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Highly parallel and efficient single cell mRNA sequencing with paired picoliter chambers.


ABSTRACT: ScRNA-seq has the ability to reveal accurate and precise cell types and states. Existing scRNA-seq platforms utilize bead-based technologies uniquely barcoding individual cells, facing practical challenges for precious samples with limited cell number. Here, we present a scRNA-seq platform, named Paired-seq, with high cells/beads utilization efficiency, cell-free RNAs removal capability, high gene detection ability and low cost. We utilize the differential flow resistance principle to achieve single cell/barcoded bead pairing with high cell utilization efficiency (95%). The integration of valves and pumps enables the complete removal of cell-free RNAs, efficient cell lysis and mRNA capture, achieving highest mRNA detection accuracy (R?=?0.955) and comparable sensitivity. Lower reaction volume and higher mRNA capture and barcoding efficiency significantly reduce the cost of reagents and sequencing. The single-cell expression profile of mES and drug treated cells reveal cell heterogeneity, demonstrating the enormous potential of Paired-seq for cell biology, developmental biology and precision medicine.

SUBMITTER: Zhang M 

PROVIDER: S-EPMC7193604 | biostudies-literature | 2020 Apr

REPOSITORIES: biostudies-literature

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Highly parallel and efficient single cell mRNA sequencing with paired picoliter chambers.

Zhang Mingxia M   Zou Yuan Y   Xu Xing X   Zhang Xuebing X   Gao Mingxuan M   Song Jia J   Huang Peifeng P   Chen Qin Q   Zhu Zhi Z   Lin Wei W   Zare Richard N RN   Yang Chaoyong C  

Nature communications 20200430 1


ScRNA-seq has the ability to reveal accurate and precise cell types and states. Existing scRNA-seq platforms utilize bead-based technologies uniquely barcoding individual cells, facing practical challenges for precious samples with limited cell number. Here, we present a scRNA-seq platform, named Paired-seq, with high cells/beads utilization efficiency, cell-free RNAs removal capability, high gene detection ability and low cost. We utilize the differential flow resistance principle to achieve si  ...[more]

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