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Mapping photoautotrophic metabolism with isotopically nonstationary (13)C flux analysis.


ABSTRACT: Understanding in vivo regulation of photoautotrophic metabolism is important for identifying strategies to improve photosynthetic efficiency or re-route carbon fluxes to desirable end products. We have developed an approach to reconstruct comprehensive flux maps of photoautotrophic metabolism by computational analysis of dynamic isotope labeling measurements and have applied it to determine metabolic pathway fluxes in the cyanobacterium Synechocystis sp. PCC6803. Comparison to a theoretically predicted flux map revealed inefficiencies in photosynthesis due to oxidative pentose phosphate pathway and malic enzyme activity, despite negligible photorespiration. This approach has potential to fill important gaps in our understanding of how carbon and energy flows are systemically regulated in cyanobacteria, plants, and algae.

SUBMITTER: Young JD 

PROVIDER: S-EPMC3210925 | biostudies-literature | 2011 Nov

REPOSITORIES: biostudies-literature

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Mapping photoautotrophic metabolism with isotopically nonstationary (13)C flux analysis.

Young Jamey D JD   Shastri Avantika A AA   Stephanopoulos Gregory G   Morgan John A JA  

Metabolic engineering 20110901 6


Understanding in vivo regulation of photoautotrophic metabolism is important for identifying strategies to improve photosynthetic efficiency or re-route carbon fluxes to desirable end products. We have developed an approach to reconstruct comprehensive flux maps of photoautotrophic metabolism by computational analysis of dynamic isotope labeling measurements and have applied it to determine metabolic pathway fluxes in the cyanobacterium Synechocystis sp. PCC6803. Comparison to a theoretically pr  ...[more]

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