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Single-cell analysis of transcription kinetics across the cell cycle.

Samuel O Skinner | Heng Xu | Sonal Nagarkar-Jaiswal | Pablo R Freire | Thomas P Zwaka | Ido Golding
eLife | 2016

Transcription is a highly stochastic process. To infer transcription kinetics for a gene-of-interest, researchers commonly compare the distribution of mRNA copy-number to the prediction of a theoretical model. However, the reliability of this procedure is limited because the measured mRNA numbers represent integration over the mRNA lifetime, contribution from multiple gene copies, and mixing of cells from different cell-cycle phases. We address these limitations by simultaneously quantifying nascent and mature mRNA in individual cells, and incorporating cell-cycle effects in the analysis of mRNA statistics. We demonstrate our approach on Oct4 and Nanog in mouse embryonic stem cells. Both genes follow similar two-state kinetics. However, Nanog exhibits slower ON/OFF switching, resulting in increased cell-to-cell variability in mRNA levels. Early in the cell cycle, the two copies of each gene exhibit independent activity. After gene replication, the probability of each gene copy to be active diminishes, resulting in dosage compensation.

Pubmed ID: 26824388

Research resources used in this publication

None found

Antibodies used in this publication

None found

Associated grants

  • Agency: NIGMS NIH HHS, United States
    Id: P01 GM081627
  • Agency: NIGMS NIH HHS, United States
    Id: R01 GM077442
  • Agency: NIGMS NIH HHS, United States
    Id: R01 GM082837
  • Agency: NIGMS NIH HHS, United States
    Id: P01 GM81627

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This is a list of tools and resources that we have found mentioned in this publication.


Ambion Inc. (tool)

RRID:SCR_008406

A division of Applied Biosystems selling products for the isolation, detection, quantification, amplification, and characterization of RNA.

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Washington University Basic Local Alignment Search Tool (tool)

RRID:SCR_008285

It is used to compare a novel sequence with those contained in nucleotide and protein databases by aligning the novel sequence with previously characterized genes.

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NIH 3T3 (tool)

RRID:CVCL_0594

Cell line NIH 3T3 is a Spontaneously immortalized cell line with a species of origin Mus musculus

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