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Frankish, T.

Publications and source records attributed to Frankish, T..

2 recordsLinked to original sources

Convergent evolution of cluster-wide Hox gene regulation in Bilateria

The anteroposterior collinear expression of Hox genes is a hallmark of animal development that underpins the diversification of body plans1 and life cycles2. However, the origin and drivers of this coordinated expression remain elusive: while vertebrates rely on complex cluster-wide Hox gene regulation3-8, insects define gene-specific, sub-cluster regulatory domains9-11. Here, we discover a new mode of Hox gene regulation in segmented worms (Annelida). By combining chromatin conformation data with histone modifications profiling in Owenia fusiformis, we show that a large distal enhancer forms developmentally regulated, long-range contacts across the Hox cluster, and its activation coincides with the consolidation of a cluster-wide topologically associating domain (TAD), loss of Polycomb-mediated repression, and Hox gene transcription. This chromatin structure also occurs in the annelids Dimorphilus gyrociliatus and Capitella teleta, the latter showing additional subTAD structures that correlate with Hoxs temporal collinearity12. Moreover, related phyla with intact, organised Hox clusters and spatial collinearity, such as nemerteans and chitons, show annelid-like chromatin organisations, whereas phyla with disorganised13 Hox clusters do not. Coordinated Hox gene regulation from a "global control region" is thus ancestral to Lophotrochozoa, indicating that complex regulatory logics based on cluster-wide, long-range chromatin interactions with distal enhancers evolved convergently in vertebrates and spiralians.

developmental biology↗

A chromosome-level assembly and functional genomic resources for the model annelid Capitella teleta

BackgroundThe polychaete Capitella teleta is a commonly used annelid for studies in evolutionary developmental biology, comparative genomics, conservation, and ecotoxicology. Over a decade ago, it was the first polychaete to have its genome sequenced and assembled, contributing to pioneering studies that transformed our understanding of animal genomes and their evolution. However, this early resource is now outdated compared to current genome sequencing standards, limiting the use of modern functional genomic tools that could further our understanding of numerous biological processes. ResultsWe combine long-read and short-read sequencing with Hi-C chromatin conformation capture data to assemble the chromosome-level nuclear and mitochondrial genomes of the laboratory strain of C. teleta. This reference assembly more accurately reflects the expected genome size for this polychaete ([~]243.6 Mb) and contains a highly complete, evolutionarily conserved gene repertoire. Notably, the nuclear and mitochondrial genomes are heavily rearranged, indicating a decoupling between gene family repertoire and chromosomal evolution. The analyses of multi-omic datasets available for C. teleta, including developmental time courses of bulk and single-cell RNA-seq, ATAC-seq, and EM-seq, using the new reference assembly, resulted in a significant quality improvement, allowing us to identify new cell-type-specific gene markers and gain additional insights of biological relevance. Finally, we generated a publicly available genome browser that ensures all these resources are easily findable, accessible, interoperable, and reusable. ConclusionsOur study provides state-of-the-art genomic resources for the polychaete model C. teleta, addressing a pressing community need that will open new research opportunities in animal and genome evolution.

genomics↗