Comparative Analysis of Single-Cell RNA Sequencing Methods with and without Sample Multiplexing

多路复用 计算生物学 联营 样品(材料) 生物 吞吐量 核糖核酸 解析 基因组学 单细胞分析 DNA测序 计算机科学 细胞 基因 遗传学 基因组 化学 人工智能 色谱法 无线 电信
作者
Yi Xie,Huimei Chen,Vasuki Ranjani Chellamuthu,Ahmad Lajam,Salvatore Albani,Andrea Hsiu Ling Low,Enrico Petretto,Jacques Behmoaras
出处
期刊:International Journal of Molecular Sciences [Multidisciplinary Digital Publishing Institute]
卷期号:25 (7): 3828-3828 被引量:17
标识
DOI:10.3390/ijms25073828
摘要

Single-cell RNA sequencing (scRNA-seq) has emerged as a powerful technique for investigating biological heterogeneity at the single-cell level in human systems and model organisms. Recent advances in scRNA-seq have enabled the pooling of cells from multiple samples into single libraries, thereby increasing sample throughput while reducing technical batch effects, library preparation time, and the overall cost. However, a comparative analysis of scRNA-seq methods with and without sample multiplexing is lacking. In this study, we benchmarked methods from two representative platforms: Parse Biosciences (Parse; with sample multiplexing) and 10x Genomics (10x; without sample multiplexing). By using peripheral blood mononuclear cells (PBMCs) obtained from two healthy individuals, we demonstrate that demultiplexed scRNA-seq data obtained from Parse showed similar cell type frequencies compared to 10x data where samples were not multiplexed. Despite relatively lower cell capture affecting library preparation, Parse can detect rare cell types (e.g., plasmablasts and dendritic cells) which is likely due to its relatively higher sensitivity in gene detection. Moreover, a comparative analysis of transcript quantification between the two platforms revealed platform-specific distributions of gene length and GC content. These results offer guidance for researchers in designing high-throughput scRNA-seq studies.
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