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Chen, M.-E.

Publications and source records attributed to Chen, M.-E..

3 recordsLinked to original sources

Global genomic diversity of the selfing nematode Caenorhabditis tropicalis correlates with geography

Self-fertilization reduces genetic diversity compared to outcrossing and hypothetically decreases the ability to adapt to diverse environments. Among Caenorhabditis nematodes, self-fertilization evolved three times independently in Caenorhabditis elegans, Caenorhabditis briggsae, and the more recently discovered Caenorhabditis tropicalis. To survey C. tropicalis genetic relatedness, the influence of geography and niche on species-wide variation, and the signatures of selection, we collected 785 wild strains, sequenced their genomes, and identified 622 distinct genotypes (isotypes). In contrast to C. elegans and C. briggsae, C. tropicalis relatedness shows substantial association with geography and no transcontinental selective sweeps or broadly sampled isotypes. Populations from the Hawaiian Islands or Taiwan harbor more genetic variation than populations from the Caribbean or Americas, suggesting a Pacific species origin similar to other members of the Elegans subclade. Punctuated genomic regions of extreme genetic variation pervade the genome. These hyper-divergent regions (HDRs) comprise less than 6% of the reference genome in any given strain despite harboring 73% of all variant sites and are enriched for genes likely involved in environmental adaptation. HDRs represent a shared genomic feature of self-fertilizing Caenorhabditis nematodes despite their independent evolutionary origins and suggest a mechanism to explain worldwide distributions despite low species-wide levels of genetic variation.

genomics↗

Brachiopod genome unveils the evolution of the BMP-Chordin network in bilaterian body patterning

Bone morphogenetic protein (BMP) signalling is crucial in regulating dorsal-ventral patterning and cell fate determination during early development in bilaterians. Interactions between BMP ligands and their main antagonist, Chordin, establish BMP gradients, subdivide embryos into distinct territories and organise body plans. However, the molecular control and evolutionary origins of dorsal-ventral patterning within spiralians, one of the three major bilaterian groups, have been obscured by their unique embryonic development. Here we present the chromosome-level genome of a spiralian with deuterostome-like development, the brachiopod Lingula anatina, and apply functional transcriptomics to study dorsal-ventral patterning under the control of BMP signalling. We uncover the presence of a dorsal-ventral BMP signalling gradient in the L. anatina gastrula with bmp2/4 and chordin expressed at its dorsal and ventral sides, respectively. Using small-molecule drugs, exogenous recombinant BMP proteins and RNA sequencing, we show that a high level of BMP pathway activation inhibits the expression of neural genes during gastrula and larval stages. We also show that BMP signalling splits the developing larval shell field into two valves. The discovery of a BMP-mediated dorsal-ventral patterning system in a spiralian, similar to those observed in deuterostomes and non-spiralian protostomes, suggests deep conservation of this mechanism across all three major bilaterian clades. This is further supported by striking similarities in the gene sets regulated by BMP signalling in brachiopods and the vertebrate model Xenopus. We argue that the spiralian ancestor retained the basal bilaterian mechanism of dorsal-ventral patterning, although downstream components of the BMP-Chordin network have undergone dynamic evolutionary changes.

evolutionary biology↗

Fusion, fission, and scrambling of the bilaterian genome in Bryozoa

Groups of orthologous genes are commonly found together on the same chromosome over vast evolutionary distances. This extensive physical gene linkage, known as macrosynteny, is seen between bilaterian phyla as divergent as Chordata, Echinodermata, Mollusca, and Nemertea. Here, we report a unique pattern of genome evolution in Bryozoa, an understudied phylum of colonial invertebrates. Using comparative genomics, we reconstruct the chromosomal evolutionary history of five bryozoans. Multiple ancient chromosome fusions followed by gene mixing led to the near-complete loss of bilaterian linkage groups in the ancestor of extant bryozoans. A second wave of rearrangements, including chromosome fission, then occurred independently in two bryozoan classes, further scrambling bryozoan genomes. We also discover at least five derived chromosomal fusion events shared between bryozoans and brachiopods, supporting the traditional but highly debated Lophophorata hypothesis. Finally, we show that chromosome fusion and fission processes led to the partitioning of genes from bryozoan Hox clusters onto multiple chromosomes. Our findings demonstrate that the canonical bilaterian genome structure has been lost across all studied representatives of an entire phylum; reveal that linkage group fission can occur very frequently in specific lineages; and provide a powerful source of phylogenetic information.

evolutionary biology↗