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Elementary vectors and conformal sums in polyhedral geometry and their relevance for metabolic pathway analysis

Authors :
Stefan eMüller
Georg eRegensburger
Source :
Frontiers in Genetics, Vol 7 (2016)
Publication Year :
2016
Publisher :
Frontiers Media S.A., 2016.

Abstract

A fundamental result in metabolic pathway analysis statesthat every flux mode can be decomposed into a sum of elementary modes.However, only a decomposition without cancelations is biochemically meaningful,since a reversible reaction cannot have different directions in the contributing elementary modes.This essential requirement has been largely overlooked by the metabolic pathway community.Indeed, every flux mode can be decomposed into elementary modes without cancelations.The result is an immediate consequence of a theorem by Rockafellarwhich states that every element of a linear subspace is a conformal sum (a sum without cancelations)of elementary vectors (support-minimal vectors).In this work, we extend the theorem, first to ``subspace cones''and then to general polyhedral cones and polyhedra.Thereby, we refine Minkowski's and Caratheodory's theorems,two fundamental results in polyhedral geometry.We note that, in general, elementary vectors need not be support-minimal;in fact, they are conformally non-decomposable and form a unique minimal set of conformal generators.Our treatment is mathematically rigorous, but suitable for systems biologists,since we give self-contained proofs for our resultsand use concepts motivated by metabolic pathway analysis.In particular, we study cones defined by linear subspaces and nonnegativity conditions- like the flux cone - and use them to analyze general polyhedral cones and polyhedra.Finally, we review applications of elementary vectors and conformal sums in metabolic pathway analysis.

Details

Language :
English
ISSN :
16648021
Volume :
7
Database :
Directory of Open Access Journals
Journal :
Frontiers in Genetics
Publication Type :
Academic Journal
Accession number :
edsdoj.44f9168d9ed54e1ebf61af559e7dfa71
Document Type :
article
Full Text :
https://doi.org/10.3389/fgene.2016.00090