Temporal Layering of Signaling Effectors Drives Chromatin Remodeling during Hair Follicle Stem Cell Lineage Progression.

TitleTemporal Layering of Signaling Effectors Drives Chromatin Remodeling during Hair Follicle Stem Cell Lineage Progression.
Publication TypeJournal Article
Year of Publication2018
AuthorsAdam RC, Yang H, Ge Y, Lien W-H, Wang P, Zhao Y, Polak L, Levorse J, Baksh SC, Zheng D, Fuchs E
JournalCell Stem Cell
Volume22
Issue3
Pagination398-413.e7
Date Published2018 03 01
ISSN1875-9777
KeywordsAcetylation, Animals, Base Sequence, Bone Morphogenetic Proteins, Cell Lineage, Chromatin, Chromatin Assembly and Disassembly, Enhancer Elements, Genetic, Hair Follicle, Histones, Lysine, Mice, Inbred C57BL, Phosphorylation, Regeneration, Signal Transduction, Smad1 Protein, Stem Cells, Time Factors, Transcription Factors, Wnt Signaling Pathway
Abstract

Tissue regeneration relies on resident stem cells (SCs), whose activity and lineage choices are influenced by the microenvironment. Exploiting the synchronized, cyclical bouts of tissue regeneration in hair follicles (HFs), we investigate how microenvironment dynamics shape the emergence of stem cell lineages. Employing epigenetic and ChIP-seq profiling, we uncover how signal-dependent transcription factors couple spatiotemporal cues to chromatin dynamics, thereby choreographing stem cell lineages. Using enhancer-driven reporters, mutagenesis, and genetics, we show that simultaneous BMP-inhibitory and WNT signals set the stage for lineage choices by establishing chromatin platforms permissive for diversification. Mechanistically, when binding of BMP effector pSMAD1 is relieved, enhancers driving HF-stem cell master regulators are silenced. Concomitantly, multipotent, lineage-fated enhancers silent in HF-stem cells become activated by exchanging WNT effectors TCF3/4 for LEF1. Throughout regeneration, lineage enhancers continue reliance upon LEF1 but then achieve specificity by accommodating additional incoming signaling effectors. Barriers to progenitor plasticity increase when diverse, signal-sensitive transcription factors shape LEF1-regulated enhancer dynamics.

DOI10.1016/j.stem.2017.12.004
Alternate JournalCell Stem Cell
PubMed ID29337183
PubMed Central IDPMC6425486
Grant ListR01 AR031737 / AR / NIAMS NIH HHS / United States
T32 GM007739 / GM / NIGMS NIH HHS / United States
/ HHMI / Howard Hughes Medical Institute / United States

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