Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Delphine Dauga is active.

Publication


Featured researches published by Delphine Dauga.


Genome Research | 2010

The ANISEED database: Digital representation, formalization, and elucidation of a chordate developmental program

Olivier Tassy; Delphine Dauga; Fabrice Daian; Daniel Sobral; François B. Robin; Pierre Khoueiry; David Salgado; Vanessa Fox; Danièle Caillol; Renaud Schiappa; Baptiste Laporte; Anne C. Rios; Guillaume Luxardi; Takehiro G. Kusakabe; Jean-Stéphane Joly; Sébastien Darras; Lionel Christiaen; Magali Contensin; Hélène Auger; Clément Lamy; Clare Hudson; Ute Rothbächer; Michael J. Gilchrist; Kazuhiro W. Makabe; Kohji Hotta; Shigeki Fujiwara; Nori Satoh; Yutaka Satou; Patrick Lemaire

Developmental biology aims to understand how the dynamics of embryonic shapes and organ functions are encoded in linear DNA molecules. Thanks to recent progress in genomics and imaging technologies, systemic approaches are now used in parallel with small-scale studies to establish links between genomic information and phenotypes, often described at the subcellular level. Current model organism databases, however, do not integrate heterogeneous data sets at different scales into a global view of the developmental program. Here, we present a novel, generic digital system, NISEED, and its implementation, ANISEED, to ascidians, which are invertebrate chordates suitable for developmental systems biology approaches. ANISEED hosts an unprecedented combination of anatomical and molecular data on ascidian development. This includes the first detailed anatomical ontologies for these embryos, and quantitative geometrical descriptions of developing cells obtained from reconstructed three-dimensional (3D) embryos up to the gastrula stages. Fully annotated gene model sets are linked to 30,000 high-resolution spatial gene expression patterns in wild-type and experimentally manipulated conditions and to 528 experimentally validated cis-regulatory regions imported from specialized databases or extracted from 160 literature articles. This highly structured data set can be explored via a Developmental Browser, a Genome Browser, and a 3D Virtual Embryo module. We show how integration of heterogeneous data in ANISEED can provide a system-level understanding of the developmental program through the automatic inference of gene regulatory interactions, the identification of inducing signals, and the discovery and explanation of novel asymmetric divisions.


Nature Biotechnology | 2008

Minimum information specification for in situ hybridization and immunohistochemistry experiments (MISFISHIE)

Eric W. Deutsch; Catherine A. Ball; Jules J. Berman; G. Steven Bova; Alvis Brazma; Roger E. Bumgarner; David N. Campbell; Helen C. Causton; Jeffrey H. Christiansen; Fabrice Daian; Delphine Dauga; Duncan Davidson; Gregory Gimenez; Young Ah Goo; Sean M. Grimmond; Thorsten Henrich; Bernhard G. Herrmann; Michael H. Johnson; Martin Korb; Jason C. Mills; Asa Oudes; Helen Parkinson; Laura E. Pascal; Nicolas Pollet; John Quackenbush; Mirana Ramialison; Martin Ringwald; David Salgado; Susanna-Assunta Sansone; Gavin Sherlock

One purpose of the biomedical literature is to report results in sufficient detail that the methods of data collection and analysis can be independently replicated and verified. Here we present reporting guidelines for gene expression localization experiments: the minimum information specification for in situ hybridization and immunohistochemistry experiments (MISFISHIE). MISFISHIE is modeled after the Minimum Information About a Microarray Experiment (MIAME) specification for microarray experiments. Both guidelines define what information should be reported without dictating a format for encoding that information. MISFISHIE describes six types of information to be provided for each experiment: experimental design, biomaterials and treatments, reporters, staining, imaging data and image characterizations. This specification has benefited the consortium within which it was developed and is expected to benefit the wider research community. We welcome feedback from the scientific community to help improve our proposal.


Genesis | 2015

Guidelines for the nomenclature of genetic elements in tunicate genomes

Alberto Stolfi; Yasunori Sasakura; Domitille Chalopin; Yutaka Satou; Lionel Christiaen; Christelle Dantec; Toshinori Endo; Magali Naville; Hiroki Nishida; Billie J. Swalla; Jean Nicolas Volff; Ayelet Voskoboynik; Delphine Dauga; Patrick Lemaire

Tunicates are invertebrate members of the chordate phylum, and are considered to be the sister group of vertebrates. Tunicates are composed of ascidians, thaliaceans, and appendicularians. With the advent of inexpensive high‐throughput sequencing, the number of sequenced tunicate genomes is expected to rise sharply within the coming years. To facilitate comparative genomics within the tunicates, and between tunicates and vertebrates, standardized rules for the nomenclature of tunicate genetic elements need to be established. Here we propose a set of nomenclature rules, consensual within the community, for predicted genes, pseudogenes, transcripts, operons, transcriptional cis‐regulatory regions, transposable elements, and transgenic constructs. In addition, the document proposes guidelines for naming transgenic and mutant lines. genesis 53:65–78, 2015.


Nucleic Acids Research | 2016

ANISEED 2015: a digital framework for the comparative developmental biology of ascidians

Matija Brozovic; Cyril Martin; Christelle Dantec; Delphine Dauga; Mickaël Mendez; Paul Simion; Madeline Percher; Baptiste Laporte; Celine Scornavacca; Anna Di Gregorio; Shigeki Fujiwara; Mathieu Gineste; Elijah K. Lowe; Jacques Piette; Claudia Racioppi; Filomena Ristoratore; Yasunori Sasakura; Naohito Takatori; C. Titus Brown; Frédéric Delsuc; Emmanuel J. P. Douzery; Carmela Gissi; Alex McDougall; Hiroki Nishida; Hitoshi Sawada; Billie J. Swalla; Hitoyoshi Yasuo; Patrick Lemaire

Ascidians belong to the tunicates, the sister group of vertebrates and are recognized model organisms in the field of embryonic development, regeneration and stem cells. ANISEED is the main information system in the field of ascidian developmental biology. This article reports the development of the system since its initial publication in 2010. Over the past five years, we refactored the system from an initial custom schema to an extended version of the Chado schema and redesigned all user and back end interfaces. This new architecture was used to improve and enrich the description of Ciona intestinalis embryonic development, based on an improved genome assembly and gene model set, refined functional gene annotation, and anatomical ontologies, and a new collection of full ORF cDNAs. The genomes of nine ascidian species have been sequenced since the release of the C. intestinalis genome. In ANISEED 2015, all nine new ascidian species can be explored via dedicated genome browsers, and searched by Blast. In addition, ANISEED provides full functional gene annotation, anatomical ontologies and some gene expression data for the six species with highest quality genomes. ANISEED is publicly available at: http://www.aniseed.cnrs.fr.


PLOS ONE | 2014

Ontology for the Asexual Development and Anatomy of the Colonial Chordate Botryllus schlosseri

Lucia Manni; Fabio Gasparini; Kohji Hotta; Katherine J. Ishizuka; Lorenzo Ricci; Stefano Tiozzo; Ayelet Voskoboynik; Delphine Dauga

Ontologies provide an important resource to integrate information. For developmental biology and comparative anatomy studies, ontologies of a species are used to formalize and annotate data that are related to anatomical structures, their lineage and timing of development. Here, we have constructed the first ontology for anatomy and asexual development (blastogenesis) of a bilaterian, the colonial tunicate Botryllus schlosseri. Tunicates, like Botryllus schlosseri, are non-vertebrates and the only chordate taxon species that reproduce both sexually and asexually. Their tadpole larval stage possesses structures characteristic of all chordates, i.e. a notochord, a dorsal neural tube, and gill slits. Larvae settle and metamorphose into individuals that are either solitary or colonial. The latter reproduce both sexually and asexually and these two reproductive modes lead to essentially the same adult body plan. The Botryllus schlosseri Ontology of Development and Anatomy (BODA) will facilitate the comparison between both types of development. BODA uses the rules defined by the Open Biomedical Ontologies Foundry. It is based on studies that investigate the anatomy, blastogenesis and regeneration of this organism. BODA features allow the users to easily search and identify anatomical structures in the colony, to define the developmental stage, and to follow the morphogenetic events of a tissue and/or organ of interest throughout asexual development. We invite the scientific community to use this resource as a reference for the anatomy and developmental ontology of B. schlosseri and encourage recommendations for updates and improvements.


CSH Protocols | 2011

Time-lapse imaging of live Phallusia embryos for creating 3D digital replicas.

François B. Robin; Delphine Dauga; Olivier Tassy; Daniel Sobral; Fabrice Daian; Patrick Lemaire

During embryonic development, cell behaviors that are tightly coordinated both spatially and temporally integrate at the tissue level and drive embryonic morphogenesis. Over the past 20 years, advances in imaging techniques, in particular, the development of confocal imaging, have opened a new world in biology, not only giving us access to a wealth of information, but also creating new challenges. It is sometimes difficult to make the best use of the recordings of the complex, inherently three-dimensional (3D) processes we now can observe. In particular, these data are often not directly suitable for even simple but conceptually fundamental quantifications. This article provides a method to fluorescently label and image structures of interest that will subsequently be reconstructed, such as cell membranes or nuclei. The protocol describes live imaging of Phallusia mammillata embryos, which are robust, colorless, and optically transparent with negligible autofluorescence. Their diameter ranges from 100 µm to 120 µm, which allows time-lapse microscopy of whole embryos using two-photon microscopy with a high-resolution objective. Although two-photon imaging is described in detail, any imaging technology that results in a z-stack may be used. The resulting image stacks can subsequently be digitalized and segmented to produce 3D embryo replicas that can be interfaced to a model organism database and used to quantify cell shapes.


CSH Protocols | 2011

Creating 3D digital replicas of ascidian embryos from stacks of confocal images.

François B. Robin; Delphine Dauga; Olivier Tassy; Daniel Sobral; Fabrice Daian; Patrick Lemaire

During embryonic development, cell behaviors that are tightly coordinated both spatially and temporally integrate at the tissue level and drive embryonic morphogenesis. Over the past 20 years, advances in imaging techniques, in particular, the development of confocal imaging, have opened a new world in biology, not only giving us access to a wealth of information, but also creating new challenges. It is sometimes difficult to make the best use of the recordings of the complex, inherently three-dimensional (3D) processes we now can observe. In particular, these data are often not directly suitable for even simple but conceptually fundamental quantifications. This article describes a process whereby image stacks gathered from live or fixed ascidian embryos are digitalized and segmented to produce 3D embryo replicas. These replicas can then be interfaced via a 3D Virtual Embryo module to a model organism database (Aniseed) that allows one to relate the geometrical properties of cells and cell contacts to additional parameters such as cell lineage, cell fates, or the underlying genetic program. Such an integrated system can serve several general purposes. First, it makes it possible to quantify and better understand the dynamics of cell behaviors during embryonic development, including, for instance, the automatic detection of asymmetric cell divisions or the evolution of cell contacts. Second, the 3D Virtual Embryo software proposes a panel of mathematical shape descriptors to precisely quantify cellular geometries and generate a 3D identity card for each embryonic cell. Such reconstructions open the door to a detailed 3D simulation of morphogenesis.


Nucleic Acids Research | 2018

ANISEED 2017: extending the integrated ascidian database to the exploration and evolutionary comparison of genome-scale datasets

Matija Brozovic; Christelle Dantec; Justine Dardaillon; Delphine Dauga; Emmanuel Faure; Mathieu Gineste; Alexandra Louis; Magali Naville; Kazuhiro R. Nitta; Jacques Piette; Wendy Reeves; Celine Scornavacca; Paul Simion; Renaud Vincentelli; Maelle Bellec; Sameh Ben Aicha; Marie Fagotto; Marion Gueroult-Bellone; Maximilian Haeussler; Edwin Jacox; Elijah K. Lowe; Mickaël Mendez; Alexis Roberge; Alberto Stolfi; Rui Yokomori; C. Titus Brown; Christian Cambillau; Lionel Christiaen; Frédéric Delsuc; Emmanuel J. P. Douzery

Abstract ANISEED (www.aniseed.cnrs.fr) is the main model organism database for tunicates, the sister-group of vertebrates. This release gives access to annotated genomes, gene expression patterns, and anatomical descriptions for nine ascidian species. It provides increased integration with external molecular and taxonomy databases, better support for epigenomics datasets, in particular RNA-seq, ChIP-seq and SELEX-seq, and features novel interactive interfaces for existing and novel datatypes. In particular, the cross-species navigation and comparison is enhanced through a novel taxonomy section describing each represented species and through the implementation of interactive phylogenetic gene trees for 60% of tunicate genes. The gene expression section displays the results of RNA-seq experiments for the three major model species of solitary ascidians. Gene expression is controlled by the binding of transcription factors to cis-regulatory sequences. A high-resolution description of the DNA-binding specificity for 131 Ciona robusta (formerly C. intestinalis type A) transcription factors by SELEX-seq is provided and used to map candidate binding sites across the Ciona robusta and Phallusia mammillata genomes. Finally, use of a WashU Epigenome browser enhances genome navigation, while a Genomicus server was set up to explore microsynteny relationships within tunicates and with vertebrates, Amphioxus, echinoderms and hemichordates.


CSH Protocols | 2011

Imaging of fixed ciona embryos for creating 3D digital replicas.

François B. Robin; Delphine Dauga; Olivier Tassy; Daniel Sobral; Fabrice Daian; Patrick Lemaire

During embryonic development, cell behaviors that are tightly coordinated both spatially and temporally integrate at the tissue level and drive embryonic morphogenesis. Over the past 20 years, advances in imaging techniques, in particular, the development of confocal imaging, have opened a new world in biology, not only giving us access to a wealth of information, but also creating new challenges. It is sometimes difficult to make the best use of the recordings of the complex, inherently three-dimensional (3D) processes we now can observe. In particular, these data are often not directly suitable for even simple but conceptually fundamental quantifications. This article presents a method for imaging embryonic development with cellular resolution in fixed ascidian embryos. A large fraction of the ascidian community primarily studies the development of the cosmopolitan ascidian Ciona intestinalis. Because the embryos of this species are insufficiently transparent and show significant autofluorescence, live imaging is difficult. Thus, whole embryos are fixed and optically cleared. They are then stained and imaged on a regular or two-photon confocal microscope. The resulting image stacks can subsequently be digitalized and segmented to produce 3D embryo replicas that can be interfaced to a model organism database and used to quantify cell shapes.


Genesis | 2015

Biocuration: A New Challenge for the Tunicate Community

Delphine Dauga

Collaboration


Dive into the Delphine Dauga's collaboration.

Top Co-Authors

Avatar

Fabrice Daian

Aix-Marseille University

View shared research outputs
Top Co-Authors

Avatar

Patrick Lemaire

University of Montpellier

View shared research outputs
Top Co-Authors

Avatar

Olivier Tassy

Stowers Institute for Medical Research

View shared research outputs
Top Co-Authors

Avatar

Daniel Sobral

Centre national de la recherche scientifique

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge