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Acetogenic bacteria utilize light-driven electrons as an energy source for autotrophic growth.
Jin, Sangrak; Jeon, Yale; Jeon, Min Soo; Shin, Jongoh; Song, Yoseb; Kang, Seulgi; Bae, Jiyun; Cho, Suhyung; Lee, Jung-Kul; Kim, Dong Rip; Cho, Byung-Kwan.
Affiliation
  • Jin S; Department of Biological Sciences, Korea Advanced Institute of Science and Technology, 34141 Daejeon, Republic of Korea.
  • Jeon Y; Innovative Biomaterials Research Center, KI for the BioCentury, Korea Advanced Institute of Science and Technology, 34141 Daejeon, Republic of Korea.
  • Jeon MS; Department of Mechanical Engineering, Hanyang University, 04763 Seoul, Republic of Korea.
  • Shin J; Department of Mechanical Engineering, Hanyang University, 04763 Seoul, Republic of Korea.
  • Song Y; Department of Biological Sciences, Korea Advanced Institute of Science and Technology, 34141 Daejeon, Republic of Korea.
  • Kang S; Innovative Biomaterials Research Center, KI for the BioCentury, Korea Advanced Institute of Science and Technology, 34141 Daejeon, Republic of Korea.
  • Bae J; Department of Biological Sciences, Korea Advanced Institute of Science and Technology, 34141 Daejeon, Republic of Korea.
  • Cho S; Innovative Biomaterials Research Center, KI for the BioCentury, Korea Advanced Institute of Science and Technology, 34141 Daejeon, Republic of Korea.
  • Lee JK; Department of Biological Sciences, Korea Advanced Institute of Science and Technology, 34141 Daejeon, Republic of Korea.
  • Kim DR; Innovative Biomaterials Research Center, KI for the BioCentury, Korea Advanced Institute of Science and Technology, 34141 Daejeon, Republic of Korea.
  • Cho BK; Department of Biological Sciences, Korea Advanced Institute of Science and Technology, 34141 Daejeon, Republic of Korea.
Proc Natl Acad Sci U S A ; 118(9)2021 03 02.
Article in En | MEDLINE | ID: mdl-33619098
ABSTRACT
Acetogenic bacteria use cellular redox energy to convert CO2 to acetate using the Wood-Ljungdahl (WL) pathway. Such redox energy can be derived from electrons generated from H2 as well as from inorganic materials, such as photoresponsive semiconductors. We have developed a nanoparticle-microbe hybrid system in which chemically synthesized cadmium sulfide nanoparticles (CdS-NPs) are displayed on the cell surface of the industrial acetogen Clostridium autoethanogenum The hybrid system converts CO2 into acetate without the need for additional energy sources, such as H2, and uses only light-induced electrons from CdS-NPs. To elucidate the underlying mechanism by which C. autoethanogenum uses electrons generated from external energy sources to reduce CO2, we performed transcriptional analysis. Our results indicate that genes encoding the metal ion or flavin-binding proteins were highly up-regulated under CdS-driven autotrophic conditions along with the activation of genes associated with the WL pathway and energy conservation system. Furthermore, the addition of these cofactors increased the CO2 fixation rate under light-exposure conditions. Our results demonstrate the potential to improve the efficiency of artificial photosynthesis systems based on acetogenic bacteria integrated with photoresponsive nanoparticles.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Sulfides / Bacterial Proteins / Carbon Dioxide / Clostridium / Cadmium Compounds / Electrons / Nanoparticles / Acetates Language: En Journal: Proc Natl Acad Sci U S A Year: 2021 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Sulfides / Bacterial Proteins / Carbon Dioxide / Clostridium / Cadmium Compounds / Electrons / Nanoparticles / Acetates Language: En Journal: Proc Natl Acad Sci U S A Year: 2021 Document type: Article