Implanted Biofuel Cell Operating in a Living Snail

被引:372
作者
Halamkova, Lenka [1 ,2 ]
Halamek, Jan [1 ]
Bocharova, Vera [1 ]
Szczupak, Alon [3 ,4 ]
Alfonta, Lital [3 ,4 ]
Katz, Evgeny [1 ]
机构
[1] Clarkson Univ, Dept Chem & Biomol Sci, Potsdam, NY 13699 USA
[2] Clarkson Univ, Dept Biol, Potsdam, NY 13699 USA
[3] Ben Gurion Univ Negev, Ilse Katz Inst Nanoscale Sci & Technol, IL-84105 Beer Sheva, Israel
[4] Ben Gurion Univ Negev, Avram & Stella Goldstein Goren Dept Biotechnol En, IL-84105 Beer Sheva, Israel
基金
美国国家科学基金会;
关键词
DIRECT ELECTRON-TRANSFER; GLUCOSE-OXIDASE; FUEL-CELLS; RECONSTITUTION; ELECTRICITY; GENERATION; OXIDATION; ENZYMES; SURFACE;
D O I
10.1021/ja211714w
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Implantable biofuel cells have been suggested as sustainable micropower sources operating in living organisms, but such bioelectronic systems are still exotic and very challenging to design. Very few examples of abiotic and enzyme-based biofuel cells operating in animals in vivo have been reported. Implantation of biocatalytic electrodes and extraction of electrical power from small living creatures is even more difficult and has not been achieved to date. Here we report on the first implanted biofuel cell continuously operating in a snail and producing electrical power over a long period of time using physiologically produced glucose as a fuel. The "electrified" snail, being a biotechnological living "device", was able to regenerate glucose consumed by biocatalytic electrodes, upon appropriate feeding and relaxing, and then produce a new "portion" of electrical energy. The snail with the implanted biofuel cell will be able to operate in a natural environment, producing sustainable electrical micropower for activating various bioelectronic devices.
引用
收藏
页码:5040 / 5043
页数:4
相关论文
共 32 条
[1]   RESPIRATORY GAS TENSIONS AND GAS-EXCHANGE IN ACTIVE AND DORMANT LAND SNAILS, OTALA-LACTEA [J].
BARNHART, MC .
PHYSIOLOGICAL ZOOLOGY, 1986, 59 (06) :733-745
[2]   Enzymatic biofuel cells for Implantable and microscale devices [J].
Barton, SC ;
Gallaway, J ;
Atanassov, P .
CHEMICAL REVIEWS, 2004, 104 (10) :4867-4886
[3]   Electricity generation by direct oxidation of glucose in mediatorless microbial fuel cells [J].
Chaudhuri, SK ;
Lovley, DR .
NATURE BIOTECHNOLOGY, 2003, 21 (10) :1229-1232
[4]   A Glucose BioFuel Cell Implanted in Rats [J].
Cinquin, Philippe ;
Gondran, Chantal ;
Giroud, Fabien ;
Mazabrard, Simon ;
Pellissier, Aymeric ;
Boucher, Francois ;
Alcaraz, Jean-Pierre ;
Gorgy, Karine ;
Lenouvel, Francois ;
Mathe, Stephane ;
Porcu, Paolo ;
Cosnier, Serge .
PLOS ONE, 2010, 5 (05)
[5]   A Direct Electron Transfer-Based Glucose/Oxygen Biofuel Cell Operating in Human Serum [J].
Coman, V. ;
Ludwig, R. ;
Harreither, W. ;
Haltrich, D. ;
Gorton, L. ;
Ruzgas, T. ;
Shleev, S. .
FUEL CELLS, 2010, 10 (01) :9-16
[6]   Enzymes as working or inspirational electrocatalysts for fuel cells and electrolysis [J].
Cracknell, James A. ;
Vincent, Kylie A. ;
Armstrong, Fraser A. .
CHEMICAL REVIEWS, 2008, 108 (07) :2439-2461
[7]   Biofuel cells - Recent advances and applications [J].
Davis, Frank ;
Higson, Seamus P. J. .
BIOSENSORS & BIOELECTRONICS, 2007, 22 (07) :1224-1235
[8]  
DRAKE RF, 1970, T AM SOC ART INT ORG, V16, P199
[9]   Enzyme-catalyzed direct electron transfer: Fundamentals and analytical applications [J].
Ghindilis, AL ;
Atanasov, P ;
Wilkins, E .
ELECTROANALYSIS, 1997, 9 (09) :661-674
[10]   Miniature biofuel cells [J].
Heller, A .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2004, 6 (02) :209-216