Big bacteria

被引:358
作者
Schulz, HN [1 ]
Jorgensen, BB [1 ]
机构
[1] Max Planck Inst Marine Microbiol, D-28359 Bremen, Germany
关键词
prokaryote cell size; diffusion; diffusive boundary layer; chemotaxis; sulfide oxidizing bacteria;
D O I
10.1146/annurev.micro.55.1.105
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
A small number of prokaryotic species have a unique physiology or ecology related to their development of unusually large size. The biomass of bacteria varies over more than 10 orders of magnitude, from the 0.2 mum wide nanobacteria to the largest cells of the colorless sulfur bacteria, Thiomargarita namibiensis, with a diameter of 750 mum. All bacteria, including those that swim around in the environment, obtain their food molecules by molecular diffusion. Only the fastest and largest swimmers known, Thiovulum majus, are able to significantly increase their food supply by motility and by actively creating an advective flow through the entire population. Diffusion limitation generally restricts the maximal size of prokaryotic cells and provides a selective advantage for mum-sized cells at the normally low substrate concentrations in the environment. The largest heterotrophic bacteria, the 80 x 600 mum large Epulopiscium sp. from the gut of tropical fish, are presumably living in a very nutrient-rich medium. Many large bacteria contain numerous inclusions in the cells that reduce the volume of active cytoplasm. The most striking examples of competitive advantage from large cell size are found among the colorless sulfur bacteria that oxidize hydrogen sulfide to sulfate with oxygen or nitrate. The several-cm-long filamentous species can penetrate up through the ca 500-mum-thick diffusive boundary layer and may thereby reach into water containing their electron acceptor, oxygen or nitrate. By their ability to store vast quantities of both nitrate and elemental sulfur in the cells, these bacteria have become independent of the coexistence of their substrates. In fact, a close relative, T. namibiensis, can probably respire in the sulfidic mud for several months before again filling up their large vacuoles with nitrate.
引用
收藏
页码:105 / 137
页数:33
相关论文
共 102 条
[1]  
Ahmad A, 1999, APPL ENVIRON MICROB, V65, P270
[2]   THE LARGEST BACTERIUM [J].
ANGERT, ER ;
CLEMENTS, KD ;
PACE, NR .
NATURE, 1993, 362 (6417) :239-241
[3]   Phylogenetic analysis of Metabacterium polyspora: Clues to the evolutionary origin of daughter cell production in Epulopiscium species, the largest bacteria [J].
Angert, ER ;
Brooks, AE ;
Pace, NR .
JOURNAL OF BACTERIOLOGY, 1996, 178 (05) :1451-1456
[4]  
BABENZIEN HD, 1991, ZBL MIKROBIOL, V146, P41
[5]  
BARBOUR D, 1996, TCI, V30, P62
[6]   Biologic and geologic characteristics of cold seeps in Monterey bay, California [J].
Barry, JP ;
Greene, HG ;
Orange, DL ;
Baxter, CH ;
Robison, BH ;
Kochevar, RE ;
Nybakken, JW ;
Reed, DL ;
McHugh, CM .
DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 1996, 43 (11-12) :1739-&
[7]  
Berg H. C., 1983, RANDOM WALKS BIOL, P142
[8]   Influence of bacteria, diffusion and sheer on micro-scale nutrient patches, and implications for bacterial chemotaxis [J].
Blackburn, N ;
Fenchel, T .
MARINE ECOLOGY PROGRESS SERIES, 1999, 189 :1-7
[9]   A marine microbial consortium apparently mediating anaerobic oxidation of methane [J].
Boetius, A ;
Ravenschlag, K ;
Schubert, CJ ;
Rickert, D ;
Widdel, F ;
Gieseke, A ;
Amann, R ;
Jorgensen, BB ;
Witte, U ;
Pfannkuche, O .
NATURE, 2000, 407 (6804) :623-626
[10]   AN UNUSUAL SYMBIONT FROM THE GUT OF SURGEONFISHES MAY BE THE LARGEST KNOWN PROKARYOTE [J].
CLEMENTS, KD ;
BULLIVANT, S .
JOURNAL OF BACTERIOLOGY, 1991, 173 (17) :5359-5362