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Maytum, A.

Publications and source records attributed to Maytum, A..

2 recordsLinked to original sources

Chromatin priming elements direct tissue-specific gene activity prior to hematopoietic specification

Tissue-specific gene regulation during development involves the interplay between transcription factors and epigenetic regulators binding to enhancer and promoter elements. The pattern of active enhancers defines the cellular differentiation state. However, developmental gene activation involves a previous step called chromatin priming which is not fully understood. We recently developed a genome-wide functional assay that allowed us to functionally identify enhancer elements integrated in chromatin regulating each of five stages spanning the in vitro differentiation of embryonic stem cells to blood. We also measured global chromatin accessibility, histone modifications and transcription factor binding. The integration of these data identified and characterised cis-regulatory elements which become activated prior to the onset of gene expression, some of which are primed in a signalling-dependent fashion. Deletion of such a priming element leads to a delay in the upregulation of its associated gene in development. Our work uncovers the details of a complex network of regulatory interactions with the dynamics of early chromatin opening being at the heart of dynamic tissue-specific gene expression control. Summary blurbIn this manuscript, we exploited a new dataset of functionally characterised enhancer elements active at five stages of differentiation from mouse embryonic stem cells to blood to determine the developmental stages at which these elements are being activated. We show that many enhancer elements are activated at the level of chromatin prior to the activation of their associated genes (priming), which can be associated with signalling events. Elimination of priming elements within a gene locus leads to a delay in cellular development.

genomics↗

A genome-wide relay of signalling-responsive enhancers drives hematopoietic specification

Developmental control of gene expression critically depends on distal cis-regulatory elements including enhancers which interact with promoters to activate gene expression. To date no global experiments have been conducted that identify their cell type and cell stage-specific transcription stimulatory activity within one developmental pathway and in a chromatin context. Here, we describe a high-throughput method that identifies thousands of differentially active cis-elements able to stimulate a minimal promoter at five stages of hematopoietic progenitor development from embryonic stem cells, which can be adapted to any ES cell derived cell type. Exploring this new resource, we show that blood cell-specific gene expression is controlled by the concerted action of thousands of differentiation stage-specific sets of cis-elements which respond to cytokine signals that terminate at signalling responsive transcription factors. Our work presents a major advance in our understanding of developmental gene expression control in the hematopoietic system and beyond.

genomics↗