TY - JOUR
T1 - Multiscale 3D Genome Rewiring during Mouse Neural Development
AU - Bonev, Boyan
AU - Mendelson Cohen, Netta
AU - Szabo, Quentin
AU - Fritsch, Lauriane
AU - Papadopoulos, Giorgio L.
AU - Lubling, Yaniv
AU - Xu, Xiaole
AU - Lv, Xiaodan
AU - Hugnot, Jean Philippe
AU - Tanay, Amos
AU - Cavalli, Giacomo
N1 - Publisher Copyright: © 2017 The Author(s)
PY - 2017/10/19
Y1 - 2017/10/19
N2 - Chromosome conformation capture technologies have revealed important insights into genome folding. Yet, how spatial genome architecture is related to gene expression and cell fate remains unclear. We comprehensively mapped 3D chromatin organization during mouse neural differentiation in vitro and in vivo, generating the highest-resolution Hi-C maps available to date. We found that transcription is correlated with chromatin insulation and long-range interactions, but dCas9-mediated activation is insufficient for creating TAD boundaries de novo. Additionally, we discovered long-range contacts between gene bodies of exon-rich, active genes in all cell types. During neural differentiation, contacts between active TADs become less pronounced while inactive TADs interact more strongly. An extensive Polycomb network in stem cells is disrupted, while dynamic interactions between neural transcription factors appear in vivo. Finally, cell type-specific enhancer-promoter contacts are established concomitant to gene expression. This work shows that multiple factors influence the dynamics of chromatin interactions in development. An ultrahigh resolution Hi-C map of mouse neural differentiation yields insights into the multiple factors that influence the dynamics of chromatin interactions during development.
AB - Chromosome conformation capture technologies have revealed important insights into genome folding. Yet, how spatial genome architecture is related to gene expression and cell fate remains unclear. We comprehensively mapped 3D chromatin organization during mouse neural differentiation in vitro and in vivo, generating the highest-resolution Hi-C maps available to date. We found that transcription is correlated with chromatin insulation and long-range interactions, but dCas9-mediated activation is insufficient for creating TAD boundaries de novo. Additionally, we discovered long-range contacts between gene bodies of exon-rich, active genes in all cell types. During neural differentiation, contacts between active TADs become less pronounced while inactive TADs interact more strongly. An extensive Polycomb network in stem cells is disrupted, while dynamic interactions between neural transcription factors appear in vivo. Finally, cell type-specific enhancer-promoter contacts are established concomitant to gene expression. This work shows that multiple factors influence the dynamics of chromatin interactions in development. An ultrahigh resolution Hi-C map of mouse neural differentiation yields insights into the multiple factors that influence the dynamics of chromatin interactions during development.
UR - http://www.scopus.com/inward/record.url?scp=85031779520&partnerID=8YFLogxK
U2 - https://doi.org/10.1016/j.cell.2017.09.043
DO - https://doi.org/10.1016/j.cell.2017.09.043
M3 - مقالة
SN - 0092-8674
VL - 171
SP - 557-572.e24
JO - Cell
JF - Cell
IS - 3
ER -