Dilution methods to deprive Chlamydomonas reinhardtii cultures of sulfur for subsequent hydrogen photoproduction

被引:53
作者
Laurinavichene, TV
Tolstygina, IV
Galiulina, RR
Ghirardi, ML
Seibert, M
Tsygankov, AA [1 ]
机构
[1] Russian Acad Sci, Inst Basic Biol Problems, Pushchino 142290, Moscow Region, Russia
[2] Natl Renewable Energy Lab, Basic Sci Ctr, Golden, CO 80401 USA
关键词
photobiological hydrogen production; sulfur deprivation; green algae; photobioreactors;
D O I
10.1016/S0360-3199(02)00101-5
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Sulfur deprivation of Chlamydomonas reinhardtii cultures gradually inactivates photosynthetic O-2 evolution and leads to the establishment of anaerobiosis in the medium. Sulfur-deprived algal cultures kept under anaerobic conditions will then produce H-2 gas for 3-5 days under continuous illumination. Currently, sulfur deprivation is achieved by mechanical centrifugation of cultures grown in sulfur-replete medium, followed by extensive and costly washing. The cells are finally resuspended in sulfur-free medium. The current study investigates two procedures to deprive algal cultures of sulfur that eliminate the centrifugation step. These procedures involve sulfur deprivation by dilution of sulfur-replete cultures into either sulfur-limited medium or sulfur-free medium. We demonstrate that efficient H-2 photoproduction can be achieved on a timely basis using either procedure. However, the dilution of sulfate-replete algal cultures 1: 10 v/v into sulfur-free medium is the most appropriate procedure. These observations serve as the basis for developing an algal H-2-production system that is cheaper, less time-consuming, and less amenable to contamination with other microorganisms than systems employing centrifugation for sulfur deprivation. Published by Elsevier Science Ltd on behalf of the International Association for Hydrogen Energy.
引用
收藏
页码:1245 / 1249
页数:5
相关论文
共 11 条
[1]   Hydrogen metabolism in organisms with oxygenic photosynthesis: hydrogenases as important regulatory devices for a proper redox poising? [J].
Appel, J ;
Schulz, R .
JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY B-BIOLOGY, 1998, 47 (01) :1-11
[2]   Hydrogen production by microalgae [J].
Benemann, JR .
JOURNAL OF APPLIED PHYCOLOGY, 2000, 12 (3-5) :291-300
[3]   Hydrogen production by biological processes: a survey of literature [J].
Das, D ;
Veziroglu, TN .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2001, 26 (01) :13-28
[4]   Microalgae:: a green source of renewable H2 [J].
Ghirardi, ML ;
Zhang, JP ;
Lee, JW ;
Flynn, T ;
Seibert, M ;
Greenbaum, E ;
Melis, A .
TRENDS IN BIOTECHNOLOGY, 2000, 18 (12) :506-511
[5]  
Harris EH, 1989, CHLAMYDOMONAS SOURCE
[6]   Sustained hydrogen photoproduction by Chlamydomonas reinhardtii:: Effects of culture parameters [J].
Kosourov, S ;
Tsygankov, A ;
Seibert, M ;
Ghirardi, ML .
BIOTECHNOLOGY AND BIOENGINEERING, 2002, 78 (07) :731-740
[7]   Hydrogen production. Green algae as a source of energy [J].
Melis, A ;
Happe, T .
PLANT PHYSIOLOGY, 2001, 127 (03) :740-748
[8]   Sustained photobiological hydrogen gas production upon reversible inactivation of oxygen evolution in the green alga Chlamydomonas reinhardtii [J].
Melis, A ;
Zhang, LP ;
Forestier, M ;
Ghirardi, ML ;
Seibert, M .
PLANT PHYSIOLOGY, 2000, 122 (01) :127-135
[9]  
PIRT SJ, PRINCIPLES MICROBE C
[10]  
Rao K. Krishna, 1996, Journal of Marine Biotechnology, V4, P10