Publications by authors named "Axel Visel"

Oral facial cleft (OFC) is a multifactorial disorder that can present as a cleft lip with or without cleft palate (CL/P) or a cleft palate only. Genome wide association studies (GWAS) of isolated OFC have identified common single nucleotide polymorphisms (SNPs) at the 1q32/ locus and many other loci where, like , the presumed OFC-relevant gene is expressed in embryonic oral epithelium. To identify the functional subset of SNPs at eight such loci we conducted a massively parallel reporter assay in a cell line derived from fetal oral epithelium, revealing SNPs with allele-specific effects on enhancer activity.

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Mammalian genomes contain millions of regulatory elements that control the complex patterns of gene expression. Previously, The ENCODE consortium mapped biochemical signals across many cell types and tissues and integrated these data to develop a Registry of 0.9 million human and 300 thousand mouse candidate cis-Regulatory Elements (cCREs) annotated with potential functions.

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Heterozygous truncating variants in the sarcomere protein titin (TTN) are the most common genetic cause of heart failure. To understand mechanisms that regulate abundant cardiomyocyte (CM) TTN expression, we characterized highly conserved intron 1 sequences that exhibited dynamic changes in chromatin accessibility during differentiation of human CMs from induced pluripotent stem cells (hiPSC-CMs). Homozygous deletion of these sequences in mice caused embryonic lethality, whereas heterozygous mice showed an allele-specific reduction in Ttn expression.

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While a rich set of putative cis-regulatory sequences involved in mouse fetal development have been annotated recently on the basis of chromatin accessibility and histone modification patterns, delineating their role in developmentally regulated gene expression continues to be challenging. To fill this gap, here we mapped chromatin contacts between gene promoters and distal sequences across the genome in seven mouse fetal tissues and across six developmental stages of the forebrain. We identified 248,620 long-range chromatin interactions centered at 14,138 protein-coding genes and characterized their tissue-to-tissue variations and developmental dynamics.

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Congenital heart defects (CHD) arise in part due to inherited genetic variants that alter genes and noncoding regulatory elements in the human genome. These variants are thought to act during fetal development to influence the formation of different heart structures. However, identifying the genes, pathways, and cell types that mediate these effects has been challenging due to the immense diversity of cell types involved in heart development as well as the superimposed complexities of interpreting noncoding sequences.

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Article Synopsis
  • In Finland, isolated cleft palate (CP) occurs more frequently than cleft lip with or without cleft palate (CL/P), which is the opposite trend seen in other European countries.
  • A genome-wide association study revealed a specific single nucleotide polymorphism (rs570516915) strongly linked to CP in the Finnish population, showing significant statistical results and confirmed in other cohorts.
  • The risk allele for rs570516915 disrupts a binding site for the IRF6 transcription factor, leading to decreased IRF6 expression, indicating that this genetic alteration may be a key factor in the mechanism causing CP.
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Transcription factors (TFs) bind combinatorially to cis-regulatory elements, orchestrating transcriptional programs. Although studies of chromatin state and chromosomal interactions have demonstrated dynamic neurodevelopmental cis-regulatory landscapes, parallel understanding of TF interactions lags. To elucidate combinatorial TF binding driving mouse basal ganglia development, we integrated chromatin immunoprecipitation sequencing (ChIP-seq) for twelve TFs, H3K4me3-associated enhancer-promoter interactions, chromatin and gene expression data, and functional enhancer assays.

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Regulatory elements (enhancers) are major drivers of gene expression in mammals and harbor many genetic variants associated with human diseases. Here, we present an updated VISTA Enhancer Browser (https://enhancer.lbl.

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Approximately a quarter of the human genome consists of gene deserts, large regions devoid of genes often located adjacent to developmental genes and thought to contribute to their regulation. However, defining the regulatory functions embedded within these deserts is challenging due to their large size. Here, we explore the cis-regulatory architecture of a gene desert flanking the Shox2 gene, which encodes a transcription factor indispensable for proximal limb, craniofacial, and cardiac pacemaker development.

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  • Transcription factor genes, crucial for cell development, have numerous enhancers that regulate their expression, particularly affecting brain development.
  • The study focused on the NR2F1 transcription factor, identifying six key enhancers linked to prenatal cortical development, some associated with mutations found in Autism Spectrum Disorder (ASD) individuals.
  • By deleting two strong enhancers, researchers discovered they have distinct but complementary roles in regional and cell layer expression in the developing cortex, highlighting their importance in fine-tuning brain development.
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Distant-acting enhancers are central to human development. However, our limited understanding of their functional sequence features prevents the interpretation of enhancer mutations in disease. Here, we determined the functional sensitivity to mutagenesis of human developmental enhancers .

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Article Synopsis
  • In Finland, isolated cleft palate (CP) occurs more frequently than cleft lip with or without cleft palate (CL/P), which is the opposite trend seen in other European nations.
  • A genome-wide association study identified a specific SNP (rs570516915) that is strongly linked to CP in the Finnish and Estonian populations.
  • This SNP disrupts a binding site for the transcription factor IRF6, leading to decreased enhancer activity and impaired autoregulation, which may contribute to the increased risk of CP.
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Chondrocyte differentiation controls skeleton development and stature. Here we provide a comprehensive map of chondrocyte-specific enhancers and show that they provide a mechanistic framework through which non-coding genetic variants can influence skeletal development and human stature. Working with fetal chondrocytes isolated from mice bearing a Col2a1 fluorescent regulatory sensor, we identify 780 genes and 2'704 putative enhancers specifically active in chondrocytes using a combination of RNA-seq, ATAC-seq and H3K27ac ChIP-seq.

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While most mammalian enhancers regulate their cognate promoters over moderate distances of tens of kilobases (kb), some enhancers act over distances in the megabase range. The sequence features enabling such extreme-distance enhancer-promoter interactions remain elusive. Here, we used enhancer replacement experiments in mice to show that short- and medium-range enhancers cannot initiate gene expression at extreme-distance range.

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During development, neural stem cells in the cerebral cortex, also known as radial glial cells (RGCs), generate excitatory neurons, followed by production of cortical macroglia and inhibitory neurons that migrate to the olfactory bulb (OB). Understanding the mechanisms for this lineage switch is fundamental for unraveling how proper numbers of diverse neuronal and glial cell types are controlled. We and others recently showed that Sonic Hedgehog (Shh) signaling promotes the cortical RGC lineage switch to generate cortical oligodendrocytes and OB interneurons.

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The symbiotic interaction of plants with arbuscular mycorrhizal (AM) fungi is ancient and widespread. Plants provide AM fungi with carbon in exchange for nutrients and water, making this interaction a prime target for crop improvement. However, plant-fungal interactions are restricted to a small subset of root cells, precluding the application of most conventional functional genomic techniques to study the molecular bases of these interactions.

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Remote enhancers are thought to interact with their target promoters via physical proximity, yet the importance of this proximity for enhancer function remains unclear. Here we investigate the three-dimensional (3D) conformation of enhancers during mammalian development by generating high-resolution tissue-resolved contact maps for nearly a thousand enhancers with characterized in vivo activities in ten murine embryonic tissues. Sixty-one percent of developmental enhancers bypass their neighboring genes, which are often marked by promoter CpG methylation.

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Article Synopsis
  • * Researchers combined various methods, including histone modification and single-cell analysis, to map out the regulatory elements involved in craniofacial development in both humans and mice.
  • * They identified 14,000 human craniofacial enhancers, with over half showing similar chromatin patterns in mice, creating a valuable resource for future genetics and developmental research.
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Mouse models are a critical tool for studying human diseases, particularly developmental disorders. However, conventional approaches for phenotyping may fail to detect subtle defects throughout the developing mouse. Here we set out to establish single-cell RNA sequencing of the whole embryo as a scalable platform for the systematic phenotyping of mouse genetic models.

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Abnormal expression of the transcriptional regulator and hedgehog (Hh) signaling pathway effector Gli3 is known to trigger congenital disease, most frequently affecting the central nervous system (CNS) and the limbs. Accurate delineation of the genomic cis-regulatory landscape controlling Gli3 transcription during embryonic development is critical for the interpretation of noncoding variants associated with congenital defects. Here, we employed a comparative genomic analysis on fish species with a slow rate of molecular evolution to identify seven previously unknown conserved noncoding elements (CNEs) in Gli3 intronic intervals (CNE15-21).

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  • Craniosynostosis is a congenital defect characterized by the early fusion of cranial sutures, affecting more than 1 in 2000 infants, which restricts brain growth.
  • The study hypothesizes that noncoding genomic regions linked to craniosynostosis harbor regulatory elements for the genes BMPER and BMP2, essential for skeletal development.
  • Researchers identified active enhancers related to these genes during craniofacial development, revealing a genetic mechanism for craniosynostosis and presenting a method to connect genetic associations to disease mechanisms for other complex conditions.
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The cell type-specific expression of key transcription factors is central to development and disease. Brachyury/T/TBXT is a major transcription factor for gastrulation, tailbud patterning, and notochord formation; however, how its expression is controlled in the mammalian notochord has remained elusive. Here, we identify the complement of notochord-specific enhancers in the mammalian Brachyury/T/TBXT gene.

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Metagenomes encode an enormous diversity of proteins, reflecting a multiplicity of functions and activities. Exploration of this vast sequence space has been limited to a comparative analysis against reference microbial genomes and protein families derived from those genomes. Here, to examine the scale of yet untapped functional diversity beyond what is currently possible through the lens of reference genomes, we develop a computational approach to generate reference-free protein families from the sequence space in metagenomes.

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Article Synopsis
  • Changes in gene expression are key to phenotypic innovation, but the details of how these changes occur and affect trait evolution are not well understood.
  • This study investigates the genetic mechanisms behind masculinizing ovotestes in female moles, focusing on the role of SALL1 expression and enhancer activity.
  • Findings reveal that while 3D organization of the SALL1 locus is conserved, there is a notable divergence in enhancer functionality, indicating that modifications in gene expression could explain how new traits evolve.
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Article Synopsis
  • The study addresses the unclear genetic factors behind craniofacial birth defects and facial shape variations, focusing on the role of distant-acting transcriptional enhancers in gene regulation during key developmental stages.
  • Researchers created a detailed catalogue of around 14,000 enhancers involved in human facial development by combining profiling of histone modifications and chromatin accessibility, along with single-cell analysis, across various embryonic stages.
  • The findings reveal that 56% of human craniofacial enhancers are conserved in mice, offering valuable insights for understanding the genetic underpinnings of craniofacial conditions and enhancing future studies in genetics and development.
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