| Literature DB >> 20122204 |
Hiroto Saigo1, Masahiro Hattori, Hisashi Kashima, Koji Tsuda.
Abstract
BACKGROUND: Understanding of secondary metabolic pathway in plant is essential for finding druggable candidate enzymes. However, there are many enzymes whose functions are not yet discovered in organism-specific metabolic pathways. Towards identifying the functions of those enzymes, assignment of EC numbers to the enzymatic reactions they catalyze plays a key role, since EC numbers represent the categorization of enzymes on one hand, and the categorization of enzymatic reactions on the other hand.Entities:
Mesh:
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Year: 2010 PMID: 20122204 PMCID: PMC3009503 DOI: 10.1186/1471-2105-11-S1-S31
Source DB: PubMed Journal: BMC Bioinformatics ISSN: 1471-2105 Impact factor: 3.169
Figure 1Sample pathway. A part of a terpenoid biosynthesis pathway extracted from KEGG/PATHWAY.
Figure 2Sample reaction graph (full-edge). The reaction graph for the reaction Loganin + NADPH + H+ + Oxygen <=> Secologanin + NADP+ + H2O, which is catalyzed by secologanin synthase (EC 1.3.3.9). Edges without labels are all 'group' edges in this reaction.
Figure 3Sample reaction graph (RPAIR).
Figure 4Sample reaction graph (main-pair).
Leave-one-out cross validation accuracy
| EC class | EC subclass | EC subsubclass | |
|---|---|---|---|
| full-edge | 94.8% | 86.0% | 82.5% |
| RPAIR | 92.3% | 81.4% | 78.1% |
| main-pair | 77.8% | 69.8% | 66.2% |
Number of correct predictions and accuracy in top k candidates for 36 unknown reactions
| Coverage | EC main | EC sub | EC subsub | ||
|---|---|---|---|---|---|
| RGK | TOP1 | 100% | 22 (61.1%) | 14 (38.9%) | 12 (33.3%) |
| TOP3 | 56 (51.9%) | 30 (27.8%) | 24 (22.2%) | ||
| TOP5 | 86 (47.8%) | 37 (20.6%) | 27 (15.0%) | ||
| E-zyme | TOP1 | 61.1% | 14 (63.6%) | 10 (45.5%) | 8 (36.4%) |
| TOP3 | 42 (63.6%) | 24 (36.4%) | 18 (27.3%) | ||
| TOP5 | 57 (51.8%) | 30 (27.3%) | 24 (21.8%) | ||