Microbial sulphate reduction at a low pH microbial sulphate reduction at a low pH

被引:164
作者
Koschorreck, Matthias [1 ]
机构
[1] UFZ Helmholtz Ctr Environm Res, Dept Lake Res, D-39114 Magdeburg, Germany
关键词
sulphate reduction; acidic; extreme environment; acidotolerant; acidophil; microniche;
D O I
10.1111/j.1574-6941.2008.00482.x
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
It is now well established that microbial sulphate-reduction can proceed in environments with a pH < 5. This review summarizes existing reports on sulphate reduction at low pH and discusses possible pH effects on sulphate-reducing bacteria. Microbial sulphate reduction has been observed in acidic lakes, wetlands, mesocosms, acidic sulphate soils and bioreactors. Possible inhibitory factors include the metabolites H2S and organic acids, which can be toxic depending on pH. Metal sulphide precipitation and competition with other bacteria, namely iron-reducing bacteria, can inhibit sulphate reduction. Theoretical considerations show that normal sulphate reduction rates are too low to maintain a neutral micro niche in an acidic environment. The first acidotolerant sulphate-reducing bacteria have been isolated recently.
引用
收藏
页码:329 / 342
页数:14
相关论文
共 132 条
[1]   Patterns of stable S isotopes in a forested catchment as indicators for biological S turnover [J].
Alewell, C ;
Gehre, M .
BIOGEOCHEMISTRY, 1999, 47 (03) :319-333
[2]   CAN MICROSCALE CHEMICAL PATCHES PERSIST IN THE SEA - MICROELECTRODE STUDY OF MARINE SNOW, FECAL PELLETS [J].
ALLDREDGE, AL ;
COHEN, Y .
SCIENCE, 1987, 235 (4789) :689-691
[3]   Interaction of the sulfur and iron cycles in the Tinto river ecosystem [J].
Amils R. ;
González-Toril E. ;
Fernández-Remolar D. ;
Gómez F. ;
Rodríguez N. ;
Durán C. .
Reviews in Environmental Science and Biotechnology, 2002, 1 (4) :299-309
[4]  
[Anonymous], 2002, WATER AIR SOIL POLL, DOI DOI 10.1023/A:1019959814202
[5]   GROWTH YIELDS AND GROWTH-RATES OF DESULFOVIBRIO-VULGARIS-(MARBURG) GROWING ON HYDROGEN PLUS SULFATE AND HYDROGEN PLUS THIOSULFATE AS SOLE ENERGY-SOURCES [J].
BADZIONG, W ;
THAUER, RK .
ARCHIVES OF MICROBIOLOGY, 1978, 117 (02) :209-214
[6]   Denitrification potential in stream sediments impacted by acid mine drainage: Effects of pH, various electron donors, and iron [J].
Baeseman, JL ;
Smith, RL ;
Silverstein, J .
MICROBIAL ECOLOGY, 2006, 51 (02) :232-241
[7]   UNCOUPLING BY ACETIC-ACID LIMITS GROWTH OF AND ACETOGENESIS BY CLOSTRIDIUM-THERMOACETICUM [J].
BARONOFSKY, JJ ;
SCHREURS, WJA ;
KASHKET, ER .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1984, 48 (06) :1134-1139
[8]   MIKROBIOLOGISCHE UNTERSUCHUNGEN UBER DAS AUFTRETEN VON SCHWEFELWASSERSTOFF IN DEN ANAEROBEN ZONEN DES HOCHMOORES [J].
BENDA, I .
ARCHIV FUR MIKROBIOLOGIE, 1957, 27 (04) :337-374
[9]   Geochemistry of a permeable reactive barrier for metals and acid mine drainage [J].
Benner, SG ;
Blowes, DW ;
Gould, WD ;
Herbert, RB ;
Ptacek, CJ .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1999, 33 (16) :2793-2799
[10]   Microbial populations associated with the generation and treatment of acid mine drainage [J].
Benner, SG ;
Gould, WD ;
Blowes, DW .
CHEMICAL GEOLOGY, 2000, 169 (3-4) :435-448