A single‐cell genomic strategy for alternative transcript start sites identification

Author:

Peng Yanling1,Huang Qitong12,Liu Danli1ORCID,Kong Siyuan1,Kamada Rui3,Ozato Keiko4,Zhang Yubo15,Zhu Jun6

Affiliation:

1. Animal Functional Genomics Group Shenzhen Branch Guangdong Laboratory for Lingnan Modern Agriculture Genome Analysis Laboratory of the Ministry of Agriculture Agricultural Genomics Institute at Shenzhen Chinese Academy of Agricultural Sciences Shenzhen China

2. Animal Breeding and Genomics Wageningen University & Research Wageningen Netherlands

3. Department of Chemistry Faculty of Science Hokkaido University Sapporo Japan

4. Division of Developmental Biology National Institute of Child Health and Human Development National Institutes of Health Bethesda Maryland USA

5. Kunpeng Institute of Modern Agriculture at Foshan Foshan China

6. DNA Sequencing and Genomics Core National Heart Lung, and Blood Institute National Institutes of Health Bethesda Maryland USA

Abstract

AbstractAlternative transcription start sites (TSSs) usage plays a critical role in gene transcription regulation in mammals. However, precisely identifying alternative TSSs remains challenging at the genome‐wide level. We report a single‐cell genomic technology for alternative TSSs annotation and cell heterogeneity detection. In the method, we utilize Fluidigm C1 system to capture individual cells of interest, SMARTer cDNA synthesis kit to recover full‐length cDNAs, then dual priming oligonucleotide system to specifically enrich TSSs for genomic analysis. We apply this method to a genome‐wide study of alternative TSSs identification in two different IFN‐β stimulated mouse embryonic fibroblasts (MEFs). The data clearly discriminate two IFN‐β stimulated MEFs. Moreover, our results indicate 81% expressed genes in these two cell types containing multiple TSSs, which is much higher than previous predictions based on Cap‐Analysis Gene Expression (CAGE) (58%) or empirical determination (54%) in various cell types. This indicates that alternative TSSs are more pervasive than expected and implies our strategy could position them at an unprecedented sensitivity. It would be helpful for elucidating their biological insights in future.

Funder

National Basic Research Program of China

National Natural Science Foundation of China

National Institute of Child Health and Human Development

China Postdoctoral Science Foundation

Publisher

Wiley

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