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Background Modeling Method to Identify Interactions Between Circulating Tumor Cells and Dendritic Cells

机译:背景建模方法鉴定循环肿瘤细胞与树突细胞之间的相互作用

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Interactions between dendritic cells (DCs) and circulating tumor cells (CTCs) have attracted wide attention in tumor immunity research, especially on specifically targeted tumors. However, feature extraction and noninvasive tracking of DCs and CTCs are challenges that have long existed in biomedicine. In this study, we developed an automatic algorithm for identifying, counting, tracking, and segmenting fluorescently-labeled CTCs and DCs from the blood vessels of mouse ears. For fluorescence imaging, we constructed an in vivo image flow cytometry system to capture dual-channel (green and red) fluorescence image sequence simultaneously. To achieve real-time functions for the CTCs and DCs, we developed a motion detection method based on codebook which first performs background modeling and then cone-shaped area search procedures for postprocessing. We validated this novel algorithm through in vivo image sequencing, through which we observed the interaction of CTCs and DCs. Moreover, we used quantitative colocalization to determine the relationship between CTCs and DCs. The quantitative results illustrated the interactions between CTCs and DCs, as did image sequences which are promising for driving research on cancer immunotherapy in the future.
机译:树突细胞(DCS)和循环肿瘤细胞(CTC)之间的相互作用引起了肿瘤免疫研究的广泛关注,特别是在特异性靶向肿瘤上。然而,DCS和CTC的特征提取和非侵入性跟踪是生物医学中长期存在的挑战。在这项研究中,我们开发了一种自动算法,用于从小鼠耳朵的血管识别,计数,跟踪和分割荧光标记的CTC和DCS的自动算法。对于荧光成像,我们构建了体内图像流式细胞术系统,同时捕获双通道(绿色和红色)荧光图像序列。为了实现CTCS和DCS的实时函数,我们开发了一种基于码本的运动检测方法,该方法首先执行后台建模,然后执行用于后处理的锥形区域搜索过程。我们通过体内图像测序验证了这种新颖算法,通过了,我们观察到CTCS和DCS的相互作用。此外,我们使用定量的分层化来确定CTC和DC之间的关系。定量结果说明了CTCS和DCS之间的相互作用,以及对未来癌症免疫疗法驾驶研究的相应性。

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