Dynamic spreading of chromatin-mediated gene silencing and reactivation between neighboring genes in single cells

Author:

Lensch Sarah1ORCID,Herschl Michael H2,Ludwig Connor H1,Sinha Joydeb3,Hinks Michaela M1,Mukund Adi4ORCID,Fujimori Taihei1,Bintu Lacramioara1ORCID

Affiliation:

1. Department of Bioengineering, Stanford University

2. University of California, Berkeley—University of California, San Francisco Graduate Program in Bioengineering

3. Department of Chemical and Systems Biology, Stanford University

4. Biophysics Program, Stanford University

Abstract

In mammalian cells genes that are in close proximity can be transcriptionally coupled: silencing or activating one gene can affect its neighbors. Understanding these dynamics is important for natural processes, such as heterochromatin spreading during development and aging, and when designing synthetic gene regulation circuits. Here, we systematically dissect this process in single cells by recruiting and releasing repressive chromatin regulators at dual-gene synthetic reporters, and measuring how fast gene silencing and reactivation spread as a function of intergenic distance and configuration of insulator elements. We find that silencing by KRAB, associated with histone methylation, spreads between two genes within hours, with a time delay that increases with distance. This fast KRAB-mediated spreading is not blocked by the classical cHS4 insulators. Silencing by histone deacetylase HDAC4 of the upstream gene can also facilitate background silencing of the downstream gene by PRC2, but with a days-long delay that does not change with distance. This slower silencing can sometimes be stopped by insulators. Gene reactivation of neighboring genes is also coupled, with strong promoters and insulators determining the order of reactivation. Our data can be described by a model of multi-gene regulation that builds upon previous knowledge of heterochromatin spreading, where both gene silencing and gene reactivation can act at a distance, allowing for coordinated dynamics via chromatin regulator recruitment.

Funder

Burroughs Wellcome Fund

NIH Office of the Director

Japan Society for the Promotion of Science

National Science Foundation

Stanford University

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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