728 research outputs found
Comparative sequence analysis of IS50/Tn5 transposase
Author Posting. © American Society for Microbiology, 2004. This article is posted here by permission of American Society for Microbiology for personal use, not for redistribution. The definitive version was published in Journal of Bacteriology 186 (2004): 8240-8247, doi:10.1128/JB.186.24.8240-8247.2004.Comparative sequence analysis of IS50 transposase-related protein sequences in conjunction with known
structural, biochemical, and genetic data was used to determine domains and residues that play key roles in
IS50 transposase function. BLAST and ClustalW analyses have been used to find and analyze six complete
protein sequences that are related to the IS50 transposase. The protein sequence identity of these six homologs
ranged from 25 to 55% in comparison to the IS50 transposase. Homologous motifs were found associated with
each of the three catalytic residues. Residues that play roles in transposase-DNA binding, protein autoregulation,
and DNA hairpin formation were also found to be conserved in addition to other residues of unknown
function. On the other hand, some homologous sequences did not appear to be competent to encode the
inhibitor regulatory protein. The results were also used to compare the IS50 transposase with the more
distantly related transposase encoded by IS10.J.A. was supported by a grant from the National Science Foundation
(MCB0084089) administered by W.S.R. S.R.B. held a National Research
Council Research Associateship Award. W.S.R. is the Evelyn
Mercer Professor of Biochemistry and Molecular Biology. Additional
thanks are given to the NASA Astrobiology Institute (Cooperative
Agreement NNA04CC04A to Mitchell L. Sogin) and the W. M. Keck
Ecological and Evolutionary Genetics Facility within the Josephine
Bay Paul Center for Comparative Molecular Biology and Evolution at
the M.B.L. Molecular graphics images were produced by using the
UCSF Chimera package from the Computer Graphics Laboratory,
University of California, San Francisco (supported by NIH grant P41
RR-01081)
A single synonymous nucleotide change impacts the male-killing phenotype of prophage WO gene wmk
Wolbachia are the most widespread bacterial endosymbionts in animals. Within arthropods, these maternally transmitted bacteria can selfishly hijack host reproductive processes to increase the relative fitness of their transmitting females. One such form of reproductive parasitism called male killing, or the selective killing of infected males, is recapitulated to degrees by transgenic expression of the prophage WO-mediated killing (wmk) gene. Here, we characterize the genotype-phenotype landscape of wmk-induced male killing in D. melanogaster using transgenic expression. While phylogenetically distant wmk homologs induce no sex-ratio bias, closely-related homologs exhibit complex phenotypes spanning no death, male death, or death of all hosts. We demonstrate that alternative start codons, synonymous codons, and notably a single synonymous nucleotide in wmk can ablate killing. These findings reveal previously unrecognized features of transgenic wmk-induced killing and establish new hypotheses for the impacts of post-transcriptional processes in male killing variation. We conclude that synonymous sequence changes are not necessarily silent in nested endosymbiotic interactions with life-or-death consequences
The phage gene wmk is a candidate for male killing by a bacterial endosymbiont
Wolbachia are the most widespread maternally-transmitted bacteria in the animal kingdom. Their global spread in arthropods and varied impacts on animal physiology, evolution, and vector control are in part due to parasitic drive systems that enhance the fitness of infected females, the transmitting sex of Wolbachia. Male killing is one common drive mechanism wherein the sons of infected females are selectively killed. Despite decades of research, the gene(s) underlying Wolbachia-induced male killing remain unknown. Here using comparative genomic, transgenic, and cytological approaches in fruit flies, we identify a candidate gene in the eukaryotic association module of Wolbachia prophage WO, termed WO-mediated killing (wmk), which transgenically causes male-specific lethality during early embryogenesis and cytological defects typical of the pathology of male killing. The discovery of wmk establishes new hypotheses for the potential role of phage genes in sex-specific lethality, including the control of arthropod pests and vectors
Temperature Affects the Tripartite Interactions between Bacteriophage WO, Wolbachia, and Cytoplasmic Incompatibility
Wolbachia infections are a model for understanding intracellular, bacterial symbioses. While the symbiosis is often studied from a binary perspective of host and bacteria, it is increasingly apparent that additional trophic levels can influence the symbiosis. For example, Wolbachia in arthropods harbor a widespread temperate bacteriophage, termed WO, that forms virions and rampantly transfers between coinfections. Here we test the hypothesis that temperatures at the extreme edges of an insect's habitable range alter bacteriophage WO inducibility and in turn, Wolbachia densities and the penetrance of cytoplasmic incompatibility. We report four key findings using the model wasp, Nasonia vitripennis: First, both cold treatment at 18 C and heat treatment at 30 C reduce Wolbachia densities by as much as 74% relative to wasps reared at 25 C. Second, in all cases where Wolbachia densities decline due to temperature changes, phage WO densities increase and inversely associate with Wolbachia densities. Heat has a marked effect on phage WO, yielding phage densities that are 552% higher than the room temperature control. Third, there is a significant affect of insect family on phage WO and endoysmbiont densities. Fourth, at extreme temperatures, there was a temperature-mediated adjustment to the density threshold at which Wolbachia cause complete cytoplasmic incompatibility. Taken together, these results demonstrate that temperature simultaneously affects phage WO densities, endosymbiont densities, and the penetrance of cytoplasmic incompatibility. While temperature shock enhances bacteriophage inducibility and the ensuing bacterial mortality in a wide range of medically and industrially-important bacteria, this is the first investigation of the associations in an obligate intracellular bacteria. Implications to a SOS global sensing feedback mechanism in Wolbachia are discussed
Wolbachia in the Culex pipiens group mosquitoes: introgression and superinfection.
Wolbachia bacteria in mosquitoes induce cytoplasmic incompatibility (CI), where sperm from Wolbachia-infected males can produce inviable progeny. The wPip strain in the Culex pipiens group of mosquitoes produces a complexity of CI crossing types. Several factors are thought to be capable of influencing the expression of CI including Wolbachia strain type and host genotype. In this study, the unidirectional CI that occurs between 2 C. pipiens complex laboratory strains, Col and Mol, was further investigated by nuclear genotype introgression. The unidirectional CI between Col and Mol was not found to be influenced by host genetic background, in contrast to a previous introgression study carried out using bidirectionally incompatible C. pipiens group strains. A line containing both wPip strain variants superinfection was also generated by embryonic cytoplasmic transfer. The same crossing type as the parental Col strain was observed in the superinfected line. Quantitative polymerase chain reaction demonstrated a low density of the injected wPipMol variant in the superinfected line after 18 generations, which was considered likely to be responsible for the crossing patterns observed. The Wolbachia density was also shown to be lower in the parental Mol strain males compared with Col strain males, and no inverse relationship between WO phage and Wolbachia density could be detected
Mod/Resc Parsimony Inference
We address in this paper a new computational biology problem that aims at
understanding a mechanism that could potentially be used to genetically
manipulate natural insect populations infected by inherited, intra-cellular
parasitic bacteria. In this problem, that we denote by \textsc{Mod/Resc
Parsimony Inference}, we are given a boolean matrix and the goal is to find two
other boolean matrices with a minimum number of columns such that an
appropriately defined operation on these matrices gives back the input. We show
that this is formally equivalent to the \textsc{Bipartite Biclique Edge Cover}
problem and derive some complexity results for our problem using this
equivalence. We provide a new, fixed-parameter tractability approach for
solving both that slightly improves upon a previously published algorithm for
the \textsc{Bipartite Biclique Edge Cover}. Finally, we present experimental
results where we applied some of our techniques to a real-life data set.Comment: 11 pages, 3 figure
Complete Bacteriophage Transfer in a Bacterial Endosymbiont (Wolbachia) Determined by Targeted Genome Capture
Bacteriophage flux can cause the majority of genetic diversity in free-living bacteria. This tenet of bacterial genome evolution generally does not extend to obligate intracellular bacteria owing to their reduced contact with other microbes and a predominance of gene deletion over gene transfer. However, recent studies suggest intracellular coinfections in the same host can facilitate exchange of mobile elements between obligate intracellular bacteria—a means by which these bacteria can partially mitigate the reductive forces of the intracellular lifestyle. To test whether bacteriophages transfer as single genes or larger regions between coinfections, we sequenced the genome of the obligate intracellular Wolbachia strain wVitB from the parasitic wasp Nasonia vitripennis and compared it against the prophage sequences of the divergent wVitA coinfection. We applied, for the first time, a targeted sequence capture array to specifically trap the symbiont's DNA from a heterogeneous mixture of eukaryotic, bacterial, and viral DNA. The tiled array successfully captured the genome with 98.3% efficiency. Examination of the genome sequence revealed the largest transfer of bacteriophage and flanking genes (52.2 kb) to date between two obligate intracellular coinfections. The mobile element transfer occurred in the recent evolutionary past based on the 99.9% average nucleotide identity of the phage sequences between the two strains. In addition to discovering an evolutionary recent and large-scale horizontal phage transfer between coinfecting obligate intracellular bacteria, we demonstrate that “targeted genome capture” can enrich target DNA to alleviate the problem of isolating symbiotic microbes that are difficult to culture or purify from the conglomerate of organisms inside eukaryotes
Antibacterial Gene Transfer Across the Tree of Life
Though horizontal gene transfer (HGT) is widespread, genes and taxa experience biased rates of transferability. Curiously, independent transmission of homologous DNA to archaea, bacteria, eukaryotes, and viruses is extremely rare and often defies ecological and functional explanations. Here, we demonstrate that a bacterial lysozyme family integrated independently in all domains of life across diverse environments, generating the only glycosyl hydrolase 25 muramidases in plants and archaea. During coculture of a hydrothermal vent archaeon with a bacterial competitor, muramidase transcription is upregulated. Moreover, recombinant lysozyme exhibits broad-spectrum antibacterial action in a dose-dependent manner. Similar to bacterial transfer of antibiotic resistance genes, transfer of a potent antibacterial gene across the universal tree seemingly bestows a niche-transcending adaptation that trumps the barriers against parallel HGT to all domains. The discoveries also comprise the first characterization of an antibacterial gene in archaea and support the pursuit of antibiotics in this underexplored group
Disruption of termite gut-microbiota and its prolonged fitness consequences
Author Posting. © The Author(s), 2011. This is the author's version of the work. It is posted here by permission of American Society for Microbiology for personal use, not for redistribution. The definitive version was published in Applied and Environmental Microbiology 77 (2011): 4303-4312, doi:10.1128/AEM.01886-10.The disruption of host-symbiont interactions through the use of antibiotics
can help elucidate microbial functions that go beyond short-term nutritional
value. Termite gut symbionts have been studied extensively, but little is
known about their impact on the termite’s reproductive output. Here we
describe the effect that the antibiotic rifampin has not only on the gut
microbial diversity, but also on the longevity, fecundity, and weight of two
termite species - Zootermopsis angusticollis and Reticulitermes flavipes.
We report three key findings: (i) the antibiotic rifampin, when fed to
primary reproductives during the incipient stages of colony foundation,
causes a permanent reduction in the diversity of gut bacteria, and a
transitory effect on the density of the protozoan community, (ii) rifampin
treatment reduces oviposition rates of queens, translating into delayed
colony growth and ultimately reduced colony fitness and (iii) the initial
dosages of rifampin on reproduction and colony fitness had severe longterm fitness effects on Z. angusticollis survivorship and colony size. Taken
together, our findings demonstrate that the antibiotic-induced perturbation
of the microbial community associates with prolonged reductions in
longevity and fecundity. A causal relationship between these changes in the
gut microbial population structures and fitness is suggested by the
acquisition of opportunistic pathogens and incompetence of the termites to
restore a pre-treatment, native microbiota. Our results indicate that
antibiotic treatment significantly alters the termite’s microbiota,
reproduction, colony establishment and ultimately, colony growth and
development. We discuss the implications for antimicrobials as a new
application to the control of termite pest species.This research was funded by the Louis Stokes Minority Program which
supported Jessica Dumas, NSF CAREER award DEB 0447316 to
Rosengaus RB, and NSF IOS-0852344 and NAI NNA04CC04A to
Bordenstein SR
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