<p>The biogenic methane contributes obviously to global warming, and direct interspecies electron transfer (DIET) driven CO<sub>2</sub> reductive methanogenesis is one of the important methanogenic pathways. Here we report DIET-driven methylotrophic methanogenesis in paddy soil and the prevalent <i>Methanomassiliicoccus</i>. <i>M. luminyensis</i> CZDD1 exhibited a 1.9-fold higher methanol-derived methanogenic rate when cocultured with <i>Clostridium malenominatum</i> than its H<sub>2</sub>-dependent monoculture. Coculturing with <i>Geobacter metallireducens</i>, a known extracellular electron producer, CZDD1 showed the same efficient methanol-derived methane production, thus identified DIET-based methylotrophic methanogenesis. Chronoamperometry detected efficient methane production by <i>M. luminyensis</i> CZDD1 and two paddy soils from methanol and dimethylarsenate in accompany with current consumption. Differential transcriptomics predicted a membrane-bound Fpo-like complex of CZDD1 for uptake of extracellular electrons. Co-occurrence of Methanomassiliicoccaceae with Geobacteraceae and Clostridiaceae was found in five Chinese paddy soils, and <i>Methanomassiliicoccus</i> is ubiquitously distributed among various anoxic environments. Therefore, DIET-driven methylotrophic methanogenesis can be an important mechanism in methane emission.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Extracellular electron transfer based methylotrophic methanogenesis in paddy soil and the prevalent Methanomassiliicoccus

  • Lingyan Li,
  • Xuping Tian,
  • Xuemeng Wang,
  • Chuan Chen,
  • Qi Zhou,
  • Lei Qi,
  • Jie Li,
  • Kai Xue,
  • Fangjie Zhao,
  • Yanfen Wang,
  • Xiuzhu Dong

摘要

The biogenic methane contributes obviously to global warming, and direct interspecies electron transfer (DIET) driven CO2 reductive methanogenesis is one of the important methanogenic pathways. Here we report DIET-driven methylotrophic methanogenesis in paddy soil and the prevalent Methanomassiliicoccus. M. luminyensis CZDD1 exhibited a 1.9-fold higher methanol-derived methanogenic rate when cocultured with Clostridium malenominatum than its H2-dependent monoculture. Coculturing with Geobacter metallireducens, a known extracellular electron producer, CZDD1 showed the same efficient methanol-derived methane production, thus identified DIET-based methylotrophic methanogenesis. Chronoamperometry detected efficient methane production by M. luminyensis CZDD1 and two paddy soils from methanol and dimethylarsenate in accompany with current consumption. Differential transcriptomics predicted a membrane-bound Fpo-like complex of CZDD1 for uptake of extracellular electrons. Co-occurrence of Methanomassiliicoccaceae with Geobacteraceae and Clostridiaceae was found in five Chinese paddy soils, and Methanomassiliicoccus is ubiquitously distributed among various anoxic environments. Therefore, DIET-driven methylotrophic methanogenesis can be an important mechanism in methane emission.