VLDB 2026 Research / reviewers in the wild / expert
Corinne Biderre
dblp:83/507 · also Corinne Biderre-Petit
· DBLP profile ↗
3ranked-venue papers
0as first author
0since 2021 · last 2011
0000-0001-7962-4171ORCID · reported
Domains — the database's venue-derived domains; a paper can count in several
Applied, interdisciplinary, general and emerging computing · 3
Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.
| Interdisciplinary, comprehensive, and emerging computing
2 papers |
Bioinformatics and computational biology · 100% |
Topics — the 4 heaviest of 5, each with the papers that count most for it
| Topic | Weight | Papers | Last | Evidence papers |
|---|---|---|---|---|
Bioinformatics and computational biology
probe design |
0.1 | 1 | 2011 | HiSpOD: probe design for functional DNA microarrays · Bioinform. 2011 |
Bioinformatics and computational biology › computational microbiology › microbiome analysis
microbial community analysis |
0.1 | 2 | 2011 | PhylArray: phylogenetic probe design algorithm for microarray · Bioinform. 2007 HiSpOD: probe design for functional DNA microarrays · Bioinform. 2011 |
Bioinformatics and computational biology
metagenomics |
0.1 | 1 | 2007 | PhylArray: phylogenetic probe design algorithm for microarray · Bioinform. 2007 |
Bioinformatics and computational biology
phylogenetics |
0.0 | 1 | 2007 | PhylArray: phylogenetic probe design algorithm for microarray · Bioinform. 2007 |
Methods — techniques the papers use, named apart from their topics
similarity search · 0.1multiple sequence alignment · 0.1phylogenetic probe design · 0.1degenerate probe design · 0.1
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2011 | HiSpOD: probe design for functional DNA microarraysabstractMOTIVATION: The use of DNA microarrays allows the monitoring of the extreme microbial diversity encountered in complex samples like environmental ones as well as that of their functional capacities. However, no probe design software currently available is adapted to easily design efficient and explorative probes for functional gene arrays. RESULTS: We present a new efficient functional microarray probe design algorithm called HiSpOD (High Specific Oligo Design). This uses individual nucleic sequences or consensus sequences produced by multiple alignments to design highly specific probes. Indeed, to bypass crucial problem of cross-hybridizations, probe specificity is assessed by similarity search against a large formatted database dedicated to microbial communities containing about 10 million coding sequences (CDS). For experimental validation, a microarray targeting genes encoding enzymes involved in chlorinated solvent biodegradation was built. The results obtained from a contaminated environmental sample proved the specificity and the sensitivity of probes designed with the HiSpOD program. AVAILABILITY: http://fc.isima.fr/~g2im/hispod/. Eric Dugat-Bony, Mohieddine Missaoui, Eric Peyretaillade, Corinne Biderre, Ourdia Bouzid, Christophe Gouinaud, David R. C. Hill, Pierre Peyret |
Bioinform. | 4 |
| 2010 | Detecting variants with Metabolic Design, a new software tool to design probes for explorative functional DNA microarray developmentabstractBACKGROUND: Microorganisms display vast diversity, and each one has its own set of genes, cell components and metabolic reactions. To assess their huge unexploited metabolic potential in different ecosystems, we need high throughput tools, such as functional microarrays, that allow the simultaneous analysis of thousands of genes. However, most classical functional microarrays use specific probes that monitor only known sequences, and so fail to cover the full microbial gene diversity present in complex environments. We have thus developed an algorithm, implemented in the user-friendly program Metabolic Design, to design efficient explorative probes. RESULTS: First we have validated our approach by studying eight enzymes involved in the degradation of polycyclic aromatic hydrocarbons from the model strain Sphingomonas paucimobilis sp. EPA505 using a designed microarray of 8,048 probes. As expected, microarray assays identified the targeted set of genes induced during biodegradation kinetics experiments with various pollutants. We have then confirmed the identity of these new genes by sequencing, and corroborated the quantitative discrimination of our microarray by quantitative real-time PCR. Finally, we have assessed metabolic capacities of microbial communities in soil contaminated with aromatic hydrocarbons. Results show that our probe design (sensitivity and explorative quality) can be used to study a complex environment efficiently. CONCLUSIONS: We successfully use our microarray to detect gene expression encoding enzymes involved in polycyclic aromatic hydrocarbon degradation for the model strain. In addition, DNA microarray experiments performed on soil polluted by organic pollutants without prior sequence assumptions demonstrate high specificity and sensitivity for gene detection. Metabolic Design is thus a powerful, efficient tool that can be used to design explorative probes and monitor metabolic pathways in complex environments, and it may also be used to study any group of genes. The Metabolic Design software is freely available from the authors and can be downloaded and modified under general public license. Sébastien Terrat, Eric Peyretaillade, Olivier Gonçalves, Eric Dugat-Bony, Fabrice Gravelat, Anne Moné, Corinne Biderre, Delphine Boucher, Julien Troquet, Pierre Peyret |
BMC Bioinform. | 7 |
| 2007 | PhylArray: phylogenetic probe design algorithm for microarrayabstractMOTIVATION: Microbial diversity is still largely unknown in most environments, such as soils. In order to get access to this microbial 'black-box', the development of powerful tools such as microarrays are necessary. However, the reliability of this approach relies on probe efficiency, in particular sensitivity, specificity and explorative power, in order to obtain an image of the microbial communities that is close to reality. RESULTS: We propose a new probe design algorithm that is able to select microarray probes targeting SSU rRNA at any phylogenetic level. This original approach, implemented in a program called 'PhylArray', designs a combination of degenerate and non-degenerate probes for each target taxon. Comparative experimental evaluations indicate that probes designed with PhylArray yield a higher sensitivity and specificity than those designed by conventional approaches. Applying the combined PhyArray/GoArrays strategy helps to optimize the hybridization performance of short probes. Finally, hybridizations with environmental targets have shown that the use of the PhylArray strategy can draw attention to even previously unknown bacteria. Cécile Militon, Sébastien Rimour, Mohieddine Missaoui, Corinne Biderre, Vincent Barra, David R. C. Hill, Anne Moné, Geneviève Gagne, Harald Meier, Eric Peyretaillade, Pierre Peyret |
Bioinform. | 4 |