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稀有细胞的高通量全长单细胞mRNA测序

High-throughput full-length single-cell mRNA-seq of rare cells.

作者信息

Ooi Chin Chun, Mantalas Gary L, Koh Winston, Neff Norma F, Fuchigami Teruaki, Wong Dawson J, Wilson Robert J, Park Seung-Min, Gambhir Sanjiv S, Quake Stephen R, Wang Shan X

机构信息

Department of Chemical Engineering, Stanford University, Stanford, California, United States of America.

Department of Bioengineering, Stanford University, Stanford, California, United States of America.

出版信息

PLoS One. 2017 Nov 29;12(11):e0188510. doi: 10.1371/journal.pone.0188510. eCollection 2017.

Abstract

Single-cell characterization techniques, such as mRNA-seq, have been applied to a diverse range of applications in cancer biology, yielding great insight into mechanisms leading to therapy resistance and tumor clonality. While single-cell techniques can yield a wealth of information, a common bottleneck is the lack of throughput, with many current processing methods being limited to the analysis of small volumes of single cell suspensions with cell densities on the order of 107 per mL. In this work, we present a high-throughput full-length mRNA-seq protocol incorporating a magnetic sifter and magnetic nanoparticle-antibody conjugates for rare cell enrichment, and Smart-seq2 chemistry for sequencing. We evaluate the efficiency and quality of this protocol with a simulated circulating tumor cell system, whereby non-small-cell lung cancer cell lines (NCI-H1650 and NCI-H1975) are spiked into whole blood, before being enriched for single-cell mRNA-seq by EpCAM-functionalized magnetic nanoparticles and the magnetic sifter. We obtain high efficiency (> 90%) capture and release of these simulated rare cells via the magnetic sifter, with reproducible transcriptome data. In addition, while mRNA-seq data is typically only used for gene expression analysis of transcriptomic data, we demonstrate the use of full-length mRNA-seq chemistries like Smart-seq2 to facilitate variant analysis of expressed genes. This enables the use of mRNA-seq data for differentiating cells in a heterogeneous population by both their phenotypic and variant profile. In a simulated heterogeneous mixture of circulating tumor cells in whole blood, we utilize this high-throughput protocol to differentiate these heterogeneous cells by both their phenotype (lung cancer versus white blood cells), and mutational profile (H1650 versus H1975 cells), in a single sequencing run. This high-throughput method can help facilitate single-cell analysis of rare cell populations, such as circulating tumor or endothelial cells, with demonstrably high-quality transcriptomic data.

摘要

单细胞表征技术,如mRNA测序,已被应用于癌症生物学的各种应用中,对导致治疗抗性和肿瘤克隆性的机制有了深入了解。虽然单细胞技术可以产生大量信息,但一个常见的瓶颈是通量不足,许多当前的处理方法仅限于分析小体积的单细胞悬浮液,细胞密度约为每毫升107个。在这项工作中,我们提出了一种高通量全长mRNA测序方案,该方案结合了磁筛和磁性纳米颗粒 - 抗体偶联物用于稀有细胞富集,以及用于测序的Smart-seq2化学方法。我们用模拟循环肿瘤细胞系统评估了该方案的效率和质量,即将非小细胞肺癌细胞系(NCI-H1650和NCI-H1975)加入全血中,然后通过EpCAM功能化磁性纳米颗粒和磁筛富集用于单细胞mRNA测序。我们通过磁筛获得了这些模拟稀有细胞的高效(> 90%)捕获和释放,并得到了可重复的转录组数据。此外,虽然mRNA测序数据通常仅用于转录组数据的基因表达分析,但我们展示了使用Smart-seq2等全长mRNA测序化学方法来促进表达基因的变异分析。这使得可以利用mRNA测序数据通过表型和变异谱来区分异质群体中的细胞。在全血中模拟的循环肿瘤细胞异质混合物中,我们利用这个高通量方案在一次测序运行中通过细胞表型(肺癌细胞与白细胞)和突变谱(H1650细胞与H1975细胞)来区分这些异质细胞。这种高通量方法有助于促进对稀有细胞群体,如循环肿瘤细胞或内皮细胞的单细胞分析,并能产生高质量的转录组数据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/758e/5706670/b3fe69bcbbdc/pone.0188510.g001.jpg

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