Literature DB >> 26581415

Dissolved inorganic carbon uptake in Thiomicrospira crunogena XCL-2 is Δp- and ATP-sensitive and enhances RubisCO-mediated carbon fixation.

Kristy J Menning1, Balaraj B Menon2,3, Gordon Fox1, Kathleen M Scott4.   

Abstract

The gammaproteobacterium Thiomicrospira crunogena XCL-2 is an aerobic sulfur-oxidizing hydrothermal vent chemolithoautotroph that has a CO2 concentrating mechanism (CCM), which generates intracellular dissolved inorganic carbon (DIC) concentrations much higher than extracellular, thereby providing substrate for carbon fixation at sufficient rate. This CCM presumably requires at least one active DIC transporter to generate the elevated intracellular concentrations of DIC measured in this organism. In this study, the half-saturation constant (K CO2) for purified carboxysomal RubisCO was measured (276 ± 18 µM) which was much greater than the K CO2 of whole cells (1.03 µM), highlighting the degree to which the CCM facilitates CO2 fixation under low CO2 conditions. To clarify the bioenergetics powering active DIC uptake, cells were incubated in the presence of inhibitors targeting ATP synthesis (DCCD) or proton potential (CCCP). Incubations with each of these inhibitors resulted in diminished intracellular ATP, DIC, and fixed carbon, despite an absence of an inhibitory effect on proton potential in the DCCD-incubated cells. Electron transport complexes NADH dehydrogenase and the bc 1 complex were found to be insensitive to DCCD, suggesting that ATP synthase was the primary target of DCCD. Given the correlation of DIC uptake to the intracellular ATP concentration, the ABC transporter genes were targeted by qRT-PCR, but were not upregulated under low-DIC conditions. As the T. crunogena genome does not include orthologs of any genes encoding known DIC uptake systems, these data suggest that a novel, yet to be identified, ATP- and proton potential-dependent DIC transporter is active in this bacterium. This transporter serves to facilitate growth by T. crunogena and other Thiomicrospiras in the many habitats where they are found.

Entities:  

Keywords:  Calvin cycle; Carbon concentrating mechanism; Carbon fixation; Chemolithoautotroph; Hydrothermal vent; Thiomicrospira

Mesh:

Substances:

Year:  2015        PMID: 26581415     DOI: 10.1007/s00203-015-1172-6

Source DB:  PubMed          Journal:  Arch Microbiol        ISSN: 0302-8933            Impact factor:   2.552


  3 in total

1.  Proteomic and Mutant Analysis of the CO2 Concentrating Mechanism of Hydrothermal Vent Chemolithoautotroph Thiomicrospira crunogena.

Authors:  Mary Mangiapia; Terry-René W Brown; Dale Chaput; Edward Haller; Tara L Harmer; Zahra Hashemy; Ryan Keeley; Juliana Leonard; Paola Mancera; David Nicholson; Stanley Stevens; Pauline Wanjugi; Tania Zabinski; Chongle Pan; Kathleen M Scott
Journal:  J Bacteriol       Date:  2017-03-14       Impact factor: 3.490

2.  Dissolved Inorganic Carbon-Accumulating Complexes from Autotrophic Bacteria from Extreme Environments.

Authors:  Sarah Schmid; Dale Chaput; Mya Breitbart; Rebecca Hines; Samantha Williams; Hunter K Gossett; Sheila D Parsi; Rebecca Peterson; Robert A Whittaker; Angela Tarver; Kathleen M Scott
Journal:  J Bacteriol       Date:  2021-09-20       Impact factor: 3.490

3.  Diversity in CO2-Concentrating Mechanisms among Chemolithoautotrophs from the Genera Hydrogenovibrio, Thiomicrorhabdus, and Thiomicrospira, Ubiquitous in Sulfidic Habitats Worldwide.

Authors:  Kathleen M Scott; Juliana M Leonard; Rich Boden; Dale Chaput; Clare Dennison; Edward Haller; Tara L Harmer; Abigail Anderson; Tiffany Arnold; Samantha Budenstein; Rikki Brown; Juan Brand; Jacob Byers; Jeanette Calarco; Timothy Campbell; Erica Carter; Max Chase; Montana Cole; Deandra Dwyer; Jonathon Grasham; Christopher Hanni; Ashlee Hazle; Cody Johnson; Ryan Johnson; Brandi Kirby; Katherine Lewis; Brianna Neumann; Tracy Nguyen; Jonathon Nino Charari; Ooreoluwa Morakinyo; Bengt Olsson; Shanetta Roundtree; Emily Skjerve; Ashley Ubaldini; Robert Whittaker
Journal:  Appl Environ Microbiol       Date:  2019-01-23       Impact factor: 4.792

  3 in total

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