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Research ArticleBIOENERGETICS AND PHOTOSYNTHESIS
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The Plant-Like C2 Glycolate Cycle and the Bacterial-Like Glycerate Pathway Cooperate in Phosphoglycolate Metabolism in Cyanobacteria

Marion Eisenhut, Shira Kahlon, Dirk Hasse, Ralph Ewald, Judy Lieman-Hurwitz, Teruo Ogawa, Wolfgang Ruth, Hermann Bauwe, Aaron Kaplan, Martin Hagemann
Marion Eisenhut
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Shira Kahlon
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Dirk Hasse
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Ralph Ewald
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Judy Lieman-Hurwitz
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Teruo Ogawa
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Wolfgang Ruth
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Hermann Bauwe
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Aaron Kaplan
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Martin Hagemann
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Published September 2006. DOI: https://doi.org/10.1104/pp.106.082982

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Abstract

The occurrence of a photorespiratory 2-phosphoglycolate metabolism in cyanobacteria is not clear. In the genome of the cyanobacterium Synechocystis sp. strain PCC 6803, we have identified open reading frames encoding enzymes homologous to those forming the plant-like C2 cycle and the bacterial-type glycerate pathway. To study the route and importance of 2-phosphoglycolate metabolism, the identified genes were systematically inactivated by mutagenesis. With a few exceptions, most of these genes could be inactivated without leading to a high-CO2-requiring phenotype. Biochemical characterization of recombinant proteins verified that Synechocystis harbors an active serine hydroxymethyltransferase, and, contrary to higher plants, expresses a glycolate dehydrogenase instead of an oxidase to convert glycolate to glyoxylate. The mutation of this enzymatic step, located prior to the branching of phosphoglycolate metabolism into the plant-like C2 cycle and the bacterial-like glycerate pathway, resulted in glycolate accumulation and a growth depression already at high CO2. Similar growth inhibitions were found for a single mutant in the plant-type C2 cycle and more pronounced for a double mutant affected in both the C2 cycle and the glycerate pathway after cultivation at low CO2. These results suggested that cyanobacteria metabolize phosphoglycolate by the cooperative action of the C2 cycle and the glycerate pathway. When exposed to low CO2, glycine decarboxylase knockout mutants accumulated far more glycine and lysine than wild-type cells or mutants with inactivated glycerate pathway. This finding and the growth data imply a dominant, although not exclusive, role of the C2 route in cyanobacterial phosphoglycolate metabolism.

  • Received May 2, 2006.
  • Accepted July 24, 2006.
  • Published July 28, 2006.
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The Plant-Like C2 Glycolate Cycle and the Bacterial-Like Glycerate Pathway Cooperate in Phosphoglycolate Metabolism in Cyanobacteria
Marion Eisenhut, Shira Kahlon, Dirk Hasse, Ralph Ewald, Judy Lieman-Hurwitz, Teruo Ogawa, Wolfgang Ruth, Hermann Bauwe, Aaron Kaplan, Martin Hagemann
Plant Physiology Sep 2006, 142 (1) 333-342; DOI: 10.1104/pp.106.082982

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The Plant-Like C2 Glycolate Cycle and the Bacterial-Like Glycerate Pathway Cooperate in Phosphoglycolate Metabolism in Cyanobacteria
Marion Eisenhut, Shira Kahlon, Dirk Hasse, Ralph Ewald, Judy Lieman-Hurwitz, Teruo Ogawa, Wolfgang Ruth, Hermann Bauwe, Aaron Kaplan, Martin Hagemann
Plant Physiology Sep 2006, 142 (1) 333-342; DOI: 10.1104/pp.106.082982
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Plant Physiology: 142 (1)
Plant Physiology
Vol. 142, Issue 1
September 2006
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  • Long-Term Acclimation of the Cyanobacterium Synechocystis sp. PCC 6803 to High Light Is Accompanied by an Enhanced Production of Chlorophyll That Is Preferentially Channeled to Trimeric Photosystem I
  • Truncated Photosystem Chlorophyll Antenna Size in the Green Microalga Chlamydomonas reinhardtii upon Deletion of the TLA3-CpSRP43 Gene
  • Steady-State Phosphorylation of Light-Harvesting Complex II Proteins Preserves Photosystem I under Fluctuating White Light
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