CTCF knockout in zebrafish induces alterations in regulatory landscapes and developmental gene expression

Coordinated chromatin interactions between enhancers and promoters are critical for gene regulation. The architectural protein CTCF mediates chromatin looping and is enriched at the boundaries of topologically associating domains (TADs), which are sub-megabase chromatin structures. In vitro CTCF dep...

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Published inNature communications Vol. 12; no. 1; p. 5415
Main Authors Franke, Martin, De la Calle-Mustienes, Elisa, Neto, Ana, Almuedo-Castillo, María, Irastorza-Azcarate, Ibai, Acemel, Rafael D., Tena, Juan J., Santos-Pereira, José M., Gómez-Skarmeta, José L.
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Abstract Coordinated chromatin interactions between enhancers and promoters are critical for gene regulation. The architectural protein CTCF mediates chromatin looping and is enriched at the boundaries of topologically associating domains (TADs), which are sub-megabase chromatin structures. In vitro CTCF depletion leads to a loss of TADs but has only limited effects over gene expression, challenging the concept that CTCF-mediated chromatin structures are a fundamental requirement for gene regulation. However, how CTCF and a perturbed chromatin structure impacts gene expression during development remains poorly understood. Here we link the loss of CTCF and gene regulation during patterning and organogenesis in a ctcf knockout zebrafish model. CTCF absence leads to loss of chromatin structure and affects the expression of thousands of genes, including many developmental regulators. Our results demonstrate the essential role of CTCF in providing the structural context for enhancer-promoter interactions, thus regulating developmental genes. CTCF is as an architectural protein involved in 3D genome folding; however its contribution to animal development has not been well characterized. Here the authors show that CTCF is not only pivotal for 3D chromatin structure and enhancer-promoter interactions in zebrafish, but it is also essential for controlling the expression of thousands of genes during development.
AbstractList Coordinated chromatin interactions between enhancers and promoters are critical for gene regulation. The architectural protein CTCF mediates chromatin looping and is enriched at the boundaries of topologically associating domains (TADs), which are sub-megabase chromatin structures. In vitro CTCF depletion leads to a loss of TADs but has only limited effects over gene expression, challenging the concept that CTCF-mediated chromatin structures are a fundamental requirement for gene regulation. However, how CTCF and a perturbed chromatin structure impacts gene expression during development remains poorly understood. Here we link the loss of CTCF and gene regulation during patterning and organogenesis in a ctcf knockout zebrafish model. CTCF absence leads to loss of chromatin structure and affects the expression of thousands of genes, including many developmental regulators. Our results demonstrate the essential role of CTCF in providing the structural context for enhancer-promoter interactions, thus regulating developmental genes.CTCF is as an architectural protein involved in 3D genome folding; however its contribution to animal development has not been well characterized. Here the authors show that CTCF is not only pivotal for 3D chromatin structure and enhancer-promoter interactions in zebrafish, but it is also essential for controlling the expression of thousands of genes during development.
Coordinated chromatin interactions between enhancers and promoters are critical for gene regulation. The architectural protein CTCF mediates chromatin looping and is enriched at the boundaries of topologically associating domains (TADs), which are sub-megabase chromatin structures. In vitro CTCF depletion leads to a loss of TADs but has only limited effects over gene expression, challenging the concept that CTCF-mediated chromatin structures are a fundamental requirement for gene regulation. However, how CTCF and a perturbed chromatin structure impacts gene expression during development remains poorly understood. Here we link the loss of CTCF and gene regulation during patterning and organogenesis in a ctcf knockout zebrafish model. CTCF absence leads to loss of chromatin structure and affects the expression of thousands of genes, including many developmental regulators. Our results demonstrate the essential role of CTCF in providing the structural context for enhancer-promoter interactions, thus regulating developmental genes.
CTCF is as an architectural protein involved in 3D genome folding; however its contribution to animal development has not been well characterized. Here the authors show that CTCF is not only pivotal for 3D chromatin structure and enhancer-promoter interactions in zebrafish, but it is also essential for controlling the expression of thousands of genes during development.
Coordinated chromatin interactions between enhancers and promoters are critical for gene regulation. The architectural protein CTCF mediates chromatin looping and is enriched at the boundaries of topologically associating domains (TADs), which are sub-megabase chromatin structures. In vitro CTCF depletion leads to a loss of TADs but has only limited effects over gene expression, challenging the concept that CTCF-mediated chromatin structures are a fundamental requirement for gene regulation. However, how CTCF and a perturbed chromatin structure impacts gene expression during development remains poorly understood. Here we link the loss of CTCF and gene regulation during patterning and organogenesis in a ctcf knockout zebrafish model. CTCF absence leads to loss of chromatin structure and affects the expression of thousands of genes, including many developmental regulators. Our results demonstrate the essential role of CTCF in providing the structural context for enhancer-promoter interactions, thus regulating developmental genes. CTCF is as an architectural protein involved in 3D genome folding; however its contribution to animal development has not been well characterized. Here the authors show that CTCF is not only pivotal for 3D chromatin structure and enhancer-promoter interactions in zebrafish, but it is also essential for controlling the expression of thousands of genes during development.
Abstract Coordinated chromatin interactions between enhancers and promoters are critical for gene regulation. The architectural protein CTCF mediates chromatin looping and is enriched at the boundaries of topologically associating domains (TADs), which are sub-megabase chromatin structures. In vitro CTCF depletion leads to a loss of TADs but has only limited effects over gene expression, challenging the concept that CTCF-mediated chromatin structures are a fundamental requirement for gene regulation. However, how CTCF and a perturbed chromatin structure impacts gene expression during development remains poorly understood. Here we link the loss of CTCF and gene regulation during patterning and organogenesis in a ctcf knockout zebrafish model. CTCF absence leads to loss of chromatin structure and affects the expression of thousands of genes, including many developmental regulators. Our results demonstrate the essential role of CTCF in providing the structural context for enhancer-promoter interactions, thus regulating developmental genes.
ArticleNumber 5415
Author Irastorza-Azcarate, Ibai
Santos-Pereira, José M.
Franke, Martin
Almuedo-Castillo, María
Neto, Ana
Gómez-Skarmeta, José L.
Tena, Juan J.
De la Calle-Mustienes, Elisa
Acemel, Rafael D.
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PublicationYear 2021
Publisher Nature Publishing Group UK
Nature Publishing Group
Nature Portfolio
Publisher_xml – name: Nature Publishing Group UK
– name: Nature Publishing Group
– name: Nature Portfolio
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Snippet Coordinated chromatin interactions between enhancers and promoters are critical for gene regulation. The architectural protein CTCF mediates chromatin looping...
Abstract Coordinated chromatin interactions between enhancers and promoters are critical for gene regulation. The architectural protein CTCF mediates chromatin...
CTCF is as an architectural protein involved in 3D genome folding; however its contribution to animal development has not been well characterized. Here the...
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SubjectTerms 14/19
38/91
45/15
631/208/135
631/208/200
631/337/100/101
64/116
Animals
Body Patterning - genetics
CCCTC-Binding Factor - deficiency
CCCTC-Binding Factor - genetics
Chromatin
Chromatin - genetics
Chromatin - metabolism
CRISPR-Cas Systems
Danio rerio
Depletion
Embryo, Nonmammalian - embryology
Embryo, Nonmammalian - metabolism
Enhancer Elements, Genetic - genetics
Enhancers
Gene expression
Gene Expression Regulation, Developmental
Gene Knockout Techniques - methods
Gene regulation
Genes
Genomes
Humanities and Social Sciences
multidisciplinary
Organogenesis
Organogenesis - genetics
Pattern formation
Promoter Regions, Genetic - genetics
Protein folding
Proteins
RNA-Seq - methods
Science
Science (multidisciplinary)
Zebrafish
Zebrafish - embryology
Zebrafish - genetics
Zebrafish Proteins - deficiency
Zebrafish Proteins - genetics
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Title CTCF knockout in zebrafish induces alterations in regulatory landscapes and developmental gene expression
URI https://link.springer.com/article/10.1038/s41467-021-25604-5
https://www.ncbi.nlm.nih.gov/pubmed/34518536
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https://pubmed.ncbi.nlm.nih.gov/PMC8438036
https://doaj.org/article/df452f901a8b424b89ef96928d45625f
Volume 12
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