,能够捕获存活的游离细胞上McTNs的高分辨率图像和视频。此外,我们表明,束缚作用能够对单个肿瘤细胞上以及对微管蛋白靶向药物反应时的McTN动态进行实时分析。对脱离的肿瘤细胞进行成像的能力,可以极大地增强我们在更能模拟转移过程中它们所遇到的微环境的条件下对CTCs的理解。