4.7 Article

Epigenetic silencing directs expression heterogeneity of stably integrated multi-transcript unit genetic circuits

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SCIENTIFIC REPORTS
卷 11, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41598-021-81975-1

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资金

  1. NIH [1DP2CA195763-01, R21CA219225]
  2. DOD [W81XWH-17-1-0522]
  3. Alliance for Regenerative Rehabilitation Research & Training (AR3T) - Eunice Kennedy Shriver National Institute of Child Health and Human Development (NICHD) of the National Institutes of Health [P2CHD086843]
  4. National Institute of Neurological Disorders and Stroke (NINDS) of the National Institutes of Health
  5. National Institute of Biomedical Imaging and Bioengineering (NIBIB) of the National Institutes of Health
  6. National Center for Research Resources and the National Center for Advancing Translational Sciences, National Institutes of Health [TL1TR001415]
  7. California Institute of Regenerative Medicine [EDUC 2-08383]

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Epigenetic silencing leads to loss of function in multi-transcript unit constructs integrated via CRISPR-Cas9. Expression heterogeneity is not correlated with sequence alteration but with chromosomal accessibility. Partial reversal of epigenetic silencing was achieved using small-molecule inhibitors.
We report that epigenetic silencing causes the loss of function of multi-transcript unit constructs that are integrated using CRISPR-Cas9. Using a modular two color reporter system flanked by selection markers, we demonstrate that expression heterogeneity does not correlate with sequence alteration but instead correlates with chromosomal accessibility. We partially reverse this epigenetic silencing via small-molecule inhibitors of methylation and histone deacetylation. We then correlate each heterogeneously-expressing phenotype with its expected epigenetic state by employing ATAC-seq. The stability of each expression phenotype is reinforced by selective pressure, which indicates that ongoing epigenetic remodeling can occur for over one month after integration. Collectively, our data suggests that epigenetic silencing limits the utility of multi-transcript unit constructs that are integrated via double-strand repair pathways. Our research implies that mammalian synthetic biologists should consider localized epigenetic outcomes when designing complex genetic circuits.

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