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Biology subjects

Warfel, G.

Publications and source records attributed to Warfel, G..

2 recordsLinked to original sources

Genome-Wide Mapping of Major Histone Modifications Reveals Distinct Epigenetic Regulatory States in a Reef-Building Coral

Reef-building corals exhibit extensive physiological and transcriptional plasticity, yet the chromatin-level regulation of coral gene expression remains poorly characterized. Here, we generated the first genome-wide maps of major histone modifications in a reef-building coral by performing chromatin immunoprecipitation sequencing (ChIP-seq) in adult Pocillopora damicornis maintained under ambient conditions. We profiled two active marks, H3K4me3 and H3K27ac, and two repressive marks, H3K27me3 and H3K9me3, and integrated these maps with RNA sequencing (RNA-seq) to relate chromatin state to transcriptional output. As in other eukaryotes, H3K4me3 and H3K27ac were enriched around transcriptional start sites and positively associated with gene expression, whereas H3K27me3 and H3K9me3 showed broader enrichment patterns and were negatively associated with transcription. Partitioning highly expressed genes by promoter chromatin state revealed that promoters with strong H3K4me3/H3K27ac signal carried YY1-family motifs and served core cellular functions, while a second group enriched for cell-surface receptors and proteolysis lacked these active promoter marks and motif repertoire, despite similar transcript abundance. Repressive marks also distinguished functional genomic states: H3K27me3 was enriched over lowly expressed receptor-like and developmental gene classes, whereas H3K9me3 was prominent at transposable element-like loci and broad non-genic regions. We further identified H3K27ac-enriched, H3K4me3-low candidate enhancer-like elements proximal to core promoters, many near genes with transcription factor-related functions. Together, these results define a baseline chromatin-state landscape in reef-building corals, offering a resource for validating targeted chromatin assays and a foundation for future studies of coral gene regulation across environmental, developmental, and symbiotic contexts.

genomics↗

Bounded ecological memory in coral reefs: divergent demographic pathways under recurrent heatwaves and collapse under extreme thermal stress

Anthropogenic warming exposes coral reefs to recurrent marine heatwaves (MHWs), yet responses to comparable thermal stress remain highly variable. A central challenge is determining whether reduced bleaching reflects acclimatization-like persistence of existing colonies or mortality-driven filtering that produces demographically depleted assemblages. Using colony-level surveys across the Florida Reef Tract (2014-2023), we show bleaching sensitivity declined from 2014 through 2022, consistent with ecological memory. A spatial matched-event framework integrating bleaching severity and adult colony density resolved these reduced-bleaching outcomes into two distinct pathways: demographic persistence (stable/increasing density) and mortality-filtered tolerance (declining density). Persistence pathways were maintained under predictable exposure regimes characterized by lower interannual thermal variability. This persistence was driven by weedy life-history taxa (e.g., Porites spp.) replacing historical framework builders, indicating stability reflects ecological reassembly rather than uniform increases in thermal tolerance. Under the unprecedented extremes of the 2023 MHW, this acclimatization-like buffering broke down, causing widespread sensitization and collapse of previously persistent networks. These results support a bounded ecological memory framework; prior exposure reduces bleaching sensitivity under predictable thermal regimes but fails under extreme heat stress. Consequently, modern refugia are best defined by adult standing stock retention representing systems undergoing selective ecological reassembly rather than full functional recovery.

ecology↗