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Alonso Saiz, N.

Publications and source records attributed to Alonso Saiz, N..

2 recordsLinked to original sources

A dual role for CTCF in development

CTCF is an essential DNA binding protein whose absence leads to embryonic lethality. CTCF is primarily known for its role in 3D genome organization where its N-terminal domain interacts with cohesin to anchor chromatin loops. How CTCF facilitates proper embryonic development remains unclear, necessitating temporal control to resolve its stage-specific functions. By combining gastruloids, an in vitro model of embryonic development, with a degron system to rapidly deplete CTCF at defined timepoints, we show that early CTCF depletion impairs early gastruloid morphogenesis. Surprisingly, ATAC-seq and time-resolved RNA-seq revealed that differentiation was unaffected. CTCF binding is strongly enriched at promoters of downregulated genes. Re-expression of a CTCF variant with an N-terminal truncation, incapable of looping, was sufficient to rescue the expression of CTCF-promoter bound genes and the defects in morphogenesis. However, extended culture (up to 168 hours) of gastruloids reconstituted with N-terminal truncated CTCF led to their collapse. Our work shows that CTCF has a dual function in early mammalian development: at early stages CTCF regulates developmentally important genes through promoter binding, while at later stages its looping function is required for correct development. HighlightsO_LICTCF is essential for gastruloid morphogenesis but dispensable for cell differentiation C_LIO_LICTCF activates genes through promoter binding C_LIO_LICTCF promoter target regulation drives in vitro gastrulation C_LIO_LIPost-gastrulation development in vitro is driven by CTCFs looping function C_LI

genomics↗

ZNF143 is a transcriptional regulator of nuclear-encoded mitochondrial genes that acts independently of looping and CTCF

Gene expression is orchestrated by transcription factors, which function within the context of a three-dimensional genome. Zinc finger protein 143 (ZNF143/ZFP143) is a transcription factor that has been implicated in both gene activation and chromatin looping. To study the direct consequences of ZNF143/ZFP143 loss, we generated a ZNF143/ZFP143 degron line. Our results show that ZNF143/ZFP143 depletion has no effect on chromatin looping. Systematic analysis of ZNF143/ZFP143 occupancy data revealed that a commonly used antibody cross-reacts with CTCF, leading to its incorrect association with chromatin loops. Nevertheless, ZNF143/ZFP143 specifically activates nuclear-encoded mitochondrial genes and its loss leads to severe mitochondrial dysfunction. Using an in vitro embryo model, we find that ZNF143/ZFP143 is an essential regulator of organismal development. Our results establish ZNF143/ZFP143 as a conserved transcriptional regulator of cell proliferation and differentiation by safeguarding mitochondrial activity. HighlightsO_LIAcute degradation of ZFP143 leads to rapid and specific loss of gene transcription. C_LIO_LIMolecular consequences of ZFP143 loss are inconsistent with a role in chromatin looping. C_LIO_LIZFP143 is a conserved transcriptional regulator of nuclear-encoded mitochondrial proteins. C_LIO_LIZFP143 regulation of mitochondrial homeostasis is critical for multicellular organismal development. C_LI Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=200 SRC="FIGDIR/small/583864v1_ufig1.gif" ALT="Figure 1"> View larger version (59K): org.highwire.dtl.DTLVardef@1033b53org.highwire.dtl.DTLVardef@12bd81aorg.highwire.dtl.DTLVardef@178a813org.highwire.dtl.DTLVardef@62b7bf_HPS_FORMAT_FIGEXP M_FIG C_FIG

systems biology↗