Impact of violacein-producing bacteria on survival and feeding of bacterivorous nanoflagellates

被引:182
作者
Matz, C [1 ]
Deines, P
Boenigk, J
Arndt, H
Eberl, L
Kjelleberg, S
Jürgens, K
机构
[1] Univ New S Wales, Ctr Marine Biofouling & BioInnovat, Sch Biotechnol & Biomol Sci, Sydney, NSW 2052, Australia
[2] Max Planck Inst Limnol, Dept Physiol Ecol, D-24302 Plon, Germany
[3] Univ Cologne, Inst Zool, Dept Gen Ecol & Limnol, D-50923 Cologne, Germany
[4] Baltic Sea Res Inst Warnemunde, D-18119 Rostock, Germany
[5] Univ Zurich, Inst Plant Biol, Dept Microbiol, CH-8008 Zurich, Switzerland
关键词
D O I
10.1128/AEM.70.3.1593-1599.2004
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
We studied the role of bacterial secondary metabolites in the context of grazing protection against protozoans. A model system was used to examine the impact of violacein-producing bacteria on feeding rates, growth, and survival of three common bacterivorous nanoflagellates. Freshwater isolates of Janthinobacterium lividum and Chromobacterium violaceum produced the purple pigment violacein and exhibited acute toxicity to the nanoflagellates tested. High-resolution video microscopy revealed that these bacteria were ingested by the flagellates at high rates. The uptake of less than three bacteria resulted in rapid flagellate cell death after about 20 min and cell lysis within 1 to 2 h. In selectivity experiments with nontoxic Pseudomonas putida MM1, flagellates did not discriminate against pigmented strains. Purified violacein from cell extracts of C violaceum showed high toxicity to nanoflagellates. In addition, antiprotozoal activity was found to positively correlate with the violacein content of the bacterial strains. Pigment synthesis in C violaceum is regulated by an N-acylhomoserine lactone (AHL)-dependent quorum-sensing system. An AHL-deficient, nonpigmented mutant provided high flagellate growth rates, while the addition of the natural C violaceum AHL could restore toxicity. Moreover, it was shown that the presence of violacein-producing bacteria in an otherwise nontoxic bacterial diet considerably inhibited flagellate population growth. Our results suggest that violacein-producing bacteria possess a highly effective survival mechanism which may exemplify the potential of some bacterial secondary metabolites to undermine protozoan grazing pressure and population dynamics.
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收藏
页码:1593 / 1599
页数:7
相关论文
共 52 条
[1]   Extraction of violacein from Chromobacterium violaceum provides a new quantitative bioassay for N-acyl homoserine lactone autoinducers [J].
Blosser, RS ;
Gray, KM .
JOURNAL OF MICROBIOLOGICAL METHODS, 2000, 40 (01) :47-55
[2]  
Boenigk J, 2001, MICROB ECOL, V42, P168
[3]   Chitinolytic activity in Chromobacterium violaceum:: Substrate analysis and regulation by quorum sensing [J].
Chernin, LS ;
Winson, MK ;
Thompson, JM ;
Haran, S ;
Bycroft, BW ;
Chet, I ;
Williams, P ;
Stewart, GSAB .
JOURNAL OF BACTERIOLOGY, 1998, 180 (17) :4435-4441
[4]   Measurement of bacterivory by heterotrophic nanoflagellates using immunofluorescence labelling of ingested cells [J].
Christoffersen, K ;
Nybroe, O ;
Jurgens, K ;
Hansen, M .
AQUATIC MICROBIAL ECOLOGY, 1997, 13 (01) :127-134
[5]  
Christoffersen Kirsten, 1996, Phycologia, V35, P42, DOI 10.2216/i0031-8884-35-6S-42.1
[7]   Molecular characterization of estuarine bacterial communities that use high- and low-molecular weight fractions of dissolved organic carbon [J].
Covert, JS ;
Moran, MA .
AQUATIC MICROBIAL ECOLOGY, 2001, 25 (02) :127-139
[8]   FEEDING HABITS AND GROWTH RATES OF SOME FRESH-WATER CILIATES FOUND IN ACTIVATED-SLUDGE PLANTS [J].
CURDS, CR ;
VANKYKE, JM .
JOURNAL OF APPLIED ECOLOGY, 1966, 3 (01) :127-&
[9]  
DEMAIN AL, 1995, SYMP SOC GEN MICROBI, V53, P205
[10]  
Doucette Gregory J., 1995, Natural Toxins, V3, P65, DOI 10.1002/nt.2620030202