CO2-fixing one-carbon metabolism in a cellulose-degrading bacterium Clostridium thermocellum.

Xiong, Wei; Lin, Paul P; Magnusson, Lauren; Warner, Lisa; Liao, James C; Maness, Pin-Ching; Chou, Katherine J · Proc Natl Acad Sci U S A · 2016

basic_science · Level V

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Abstract

Clostridium thermocellum can ferment cellulosic biomass to formate and other end products, including CO<sub>2</sub> This organism lacks formate dehydrogenase (Fdh), which catalyzes the reduction of CO<sub>2</sub> to formate. However, feeding the bacterium <sup>13</sup>C-bicarbonate and cellobiose followed by NMR analysis showed the production of <sup>13</sup>C-formate in C. thermocellum culture, indicating the presence of an uncharacterized pathway capable of converting CO<sub>2</sub> to formate. Combining genomic and experimental data, we demonstrated that the conversion of CO<sub>2</sub> to formate serves as a CO<sub>2</sub> entry point into the reductive one-carbon (C1) metabolism, and internalizes CO<sub>2</sub> via two biochemical reactions: the reversed pyruvate:ferredoxin oxidoreductase (rPFOR), which incorporates CO<sub>2</sub> using acetyl-CoA as a substrate and generates pyruvate, and pyruvate-formate lyase (PFL) converting pyruvate to formate and acetyl-CoA. We analyzed the labeling patterns of proteinogenic amino acids in individual deletions of all five putative PFOR mutants and in a PFL deletion mutant. We identified two enzymes acting as rPFOR, confirmed the dual activities of rPFOR and PFL crucial for CO<sub>2</sub> uptake, and provided physical evidence of a distinct in vivo "rPFOR-PFL shunt" to reduce CO<sub>2</sub> to formate while circumventing the lack of Fdh. Such a pathway precedes CO<sub>2</sub> fixation via the reductive C1 metabolic pathway in C. thermocellum These findings demonstrated the metabolic versatility of C. thermocellum, which is thought of as primarily a cellulosic heterotroph but is shown here to be endowed with the ability to fix CO<sub>2</sub> as well.

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