Biomass Production from Electricity Using Ammonia as an Electron Carrier in a Reverse Microbial Fuel Cell

被引:35
作者
Khunjar, Wendell O. [1 ]
Sahin, Asli
West, Alan C. [1 ]
Chandran, Kartik [1 ]
Banta, Scott
机构
[1] Columbia Univ, Dept Chem Engn, Dept Earth & Environm Engn, New York, NY 10027 USA
来源
PLOS ONE | 2012年 / 7卷 / 09期
关键词
NITRITE OXIDATION; GLASSY-CARBON; NITROSOMONAS-EUROPAEA; AUTOTROPHIC AMMONIA; CONVERSION; REDUCTION; PATHWAYS; NITRATE;
D O I
10.1371/journal.pone.0044846
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The storage of renewable electrical energy within chemical bonds of biofuels and other chemicals is a route to decreasing petroleum usage. A critical challenge is the efficient transfer of electrons into a biological host that can covert this energy into high energy organic compounds. In this paper, we describe an approach whereby biomass is grown using energy obtained from a soluble mediator that is regenerated electrochemically. The net result is a separate-stage reverse microbial fuel cell (rMFC) that fixes CO2 into biomass using electrical energy. We selected ammonia as a low cost, abundant, safe, and soluble redox mediator that facilitated energy transfer to biomass. Nitrosomonas europaea, a chemolithoautotroph, was used as the biocatalyst due to its inherent capability to utilize ammonia as its sole energy source for growth. An electrochemical reactor was designed for the regeneration of ammonia from nitrite, and current efficiencies of 100% were achieved. Calculations indicated that overall bioproduction efficiency could approach 2.7 +/- 0.2% under optimal electrolysis conditions. The application of chemolithoautotrophy for industrial bioproduction has been largely unexplored, and results suggest that this and related rMFC platforms may enable biofuel and related biochemical production.
引用
收藏
页数:8
相关论文
共 46 条
[1]   Distinctive microbial ecology and biokinetics of autotrophic ammonia and nitrite oxidation in a partial nitrification Bioreactor [J].
Ahn, Joon Ho ;
Yu, Ran ;
Chandran, Kartik .
BIOTECHNOLOGY AND BIOENGINEERING, 2008, 100 (06) :1078-1087
[2]   Engineering for biofuels: exploiting innate microbial capacity or importing biosynthetic potential? [J].
Alper, Hal ;
Stephanopoulos, Gregory .
NATURE REVIEWS MICROBIOLOGY, 2009, 7 (10) :715-723
[3]  
[Anonymous], 1992, Standard Methods for the Examination of Water and Wastewater, V18th
[4]   Non-fermentative pathways for synthesis of branched-chain higher alcohols as biofuels [J].
Atsumi, Shota ;
Hanai, Taizo ;
Liao, James C. .
NATURE, 2008, 451 (7174) :86-U13
[5]   Direct photosynthetic recycling of carbon dioxide to isobutyraldehyde [J].
Atsumi, Shota ;
Higashide, Wendy ;
Liao, James C. .
NATURE BIOTECHNOLOGY, 2009, 27 (12) :1177-U142
[6]   PHOTOSYNTHESIS - IS IT LIMITING TO BIOMASS PRODUCTION [J].
BEADLE, CL ;
LONG, SP .
BIOMASS, 1985, 8 (02) :119-168
[7]   Electrochemical reduction of nitrate in weakly alkaline solutions [J].
Bouzek, K ;
Paidar, M ;
Sadílková, A ;
Bergmann, H .
JOURNAL OF APPLIED ELECTROCHEMISTRY, 2001, 31 (11) :1185-1193
[8]   Computation of metabolic fluxes and efficiencies for biological carbon dioxide fixation [J].
Boyle, Nanette R. ;
Morgan, John A. .
METABOLIC ENGINEERING, 2011, 13 (02) :150-158
[9]   Production of 2-methyl-1-butanol in engineered Escherichia coli [J].
Cann, Anthony F. ;
Liao, James C. .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2008, 81 (01) :89-98
[10]   Complete genome sequence of the ammonia-oxidizing bacterium and obligate chemolithoautotroph Nitrosomonas europaea [J].
Chain, P ;
Lamerdin, J ;
Larimer, F ;
Regala, W ;
Lao, V ;
Land, M ;
Hauser, L ;
Hooper, A ;
Klotz, M ;
Norton, J ;
Sayavedra-Soto, L ;
Arciero, D ;
Hommes, N ;
Whittaker, M ;
Arp, D .
JOURNAL OF BACTERIOLOGY, 2003, 185 (09) :2759-2773