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Khor, J. M.

Publications and source records attributed to Khor, J. M..

5 recordsLinked to original sources

A novel transgenic reporter to study vertebrate epigenetics

Epigenetic reprogramming contributes to the generation of cellular diversity during vertebrate development but the mechanisms directing this are still not well understood. Large-scale genetic screens have been highly successful in identifying epigenetic regulatory genes in invertebrates such as worms and flies, but similar large-scale genetic screens to identify epigenetic regulators have not been carried out in vertebrates. Here we report a newly generated "EpiTag" zebrafish transgenic reporter line that permits easy cellular-level visualization of epigenetic silencing or activation in living animals during development, gametogenesis, and regeneration. We use the EpiTag reporter to carry out an F3 ENU mutagenesis screen for epigenetic silencing or activating mutants, identifying relevant vertebrate tissue-specific epigenetic regulatory genes including a new epigenetic model for metabolic dysfunction-associated fatty liver disease (MAFLD). The EpiTag reporter line represents a powerful new tool for genetic and experimental analysis of tissue-specific epigenetic gene regulation in vertebrates. One Sentence SummaryEpiTag transgenic zebrafish provide a powerful new tool for visualizing and studying epigenetic regulation in living vertebrate animals.

genomics↗

Early epigenetic priming of regeneration studied with a novel transgenic epigenetic reporter

Tissue regeneration requires previously differentiated cells to regain developmental plasticity. However, the upstream mechanisms initiating this process remain poorly understood. Here, we leverage a novel "EpiTag" transgenic zebrafish reporter line that enables real-time visualization of epigenetic silencing and activation to identify and carry out a comprehensive multi-omics analysis of cells undergoing epigenetic reprogramming during caudal fin regeneration. EpiTag GFP expression is transiently activated in cells contributing to regeneration between 12 to 16 hours post amputation (hpa), preceding the expression of canonical blastema markers. Single-cell RNA-seq reveals that GFP+ cells are restricted to regeneration-competent lineages such as pre-osteoblasts, proliferating cells, and wound epithelium. Integrated bulk RNA-seq, time-course RNA-seq, ATAC-seq, and bisulfite-seq on FACS-isolated GFP+ cells uncovers an early gene expression module enriched for chromatin regulators and a late gene expression module enriched for morphogenesis genes. Chromatin accessibility and DNA methylation changes are strongly associated with these late-expressed genes, suggesting epigenetic priming. We identify a number of epigenetic factors upregulated in the early gene expression module and show that ruvbl1 and ruvbl2, components of ATP-dependent chromatin remodeling complexes, are required for proper regeneration in both adult fins and larval tails. Our results establish EpiTag transgenics as a powerful in vivo tool for studying epigenetic reprogramming and highlight early chromatin remodeling events that enable activation of regenerative gene expression programs.

genomics↗

Molecular compartmentalization in a syncytium: restricted mobility of proteins within the sea urchin skeletogenic mesenchyme

Multinucleated cells, or syncytia, are found in diverse taxa. Their biological function is often associated with the compartmentalization of biochemical or cellular activities within the syncytium. How such compartments are generated and maintained is poorly understood. The sea urchin embryonic skeleton is secreted by a syncytium, and local patterns of skeletal growth are associated with distinct sub-domains of gene expression within the syncytium. For such molecular compartments to be maintained and to control local patterns of skeletal growth: 1) the mobility of TFs must be restricted to produce stable differences in the transcriptional states of nuclei within the syncytium, and 2) the mobility of biomineralization proteins must also be restricted to produce regional differences in skeletal growth patterns. To test these predictions, we expressed fluorescently-tagged forms of transcription factors and biomineralization proteins in sub-domains of the skeletogenic syncytium. We found that both classes of proteins have restricted mobility within the syncytium and identified motifs that limit their mobility. Our findings have general implications for understanding the functional and molecular compartmentalization of syncytia. Summary statementTranscription factors and effector proteins have limited mobility within the skeletogenic syncytium of the sea urchin embryo.

developmental biology↗

An optimized Tet-On system for conditional control of gene expression in sea urchins

Sea urchins and other echinoderms are important experimental models for studying developmental processes. The lack of approaches for conditional gene perturbation, however, has made it challenging to investigate the late developmental functions of genes that have essential roles during early embryogenesis and genes that have diverse functions in multiple tissues. The doxycycline-controlled Tet-On system is a widely used molecular tool for temporally and spatially regulated transgene expression. Here, we optimized the Tet-On system to conditionally induce gene expression in sea urchin embryos. Using this approach, we explored the roles the MAPK signaling plays in skeletogenesis by expressing genes that perturb the pathway specifically in primary mesenchyme cells (PMCs) during later stages of development. We demonstrated the wide utility of the Tet-On system by applying it to a second sea urchin species and in cell types other than the PMCs. Our work provides a robust and flexible platform for the spatio-temporal regulation of gene expression in sea urchins, which will considerably enhance the utility of this prominent model system.

developmental biology↗

Architecture and evolution of the cis-regulatory system of the echinoderm kirrelL gene

The gene regulatory network (GRN) that underlies echinoderm skeletogenesis is a prominent model of GRN architecture and evolution. KirrelL is an essential downstream effector gene in this network and encodes an Ig-superfamily protein required for the fusion of skeletogenic cells and the formation of the skeleton. In this study, we dissected the transcriptional control region of the kirrelL gene of the purple sea urchin, Strongylocentrotus purpuratus. Using plasmid- and BAC-based transgenic reporter assays, we identified key cis-regulatory elements (CREs) and transcription factor inputs that regulate Sp-kirrelL, including direct, positive inputs from two key transcription factors in the skeletogenic GRN, Alx1 and Ets1. We next identified kirrelL cis-regulatory regions from seven other echinoderm species that together represent all classes within the phylum. By introducing these heterologous regulatory regions into developing sea urchin embryos we provide evidence of their remarkable conservation across ~500 million years of evolution. We dissected in detail the kirrelL regulatory region of the sea star, Patiria miniata, and demonstrated that it also receives direct inputs from Alx1 and Ets1. Our findings identify kirrelL as a component of the ancestral echinoderm skeletogenic GRN. They support the view that GRN sub-circuits, including specific transcription factor-CRE interactions, can remain stable over vast periods of evolutionary history. Lastly, our analysis of kirrelL establishes direct linkages between a developmental GRN and an effector gene that controls a key morphogenetic cell behavior, cell-cell fusion, providing a paradigm for extending the explanatory power of GRNs.

developmental biology↗