Search bioRxiv⌕ Search

Biology subjects

Xi, E.

Publications and source records attributed to Xi, E..

2 recordsLinked to original sources

A human arteriovenous differentiation roadmap reveals vein developmental mechanisms and vascular effects of viruses

Extracellular signals and cell-fate trajectories during vein development remain elusive, despite trailblazing insights into artery development. Here we exploit human pluripotent stem cell differentiation and mouse embryology to present a model that answers longstanding questions: vein endothelial cell (EC) differentiation unfolds in two steps driven by opposing extracellular signals. First, VEGF differentiates mesoderm into "primed" ECs, newly-defined progenitors that co-express certain arterial (SOX17) and venous (APLNR) markers. Second, primed ECs execute vein differentiation upon VEGF/ERK inhibition; however, upon VEGF activation they can instead form artery ECs. The arteriovenous plasticity of primed ECs was supported by intersectional lineage tracing. Future venous genes including NR2F2 harbor poised chromatin in primed ECs, but are only transcribed upon VEGF/ERK inhibition. SOXF transcription factors, including SOX17, confer primed ECs with vein differentiation competence. Collectively, this two-step vein differentiation model--entailing primed EC intermediates and VEGF/ERK inhibition to trigger vein differentiation--has implications for VEGF-modulating therapies.

developmental biology↗

Genetic architecture of the developing forelegs of Drosophila prolongata; an exaggerated weapon and ornament

Extreme secondary sexual traits are some of the most striking phenotypes in nature. Studies on the genetics of these phenotypes have largely focused on within-species functional analyses of signalling pathways. Although useful, these do not provide insight into the evolutionary mechanisms that occur during the evolution of trait exaggeration. Drosophila prolongata offers an exceptional opportunity to explore the evolution of trait exaggeration, as it is the only species in the melanogaster species group with male-specific foreleg size exaggeration under both intra- and intersexual selection. Here, we used sex-specific RNA-seq from fore- and midleg tissues during early development and after initiation of sexually dimorphic growth between these tissues in D. prolongata. We also sampled the same developmental stages in D. carrolli ([~]4MYA divergence) and D. melanogaster ([~]20MYA). Using comparisons of gene expression between sexes, species, tissues, and developmental stages, we found a positive relationship between the number, but not the magnitude of differential expression of sex-biased genes, with the extent of phenotypic dimorphism. One gene with a large effect, grain, caused D. prolongata-like leg size phenotypes in D. melanogaster legs when knocked down. We further found only modest changes to magnitude and direction of expression differences in signalling pathways previously implicated in sexually dimorphic evolution. This suggests that these pathways regulating trait expression and dimorphism but may not be primary drivers of their phenotypic evolution. Significance statementHow sexes evolve distinct forms while developing from a shared genome continues to be incompletely resolved. We explore a sexually dimorphic exaggerated trait, enlarged forelegs in Drosophila prolongata, and compare changes in sex-biased gene expression between tissues and developmental stages in D. prolongata and two closely related species without foreleg exaggeration. We show that major developmental pathways dont appear to change substantially in their direction or magnitude of expression between species. We further show a transcription factor, grain, that when knocked-down, induces D. prolongata leg-like phenotypes in D. melanogaster at low penetrance. Our results suggest that despite large morphological differences and patterns of dimorphism, gene expression changes between the developing tissues may be more modest than previously thought.

evolutionary biology↗