Yang Bai, Zhiwen Zheng, Zhaoxin Nie, Jialu Li, Zhihong Zhang, Xuexin Duan
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Through this mechanism, the shear forces on the tissue are enhanced, facilitating rapid and efficient dissociation while safeguarding cell integrity. We have further developed an automated tissue dissociation apparatus that integrates dissociation, fluid replacement, filtration, and output functions. Our comprehensive experiments on human renal cancer tissue dissociation, including flow cytometry, primary cell culture, immunofluorescence, and single-cell RNA sequencing, clearly demonstrate that Hypersonic Levitation and Spinning method not only greatly outperforms traditional techniques in tissue utilization (90% in 15 minutes vs. 70% in 60 minutes) and dissociation rate but also excels in maintaining high cell viability (92.3%) and preserving rare cell populations. 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引用次数: 0
摘要
在单细胞分析领域,有效的组织分离是一个基石,但往往受到传统方法的缺点阻碍。机械和酶解方法的缺点是处理时间长,细胞活力降低,以及稀有细胞群的损失。在此,我们介绍了一种革命性的组织分离方法,高超声速悬浮和旋转(HLS),它利用了一种独特设计的三声谐振器探针。该探针使目标组织样品能够悬浮并在受限流场中执行“按压和旋转”操作,产生微尺度的“液体射流”,以非接触的方式施加精确的水动力。通过这种机制,组织上的剪切力被增强,促进快速有效的解离,同时保护细胞的完整性。我们进一步开发了一种自动组织分离装置,集成了分离,流体替换,过滤和输出功能。我们对人肾癌组织解离的综合实验,包括流式细胞术、原代细胞培养、免疫荧光和单细胞RNA测序,清楚地表明高超声速悬浮和旋转方法不仅在组织利用率(15分钟90% vs 60分钟70%)和解离率方面大大优于传统技术,而且在保持高细胞活力(92.3%)和保存稀有细胞群方面也表现出色。这种非接触、温和而高效的解离方法在细胞生物学、单细胞测序、精准医学等多个领域有着巨大的应用前景,扩大了组织解离技术及其应用的范围。
Hypersonic levitation and spinning: paving the way for enhanced single-cell analysis via contactless tissue dissociation.
In the realm of single-cell analysis, effective tissue dissociation is a cornerstone yet often hampered by the drawbacks of traditional methods. Mechanical and enzymatic dissociation methods suffer from long processing times, reduced cell viability, and the loss of rare cell populations. Herein, we introduce a revolutionary tissue dissociation approach, Hypersonic Levitation and Spinning (HLS), which capitalizes on a uniquely designed triple-acoustic resonator probe. This probe enables the target tissue sample to levitate and execute a 'press-and-rotate' operation within a confined flow field, generating microscale 'liquid jets' that exert precise hydrodynamic forces in a non-contact manner. Through this mechanism, the shear forces on the tissue are enhanced, facilitating rapid and efficient dissociation while safeguarding cell integrity. We have further developed an automated tissue dissociation apparatus that integrates dissociation, fluid replacement, filtration, and output functions. Our comprehensive experiments on human renal cancer tissue dissociation, including flow cytometry, primary cell culture, immunofluorescence, and single-cell RNA sequencing, clearly demonstrate that Hypersonic Levitation and Spinning method not only greatly outperforms traditional techniques in tissue utilization (90% in 15 minutes vs. 70% in 60 minutes) and dissociation rate but also excels in maintaining high cell viability (92.3%) and preserving rare cell populations. This non-contact, gentle yet highly efficient dissociation method holds immense promise in diverse fields such as cell biology, single-cell sequencing, and precision medicine, expanding the scope of tissue dissociation technology and its applications.