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Stefanaki, A.

Publications and source records attributed to Stefanaki, A..

2 recordsLinked to original sources

A TOMATO GENOME FROM THE ITALIAN RENAISSANCE PROVIDES INSIGHTS INTO COLUMBIAN AND PRE-COLUMBIAN EXCHANGE LINKS AND DOMESTICATION

AO_SCPLOWBSTRACTC_SCPLOWThe history of the tomatos interactions with humans spans both a pre-Columbian period of millennia of cultivation and domestication in South and Central America as well as the plants rise to becoming one of the worlds major cash crops following the arrival of Europeans in the Neotropics and the subsequent Columbian Exchange. In the process, the influence of successive regimes of artificial selection gave rise to an entangled species complex comprised of a wild ancestor and numerous cultivars exhibiting a great diversity of fruit phenotypes (often sorted in cherry and big types). Here, we provide a snapshot into these dynamics by presenting the ancient nuclear and plastid genomes of one of the oldest tomatoes still in existence: the almost half a millennium old En Tibi specimen from the Italian Renaissance. By placing the genome skimming data obtained from this specimen within the phylogenomic context of wild relatives and Neotropical tomato cultivars and land races, we are able to show that the most likely geographic origins of the specimens immediate ancestors, i.e. whence the exchange of this particular lineage originated, are around the Gulf of Mexico. We also show that this specimen was less inbred than present-day tomatoes, shedding light on the genomic signatures of historical domestication processes. Probing deeper into the ancestry that shaped extant genetic diversity within the complex, we reconstruct multiple ancestral populations with diffuse but distinct signatures in cherry and big tomatoes. The geographic structure of these ancestries within the nearest wild relative of tomatoes and the differential extent to which these ancestries are represented in domesticates points to early cultivation and human-assisted dispersal of tomatoes originating from the northern extreme of the natural range of the species. Our findings illustrate the inferences that can be drawn from ancient DNA extracted from herbarium specimens and historic plant collections. At the same time, we stress that our findings draw on multiple disciplines including ethnobotanical and historical research and on the (agri)cultural contributions of a variety of world cultures.

plant biology↗

ASC proneural transcription factors mediate the timely initiation of the neural program during neuroectodermal to neuroblast transition ensuring progeny fidelity

BackgroundASC/ASCL proneural transcription factors are oncogenic and exhibit impressive reprogramming and pioneer activities. In both Drosophila and mammals, these factors are central in the early specification of the neural fate, where they act in opposition to Notch signalling. However, the role of ASC on the chromatin during CNS neural stem cells birth remains elusive. ResultsWe investigated the chromatin changes accompanying neural commitment using an integrative genetics and genomics methodology. We found that ASC factors bind equally strongly to two distinct classes of cis-regulatory elements: open regions remodeled earlier during maternal to zygotic transition by Zelda and Zelda-independent, less accessible regions. Both classes cis-elements exhibit enhanced chromatin accessibility during neural specification and correlate with transcriptional regulation of genes involved in many biological processes necessary for neuroblast function. We identified an ASC-Notch regulated TF network that most likely act as the prime regulators of neuroblast function. Using a cohort of ASC target genes, we report that ASC null neuroblasts are defectively specified, remaining initially stalled, lacking expression of many proneural targets and unable to divide. When they eventually start proliferating, they produce compromised progeny. Generation of lacZ reporter lines driven by proneural-bound elements display enhancer activity within neuroblasts and proneural dependency. Therefore, the partial neuroblast identity seen in the absence of ASC genes is driven by other, proneural-independent, cis-elements. Neuroblast impairment and the late differentiation defects of ASC mutants are corrected by ectodermal induction of individual ASC genes but not by individual members of the TF network downstream of ASC. However, in wild type embryos induction of individual members of this network induces CNS hyperplasia, suggesting that they synergize with the activating function of ASC to establish the chromatin dynamics that promote neural specification. ConclusionASC factors bind a large number of enhancers to orchestrate the timely activation of the neural chromatin program during neuroectodermal to neuroblast transition. This early chromatin remodeling is crucial for both neuroblast homeostasis as well as future progeny fidelity.

developmental biology↗