Nutritional upgrading for omnivorous carpenter ants by the endosymbiont Blochmannia

被引:231
作者
Feldhaar, Heike [1 ]
Straka, Josef [1 ]
Krischke, Markus [2 ]
Berthold, Kristina [1 ]
Stoll, Sascha [3 ]
Mueller, Martin J. [2 ]
Gross, Roy [3 ]
机构
[1] Univ Wurzburg, Dept Behav Physiol & Sociobiol Zool 2, Bioctr, D-97074 Wurzburg, Germany
[2] Univ Wurzburg, Dept Pharmaceut Biol, Julius Von Sachs Inst Biosci, Bioctr, D-97082 Wurzburg, Germany
[3] Univ Wurzburg, Dept Microbiol, Bioctr, D-97074 Wurzburg, Germany
关键词
D O I
10.1186/1741-7007-5-48
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: Carpenter ants ( genus Camponotus) are considered to be omnivores. Nonetheless, the genome sequence of Blochmannia floridanus, the obligate intracellular endosymbiont of Camponotus floridanus, suggests a function in nutritional upgrading of host resources by the bacterium. Thus, the strongly reduced genome of the endosymbiont retains genes for all subunits of a functional urease, as well as those for biosynthetic pathways for all but one ( arginine) of the amino acids essential to the host. Results: Nutritional upgrading by Blochmannia was tested in 90-day feeding experiments with brood-raising in worker-groups on chemically defined diets with and without essential amino acids and treated or not with antibiotics. Control groups were fed with cockroaches, honey water and Bhatkar agar. Worker-groups were provided with brood collected from the queenright mother-colonies ( 45 eggs and 45 first instar larvae each). Brood production did not differ significantly between groups of symbiotic workers on diets with and without essential amino acids. However, aposymbiotic worker groups raised significantly less brood on a diet lacking essential amino acids. Reduced brood production by aposymbiotic workers was compensated when those groups were provided with essential amino acids in their diet. Decrease of endosymbionts due to treatment with antibiotic was monitored by qRT-PCR and FISH after the 90-day experimental period. Urease function was confirmed by feeding experiments using 15N- labelled urea. GC-MS analysis of 15N-enrichment of free amino acids in workers revealed significant labelling of the non-essential amino acids alanine, glycine, aspartic acid, and glutamic acid, as well as of the essential amino acids methionine and phenylalanine. Conclusion: Our results show that endosymbiotic Blochmannia nutritionally upgrade the diet of C. floridanus hosts to provide essential amino acids, and that it may also play a role in nitrogen recycling via its functional urease. Blochmannia may confer a significant fitness advantage via nutritional upgrading by enhancing competitive ability of Camponotus with other ant species lacking such an endosymbiont. Domestication of the endosymbiont may have facilitated the evolutionary success of the genus Camponotus.
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共 38 条
[1]   Genome sequence of the endocellular obligate symbiont of tsetse flies, Wigglesworthia glossinidia [J].
Akman, L ;
Yamashita, A ;
Watanabe, H ;
Oshima, K ;
Shiba, T ;
Hattori, M ;
Aksoy, S .
NATURE GENETICS, 2002, 32 (03) :402-407
[2]   COMBINATION OF 16S RIBOSOMAL-RNA-TARGETED OLIGONUCLEOTIDE PROBES WITH FLOW-CYTOMETRY FOR ANALYZING MIXED MICROBIAL-POPULATIONS [J].
AMANN, RI ;
BINDER, BJ ;
OLSON, RJ ;
CHISHOLM, SW ;
DEVEREUX, R ;
STAHL, DA .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1990, 56 (06) :1919-1925
[3]   PRIMROSE: a computer program for generating and estimating the phylogenetic range of 16S rRNA oligonucleotide probes and primers in conjunction with the RDP-II database [J].
Ashelford, KE ;
Weightman, AJ ;
Fry, JC .
NUCLEIC ACIDS RESEARCH, 2002, 30 (15) :3481-3489
[4]   Biology of bacteriocyte-associated endosymbionts of plant sap-sucking insects [J].
Baumann, P .
ANNUAL REVIEW OF MICROBIOLOGY, 2005, 59 :155-189
[5]  
BHATKAR A, 1970, Florida Entomologist, V53, P229, DOI 10.2307/3493193
[6]  
Blochmann F., 1887, ZENTBL BAKTERIOL, V11, P234
[7]   Disentangling a rainforest food web using stable isotopes:: dietary diversity in a species-rich ant community [J].
Blüthgen, N ;
Gebauer, G ;
Fiedler, K .
OECOLOGIA, 2003, 137 (03) :426-435
[8]  
Bolton Barry, 1995, P1
[9]  
Brown W.L., 1973, Tropical forest ecosystems in Africa and South America: a comparative review, P161, DOI DOI 10.5281/ZENODO.17403
[10]  
BUCHNER P, 1953, ENDOSYMBOISE TIERE P