Literature DB >> 28295163

Cyanobacterial carbon metabolism: Fluxome plasticity and oxygen dependence.

Ni Wan1, Drew M DeLorenzo1, Lian He1, Le You1, Cheryl M Immethun1, George Wang2,3, Edward E K Baidoo2,3, Whitney Hollinshead1, Jay D Keasling2,3,4,5,6,7, Tae Seok Moon1, Yinjie J Tang1.   

Abstract

Synechocystis sp. strain PCC 6803 has been widely used as a photo-biorefinery chassis. Based on its genome annotation, this species contains a complete TCA cycle, an Embden-Meyerhof-Parnas pathway (EMPP), an oxidative pentose phosphate pathway (OPPP), and an Entner-Doudoroff pathway (EDP). To evaluate how Synechocystis 6803 catabolizes glucose under heterotrophic conditions, we performed 13 C metabolic flux analysis, metabolite pool size analysis, gene knockouts, and heterologous expressions. The results revealed a cyclic mode of flux through the OPPP. Small, but non-zero, fluxes were observed through the TCA cycle and the malic shunt. Independent knockouts of 6-phosphogluconate dehydrogenase (gnd) and malic enzyme (me) corroborated these results, as neither mutant could grow under dark heterotrophic conditions. Our data also indicate that Synechocystis 6803 metabolism relies upon oxidative phosphorylation to generate ATP from NADPH under dark or insufficient light conditions. The pool sizes of intermediates in the TCA cycle, particularly acetyl-CoA, were found to be several fold lower in Synechocystis 6803 (compared to E. coli metabolite pool sizes), while its sugar phosphate intermediates were several-fold higher. Moreover, negligible flux was detected through the native, or heterologous, EDP in the wild type or Δgnd strains under heterotrophic conditions. Comparing photoautotrophic, photomixotrophic, and heterotrophic conditions, the Calvin cycle, OPPP, and EMPP in Synechocystis 6803 possess the ability to regulate their fluxes under various growth conditions (plastic), whereas its TCA cycle always maintains at low levels (rigid). This work also demonstrates how genetic profiles do not always reflect actual metabolic flux through native or heterologous pathways. Biotechnol. Bioeng. 2017;114: 1593-1602.
© 2017 Wiley Periodicals, Inc. © 2017 Wiley Periodicals, Inc.

Entities:  

Keywords:  13C metabolic flux analysis; TCA; metabolite pool size; oxidative pentose phosphate pathway

Mesh:

Substances:

Year:  2017        PMID: 28295163     DOI: 10.1002/bit.26287

Source DB:  PubMed          Journal:  Biotechnol Bioeng        ISSN: 0006-3592            Impact factor:   4.530


  21 in total

1.  A mechanistic study of the influence of nitrogen and energy availability on the NH4+ sensitivity of nitrogen assimilation in Synechococcus.

Authors:  Mario Giordano; Charles A Goodman; Fengying Huang; John A Raven; Zuoxi Ruan
Journal:  J Exp Bot       Date:  2022-09-12       Impact factor: 7.298

2.  Quantitative modeling of pentose phosphate pathway response to oxidative stress reveals a cooperative regulatory strategy.

Authors:  Julien Hurbain; Quentin Thommen; Francois Anquez; Benjamin Pfeuty
Journal:  iScience       Date:  2022-06-28

3.  Model metabolic strategy for heterotrophic bacteria in the cold ocean based on Colwellia psychrerythraea 34H.

Authors:  Jeffrey J Czajka; Mary H Abernathy; Veronica T Benites; Edward E K Baidoo; Jody W Deming; Yinjie J Tang
Journal:  Proc Natl Acad Sci U S A       Date:  2018-11-16       Impact factor: 11.205

4.  Cyanobacterial carboxysome mutant analysis reveals the influence of enzyme compartmentalization on cellular metabolism and metabolic network rigidity.

Authors:  Mary H Abernathy; Jeffrey J Czajka; Douglas K Allen; Nicholas C Hill; Jeffrey C Cameron; Yinjie J Tang
Journal:  Metab Eng       Date:  2019-04-25       Impact factor: 9.783

5.  Purification and Characterisation of Malate Dehydrogenase From Synechocystis sp. PCC 6803: Biochemical Barrier of the Oxidative Tricarboxylic Acid Cycle.

Authors:  Masahiro Takeya; Shoki Ito; Haruna Sukigara; Takashi Osanai
Journal:  Front Plant Sci       Date:  2018-07-13       Impact factor: 5.753

Review 6.  Recent Advances in the Photoautotrophic Metabolism of Cyanobacteria: Biotechnological Implications.

Authors:  Théo Veaudor; Victoire Blanc-Garin; Célia Chenebault; Encarnación Diaz-Santos; Jean-François Sassi; Corinne Cassier-Chauvat; Franck Chauvat
Journal:  Life (Basel)       Date:  2020-05-19

7.  Citrate synthase from Synechocystis is a distinct class of bacterial citrate synthase.

Authors:  Shoki Ito; Naoto Koyama; Takashi Osanai
Journal:  Sci Rep       Date:  2019-04-15       Impact factor: 4.379

8.  Thylakoid Localized Type 2 NAD(P)H Dehydrogenase NdbA Optimizes Light-Activated Heterotrophic Growth of Synechocystis sp. PCC 6803.

Authors:  Tuomas Huokko; Dorota Muth-Pawlak; Eva-Mari Aro
Journal:  Plant Cell Physiol       Date:  2019-06-01       Impact factor: 4.927

9.  Engineering photosynthetic production of L-lysine.

Authors:  Travis C Korosh; Andrew L Markley; Ryan L Clark; Laura L McGinley; Katherine D McMahon; Brian F Pfleger
Journal:  Metab Eng       Date:  2017-10-28       Impact factor: 9.783

Review 10.  Metabolic pathway rewiring in engineered cyanobacteria for solar-to-chemical and solar-to-fuel production from CO2.

Authors:  Han Min Woo
Journal:  Bioengineered       Date:  2017-05-19       Impact factor: 3.269

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