PO.CL01.22 · 临床研究

并行微流控平台实现口咽癌p16+循环肿瘤细胞的高效无标记捕获

Parallel microfluidic platform enables efficient label-free capture of p16+ circulating tumor cells in oropharyngeal cancer

海报缩略图:并行微流控平台实现口咽癌p16+循环肿瘤细胞的高效无标记捕获
编号 1072 展板 12 时间 4/19 02:00–05:00 区域 Section 42 主讲 Ian Papautsky, PhD
分会场 Circulating Tumor Cells, Metastasis, and Dissemination Biology 1
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作者与单位 Authors & Affiliations

Chameera E. Weeramange1, Jian Zhou2, Sreedevi Damodaran1, Chiara F. Ghera3, Lizbeth Kenny4, Brett Hughes4, Sarju Vasani5, Omar Breik6, Rahul Ladwa7, Ian Papautsky3, Chamindie Punyadeera1

1Institute for Biomedicine and Glycomics, Griffith University, Nathan, Australia,2Rush University Medical Center, Chicago, IL,3University of Illinois Chicago, Chicago, IL,4Cancer Care Services, Royal Brisbane and Women’s Hospital, Herston, Australia,5Otolaryngology, Royal Brisbane and Women’s Hospital, Herston, Australia,6Oral and Maxillofacial Surgery, Royal Brisbane and Women’s Hospital, Herston, Australia,7Cancer Care Services, Princess Alexandra Hospital, Woolloongabba, Australia

摘要 Abstract

中文摘要
循环肿瘤细胞(CTCs)因其在转移中的作用,是用于癌症检测及监测的具有临床意义的生物标志物。然而,其在外周血中的极度稀有性及表型异质性,尤其是在上皮-间质转化(EMT)之后,对可靠分离构成了挑战。传统的依赖表位的捕获方法常无法检测间质样CTCs。无标记微流控平台通过利用尺寸及可变形性等生物物理特性,提供了一种有前景的替代方案。在我们前期工作的基础上,我们开发了一种高通量多流微流控(MFM)器件,用于从临床相关血量中分离多样化的CTCs,重点关注口咽癌(OPC),其CTCs表现出有利于惯性分离的尺寸特征。使用干膜光刻及PDMS模塑制造了包含六个惯性分离通道的并行微流控器件。构建了两个版本:芯片A(长20 mm)及芯片B(长25 mm),两者横截面均为150 μm x 50 μm。使用荧光微粒(10.3、15.5及18.7 μm)及头颈癌细胞系CAL27、SCC9和HPV16阳性SCC2评估器件性能。样本以600 μL/min处理,缓冲液流速为1.2 mL/min。通过高内涵成像及免疫荧光评估细胞回收率及纯度。通过qPCR定量SCC2 DNA富集。临床验证纳入20例p16+口咽癌患者。与早期单通道设计相比,MFM器件的通量提高了5倍,同时保持了高分离效率。芯片A(约14 μm截止值)回收了90-94%的CAL27及SCC9细胞,白细胞(WBC)污染<17%。芯片B(约12 μm截止值)将回收率提高至92%-97%,但WBC残留略高。对HPV16阳性SCC2细胞的PCR分析证实CTC组分中肿瘤DNA富集>35倍。在临床样本中,60%的OPC患者检测到CTCs,包括上皮型、间质样及CK/CSV双阳性表型。值得注意的是,提示部分EMT的CK/CSV双阳性CTCs在25%的患者中被观察到。14例患者中有4例的CTCs观察到p16表达,提示可能与肿瘤HPV状态一致。该器件保持了细胞完整性,可进行下游分子分析。并行MFM平台能够从临床相关血量中稳健、无标记地分离表型多样的CTCs。其检测EMT相关表型及HPV16/p16表达的能力支持其在头颈肿瘤学中的应用价值。与qPCR等分子工作流程的兼容性及在OPC患者中成功的临床验证,凸显了其在液体活检应用(包括疾病监测及精准肿瘤学)中的转化潜力。
查看英文原文 English abstract
Circulating tumor cells (CTCs) are clinically significant biomarkers for cancer detection and monitoring due to their role in metastasis. However, their extreme rarity in peripheral blood and phenotypic heterogeneity, particularly following epithelial-to-mesenchymal transition (EMT), pose challenges for reliable isolation. Conventional epitope-dependent capture methods often fail to detect mesenchymal-like CTCs. Label-free microfluidic platforms offer a promising alternative by exploiting biophysical properties such as size and deformability. Building on our prior work, we developed a high-throughput multi-flow microfluidic (MFM) device to isolate diverse CTCs from clinically relevant blood volumes, with a focus on oropharyngeal cancer (OPC), where CTCs exhibit favorable size characteristics for inertial separation. A parallel microfluidic device comprising six inertial separation channels was fabricated using dry film photolithography and PDMS molding. Two versions were constructed: Chip A (20 mm in length) and Chip B (25 mm in length), both with a 150 µm x 50 µm cross-section. Device performance was evaluated using fluorescent microparticles (10.3, 15.5, and 18.7 µm) and head and neck cancer cell lines CAL27, SCC9, and HPV16-positive SCC2. Samples were processed at 600 µL/min with a buffer flow of 1.2 mL/min. Cell recovery and purity were assessed by high-content imaging and immunofluorescence. SCC2 DNA enrichment was quantified by qPCR. Clinical validation involved 20 p16+ oropharyngeal cancer patients. The MFM device achieved a 5-fold increase in throughput compared to the earlier single-channel design, while maintaining high separation efficiency. Chip A (~14 µm cutoff) recovered 90-94% of CAL27 and SCC9 cells with <17% WBC contamination. Chip B (~12 µm cutoff) improved recovery to 92%-97%, but with slightly higher WBC carryover. PCR analysis of HPV16-positive SCC2 cells confirmed >35-fold enrichment of tumor DNA in the CTC fraction. In clinical samples, CTCs were detected in 60% of OPC patients, including epithelial, mesenchymal-like, and dual CK/CSV-positive phenotypes. Notably, dual CK/CSV-positive CTCs, indicative of partial EMT, were observed in 25% of patients. p16 expression was observed in CTCs from 4 of 14 patients, suggesting potential concordance with tumor HPV status. The device preserved cell integrity, enabling downstream molecular analysis. The parallel MFM platform enables robust, label-free isolation of phenotypically diverse CTCs from clinically relevant blood volumes. Its ability to detect EMT-associated phenotypes and HPV16/p16 expression supports its utility in head and neck oncology. Compatibility with molecular workflows such as qPCR and successful clinical validation in OPC patients highlight its translational potential for liquid biopsy applications, including disease monitoring and precision oncology.
利益披露 Disclosure
C. E. Weeramange, None.. J. Zhou, None.. S. Damodaran, None.. C. F. Ghera, None.. L. Kenny, None.. B. Hughes, None.. S. Vasani, None.. O. Breik, None.. R. Ladwa, None.. I. Papautsky, None.. C. Punyadeera, None.

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