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Leslie-Clarkson, E. J.

Publications and source records attributed to Leslie-Clarkson, E. J..

4 recordsLinked to original sources

Conservation of transcriptional regulatory networks in zebrafish and human periderm facilitates identification of GRHL1 as an orofacial cleft risk gene

Most heritable risk for orofacial clefts (OFC) remains unassigned to specific genes or loci. IRF6 and GRHL3, two established OFC risk genes, encode transcription factors (TFs) essential for the differentiation of the periderm, a transient embryonic tissue required for secondary palate fusion. To identify novel risk candidates, we modeled the zebrafish periderm transcriptional regulatory network (TRN). Using single-cell multiome sequencing (RNA-seq and ATAC-seq) from shield-stage embryos, we inferred TF-to-target gene connections by integrating correlated gene expression with TF binding site predictions within chromatin elements open in periderm cells. We generated sets of gold-standard edges by conducting RNA-seq on TF-depleted embryos and ChIP-seq/CUT&RUN on wild-type embryos and used them to benchmark model performance. Within the top-performing model, zebrafish periderm modules are strongly preserved in human embryonic periderm and orthologs of human OFC-associated genes have higher centrality and edge-sum scores than non-associated genes. Functional validation confirmed the networks predictive power: depleting high-centrality TFs, including grhl1, klf6a, tead3b, and klf17, disrupted periderm differentiation in sensitized embryos. Moreover, analysis of whole-genome sequencing data from 2,415 OFC trios identified 15 individuals with rare or de novo GRHL1 variants, four of which introduced premature stop codons. This study establishes GRHL1 as a novel OFC risk gene and highlights the power of cross-species gene regulatory network analysis to prioritize candidates for rare variants in complex structural birth defects.

developmental biology↗

Zfp750 prevents oral adhesions and promotes temporary epithelial fusions

The differentiation cascade that converts basal keratinocytes into suprabasal layers, including periderm, depends on the activity of transcription factors. Mutations in the genes encoding many of these transcription factors, including TP63, IRF6 and GRHL3, disrupt periderm development. Such mutations can also interfere with embryonic fusion and septation events that depend on periderm development, including palatogenesis, digit separation and the formation of temporary epithelial fusions between digits, between eyelids, and between pinnae and the scalp. ZNF750 (Zfp750 in the mouse) is a transcription factor required for keratinocyte differentiation, but whether mutations in ZNF750 contribute risk for orofacial cleft, and the role of Zfp750 in periderm development, are unknown. To address these questions we sequenced ZNF750 in 5,659 individuals including 2,125 with nonsyndromic OFC. We identify 33 rare missense variants with frequencies less than 0.1% in gnomAD. Of these, about half are predicted to be damaging with in silico tools. Collectively, these missense variants are not overtransmitted from parents to children with OFCs. Two of the variants have lower activity than the reference variant in a zebrafish embryo-based assay but no phenotype in the corresponding murine model. However, in murine embryos homozygous for a frame-shift mutation in Zfp750 (Zfp750fs) that we generated, palatal shelves are fused but intra-oral adhesions are present, a phenotype seen in murine mutants of several bonafide OFC genes. In addition, temporary epithelial fusions are absent in Zfp750fs neonates. RNA sequencing of forelimbs from Zfp750fs embryos reveals decreased expression of epidermal terminal differentiation genes, and both increased and decreased expression of distinct periderm genes. Immunofluorescence shows the consistent presence of periderm proteins within the oral adhesions in Zfp750fs/fs embryos. Together these studies suggest that while mutations in ZNF750 are not a major contributor to OFC risk, Zfp750 does contribute to periderm-dependent morphogenic events.

genetics↗

The Genomic Architecture of Human DNA Replication Origins

The exact sites of DNA replication origins in human and other metazoans remain elusive. Examining human whole-genome sequencing data of 2,616 specimens, we observed conjoining reads at 2,025,756 non-random genomic positions, likely arising from nascent DNA and thus defining replication origins. These origins exhibited a 16 bp motif and periodic occurrence at the intervals of 10.5 bp and 200 bp. Genome-wide replication activity is related to the expression of DNA replication-related genes. Across the genome, DNA replication initiation is more active in early replicating regions, correlated with transcription activity in cis, enriched for de novo mutations and trait-associated polymorphisms. Our high-resolution mapping of human DNA replication origins points to molecular features that govern where and when replication begins in the genome.

cell biology↗

Cell Cycle Arrest of a "Zippering" Epithelial Cell Cluster Shapes the Face and is Disrupted in Craniofacial Disorders

Facial features identify individuals, but the mechanisms shaping the human face remain elusive. Orofacial clefting (OFC), the most common craniofacial abnormality, results from failed fusion of the facial prominences that is in part caused by persistence of the cephalic epithelium. Here we uncover the identity, behaviors, and molecular blueprints of a novel craniofacial epithelial population, the Zippering Lambda (ZL), which mediates prominence fusion and is characterized by cell cycle arrest in mouse and human embryos. Remarkably, cell cycle is unleashed in the ZL of Pbx1/2 and p63 mutant mice with OFC. Intersection of ZL-enriched genes with human OFC whole-genome sequencing datasets identifies ZFHX3 variants in affected individuals and cephalic epithelial Zfhx3 deletion causes murine OFC. ZFHX3 and PBX1 genetically interact and synergistically regulate cell cycle inhibitor genes within a complex in embryonic faces. Collectively, we deconstruct new mechanisms that pattern the face, connecting cell cycle arrest to developmental tissue fusion.

developmental biology↗