Search bioRxiv⌕ Search

Biology subjects

Repouliou, A.

Publications and source records attributed to Repouliou, A..

2 recordsLinked to original sources

Protein sequence evolution underlies interspecies incompatibility of a cell fate determinant

Novel and rapidly evolving genes can integrate into conserved gene networks and play critical roles in development. Understanding how sequence variation across the orthologs of such genes influences functional interactions with the molecular products of older, more conserved genes requires investigation at the level of protein function. Here, we elucidate how protein-coding sequence evolution in oskar, a gene required for primordial germ cell specification and embryonic patterning in fruit flies, has led to functional incompatibility between orthologs from Drosophila melanogaster and Drosophila virilis. We generated chimeric versions of oskar comprising different combinations of Oskar protein domains from each species, expressed these chimeric oskar sequences in D. melanogaster, and quantified their ability to assemble functional germ line and abdominal patterning determinants (germ plasm). We found that a specific portion of D. virilis Oskar, namely the OSK domain, was primarily responsible for the cross-species incompatibility of Oskar. In the absence of endogenous D. melanogaster Oskar, chimeras containing the D. virilis OSK domain could not localize posterior germ plasm well enough to generate primordial germ cells, but were sufficient to specify the anteroposterior axis. We also found that the D. virilis OSK domain had dominant-negative effects on D. melanogaster Oskars ability to localize germ plasm mRNA, resulting in severe axial patterning defects. We propose that evolved changes in the biophysical properties of the OSK domain between species are linked to distinct molecular interactions with conserved germ plasm molecules. Under this hypothesis, an essential germ line determinant evolved to be incompatible across species of the same genus in less than 50 million years, while retaining functional within-species molecular interactions. This case study illustrates how investigating in vivo protein function can bridge genomic and molecular evolution with phenotypic variation and fitness at higher scales.

evolutionary biology↗

The LOTUS domain of Oskar promotes localisation of both protein and mRNA components of Drosophila germ plasm

Germ cells transmit genetic information to the next generation in multicellular organisms. In Drosophila melanogaster, germ cells are determined by germ plasm, a specialised cytoplasm assembled by the Oskar protein. The current view of the molecular mechanism of germ plasm assembly attributes recruitment of protein and mRNA germ plasm components to distinct domains of the Oskar protein, called the LOTUS and OSK domains respectively. However, most evidence for this model is based on in vitro studies. Here we test the ability of Oskar variants to assemble functional germ plasm in vivo. We found that Vasa recruitment was largely unperturbed by LOTUS deletion or mutations in vivo. In contrast, nanos and pgc mRNA recruitment was affected by LOTUS domain perturbations, despite the current model attributing mRNA recruitment to the distinct OSK domain. Taken together, these data suggest a revision of the prevailing modular view of Oskars structure-function mechanism.

developmental biology↗