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Jean Garnier

Publications and source records attributed to Jean Garnier.

4 recordsLinked to original sources

ROC and confusion analysis of structure comparison methods identify the main causes of divergence from manual protein classification.

BACKGROUND: Current classification of protein folds are based, ultimately, on visual inspection of similarities. Previous attempts to use computerized structure comparison methods show only partial agreement with curated databases, but have failed to provide detailed statistical and structural analysis of the causes of these divergences. RESULTS: We construct a map of similarities/dissimilarities among manually defined protein folds, using a score cutoff value determined by means of the Receiver Operating Characteristics curve. It identifies folds which appear to overlap or to be "confused" with each other by two distinct similarity measures. It also identifies folds which appear inhomogeneous in that they contain apparently dissimilar domains, as measured by both similarity measures. At a low (1%) false positive rate, 25 to 38% of domain pairs in the same SCOP folds do not appear similar. Our results suggest either that some of these folds are defined using criteria other than purely structural consideration or that the similarity measures used do not recognize some relevant aspects of structural similarity in certain cases. Specifically, variations of the "common core" of some folds are severe enough to defeat attempts to automatically detect structural similarity and/or to lead to false detection of similarity between domains in distinct folds. Structures in some folds vary greatly in size because they contain varying numbers of a repeating unit, while similarity scores are quite sensitive to size differences. Structures in different folds may contain similar substructures, which produce false positives. Finally, the common core within a structure may be too small relative to the entire structure, to be recognized as the basis of similarity to another. CONCLUSION: A detailed analysis of the entire available protein fold space by two automated similarity methods reveals the extent and the nature of the divergence between the automatically determined similarity/dissimilarity and the manual fold type classifications. Some of the observed divergences can probably be addressed with better structure comparison methods and better automatic, intelligent classification procedures. Others may be intrinsic to the problem, suggesting a continuous rather than discrete protein fold space.

Algorithms↗

GOR V server for protein secondary structure prediction.

SUMMARY: We have created the GOR V web server for protein secondary structure prediction. The GOR V algorithm combines information theory, Bayesian statistics and evolutionary information. In its fifth version, the GOR method reached (with the full jack-knife procedure) an accuracy of prediction Q3 of 73.5%. Although GOR V has been among the most successful methods, its online unavailability has been a deterrent to its popularity. Here, we remedy this situation by creating the GOR V server.

Algorithms↗

The future of highly personalized health care.

We can surely lean well towards the optimistic in envisioning health care. In the world 10-25 years ahead of us. This optimism is based on rapid developments in genomics, the essential basis of molecular medicine, and on advances in computer power. At the time of writing this paper, the Human Genome Project was planned to have a working draft by 2000 and indeed completion was announced on June 26th from Washington. This paper describes the situation and vision at that time. Though there has been much subsequent more thought about the influence of genomics on healthcare, the aspirations and visions have not fundamentally changed from those of 2000, except for the greater attention to practical details that comes from increased confidence in the practicality of the vision.

Biomedical Technology↗