4.8 Article

Single-molecule imaging of transcription dynamics in somatic stem cells

Journal

NATURE
Volume 583, Issue 7816, Pages 431-+

Publisher

NATURE RESEARCH
DOI: 10.1038/s41586-020-2432-4

Keywords

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Funding

  1. Ruth L. Kirschstein National Research Service Award [F30GM122308-03]
  2. MSTP [T32GM007288-43, U01DA047729, R01CA217092]
  3. Albert Einstein Cancer Center core support grant [P30CA013330]
  4. Stem Cell Isolation and Xenotransplantation Core Facility (NYSTEM) of the Ruth L. and David S. Gottesman Institute for Stem Cell Research and Regenerative Medicine [C029154]

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Molecular noise is a natural phenomenon that is inherent to all biological systems(1,2). How stochastic processes give rise to the robust outcomes that support tissue homeostasis remains unclear. Here we use single-molecule RNA fluorescent in situ hybridization (smFISH) on mouse stem cells derived from haematopoietic tissue to measure the transcription dynamics of three key genes that encode transcription factors: PU.1 (also known as Spi1), Gata1 and Gata2. We find that infrequent, stochastic bursts of transcription result in the co-expression of these antagonistic transcription factors in the majority of haematopoietic stem and progenitor cells. Moreover, by pairing smFISH with time-lapse microscopy and the analysis of pedigrees, we find that although individual stem-cell clones produce descendants that are in transcriptionally related states-akin to a transcriptional priming phenomenon-the underlying transition dynamics between states are best captured by stochastic and reversible models. As such, a stochastic process can produce cellular behaviours that may be incorrectly inferred to have arisen from deterministic dynamics. We propose a model whereby the intrinsic stochasticity of gene expression facilitates, rather than impedes, the concomitant maintenance of transcriptional plasticity and stem cell robustness. Single-molecule fluorescence in situ hybridization and live-cell imaging are used to study the contribution of transcriptional noise to stem cell heterogeneity, revealing that stochastic transcription dynamics are conducive to concomitant stem-cell maintenance and tissue homeostasis.

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