{"refrec":{"BRefID":359802,"RR":"<b>Mayer, F.; Sabel-Becker, B.; Holtmann, D.</b> (2022). Enhanced electron uptake and methane production by corrosive methanogens during electromethanogenesis. <i>Microorganisms 10(11)</i>: 2237. <a href=\"https://dx.doi.org/10.3390/microorganisms10112237\" target=\"_blank\">https://dx.doi.org/10.3390/microorganisms10112237</a>","BEntID":357517,"PublicFlag":1,"CheckedFlag":0,"wosflag":1,"vabbflag":0,"RefStringPartII":". <i>Microorganisms 10(11)</i>: 2237. <a href=\"https://dx.doi.org/10.3390/microorganisms10112237\" target=\"_blank\">https://dx.doi.org/10.3390/microorganisms10112237</a>","DocTypID":8,"DocType":"Journal article","MarineFlag":0,"FreshFlag":0,"BrackishFlag":0,"TerrestrialFlag":0,"Authorstring":"Mayer, F.; Sabel-Becker, B.; Holtmann, D.","OrigTitleTranslFlag":0,"Authorstringtrunc":"Mayer, F.; Sabel-Becker, B.; Holtmann, D.","Englishabstract":"Electromethanogenesis is an interesting next-generation technology to produce methane from CO<sub>2</sub> and electricity by using methanogens. Iron-corroding methanogens might be of special interest for that application due to their natural ability for electron uptake. <i>Methanococcus maripaludis</i> Mic1c10 and KA1 were tested in bioelectrochemical systems. Strain Mic1c10 showed a 120% higher current density and an 84% higher methane production rate (16.2 mmol m<sup>−2</sup> d<sup>−2</sup>) than the non-corrosive strain <i>Methanococcus maripaludis</i> S2, which was identified earlier as the best methane producer under the same experimental conditions. Interestingly, strain KA1 also showed a 265% higher current density than strain S2. Deposits at the cathodes were detected and analyzed, which were not described earlier. A comparative genome analysis between the corrosive methanogen and the S2 strain enables new insights into proteins that are involved in enhanced electron transfer.","AbstractOtherLang":null,"BibLvlCode":"AS","StandardTitle":"Enhanced electron uptake and methane production by corrosive methanogens during electromethanogenesis","OrigTitleLangCode":"en","OrigTitleLangCodeExtended":"eng","OrigTitleLangID":15,"DateLastModified":{"date":"2024-12-10 01:33:17.368041","timezone_type":1,"timezone":"+01:00"},"UserAccessRight":null,"UserAccID":null,"AuthorKeywords":"electromethanogenesis; microbial electrosynthesis; corrosive methanogens; electron uptake mechanism; genome analysis; biofuel","OtherDescriptors":null,"Notes":null,"AnaPub":2022,"MonPub":null,"DateUpdate":"2023-01-16","DateCreate":"2022-12-22","SecASFANote":null,"ConfID":null,"PeerRev":1,"VlizCoreFlag":1,"WoScode":"WOS:000895082700001","VABBcode":null,"OpenAcc":1,"DOI":"10.3390/microorganisms10112237"},"refs":null,"anarec":{"AnaID":359802,"PubliDate":2022,"Pagination":"2237","XtraPublOfAnaID":null,"ISBN":null,"Volume":"10","Issue":"11","BRefMon":null,"BRefMonRR":null,"BRefXtra":null,"BRefXtraRR":null,"SerBRefID":302866,"SerRR":"Microorganisms. 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