Low degree metabolites explain essential reactions and enhance modularity in biological networks.

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Low degree metabolites explain essential reactions and enhance modularity in biological networks. is …
instance of (P31):
scholarly articleQ13442814

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P8978DBLP publication IDjournals/bmcbi/SamalSGKRJ06
P356DOI10.1186/1471-2105-7-118
P932PMC publication ID1434774
P698PubMed publication ID16524470
P5875ResearchGate publication ID7254780

P50authorAreejit SamalQ50974858
Nandula RaghuramQ57329561
P2093author name stringShalini Singh
Sanjay Jain
Varun Giri
Sandeep Krishna
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Reconstruction and validation of Saccharomyces cerevisiae iND750, a fully compartmentalized genome-scale metabolic modelQ35574107
Genome-scale in silico models of E. coli have multiple equivalent phenotypic states: assessment of correlated reaction subsets that comprise network states.Q39968205
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Complementary identification of multiple flux distributions and multiple metabolic pathwaysQ42478048
Hierarchical analysis of dependency in metabolic networksQ42599806
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Crashes, recoveries, and "core shifts" in a model of evolving networksQ47848833
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A graph-theoretic method to identify candidate mechanisms for deriving the rate law of a catalytic reactionQ52045546
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P407language of work or nameEnglishQ1860
P304page(s)118
P577publication date2006-03-08
P1433published inBMC BioinformaticsQ4835939
P1476titleLow degree metabolites explain essential reactions and enhance modularity in biological networks
P478volume7

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