Refine
Has Fulltext
- yes (4)
Is part of the Bibliography
- yes (4)
Document Type
- Doctoral Thesis (4)
Keywords
- Bacteria (2)
- Bakterien (2)
- Deep sequencing (2)
- Meeresschwämme (2)
- Metagenom (2)
- Ackerschmalwand (1)
- Agrobacterium vitis (1)
- Angewandte Mikrobiologie (1)
- Aplysina aerophoba (1)
- Arabidopsis thaliana (1)
Institute
- Graduate School of Life Sciences (4) (remove)
Sonstige beteiligte Institutionen
Host–microbe interactions are the key to understand why and how microbes inhabit specific environments. With the scientific fields of microbial genomics and metagenomics, evolving on an unprecedented scale, one is able to gain insights in these interactions on a molecular and ecological level. The goal of this PhD thesis was to make (meta–)genomic data accessible, integrate it in a comparative manner and to gain comprehensive taxonomic and functional insights into bacterial strains and communities derived from two different environments: the phyllosphere of Arabidopsis thaliana and the mesohyl interior of marine sponges.
This thesis focused first on the de novo assembly of bacterial genomes. A 5–step protocol was developed, each step including a quality control. The examination of different assembly software in a comparative way identified SPAdes as most suitable. The protocol enables the user to chose the best tailored assembly. Contamination issues were solved by an initial filtering of the data and methods normally used for the binning of metagenomic datasets. This step is missed in many published assembly pipelines. The described protocol offers assemblies of high quality ready for downstream analysis.
Subsequently, assemblies generated with the developed protocol were annotated and explored
in terms of their function. In a first study, the genome of a phyllosphere bacterium, Williamsia sp. ARP1, was analyzed, offering many adaptions to the leaf habitat: it can deal with temperature shifts, react to oxygen species, produces mycosporins as protection against UV–light, and is able to uptake photosynthates. Further, its taxonomic position within the Actinomycetales was infered from 16S rRNA and comparative genomics showing the close relation between the genera Williamsia and Gordonia.
In a second study, six sponge–derived actinomycete genomes were investigated for secondary metabolism. By use of state–of–the–art software, these strains exhibited numerous gene clusters, mostly linked to polykethide synthases, non–ribosomal peptide synthesis, terpenes, fatty acids and saccharides. Subsequent predictions on these clusters offered a great variety of possible produced compounds with antibiotic, antifungal or anti–cancer activity. These analysis highlight the potential for the synthesis of natural products and the use of genomic data as screening toolkit.
In a last study, three sponge–derived and one seawater metagenomes were functionally compared. Different signatures regarding the microbial composition and GC–distribution were observed between the two environments. With a focus on bacerial defense systems, the data indicates a pronounced repertoire of sponge associated bacteria for bacterial defense systems, in particular, Clustered Regularly Interspaced Short Palindromic Repeats, restriction modification system, DNA phosphorothioation and phage growth limitation. In addition, characterizing genes for secondary metabolite cluster differed between sponge and seawater microbiomes. Moreover, a variety of Type I polyketide synthases were only found within the sponge microbiomes. With that, metagenomics are shown to be a useful tool for the screening of secondary metabolite genes. Furthermore, enriched defense systems are highlighted as feature of sponge-associated microbes and marks them as a selective trait.
Marine sponges (phylum Porifera) are simple, sessile, filter-feeder animals. Microbial symbionts are commonly found in the sponge internal tissue, termed the mesohyl. With respect to the microbial content, sponges are classified as either low-microbial abundance sponges (LMA), or high-microbial abundance sponges (HMA). The HMA/LMA dichotomy was explored in this Thesis using the Red Sea sponges as experimental models. A range of methods encompassing transmission electron microscopy, 16S rRNA gene deep sequencing, and metatranscriptomics was employed towards this goal. Here, particular emphasis was placed on the functional analysis of sponge microbiomes.
The Red Sea sponges Stylissa carteri, Xestospongia testudinaria, Amphimedon ochracea, and Crella cyathophora were classified as HMA or LMA sponges using transmission electron microscopy. The diversity, specificity, and transcriptional activity of microbes associated with the sponges S. carteri (LMA) and X. testudinaria (HMA) and seawater were investigated using 16S rRNA amplicon pyrosequencing. The microbial composition of S. carteri was more similar to that of seawater than to that of X. testudinaria, which is consistent with the observation that the sequence data set of S. carteri contained many more possibly seawater sequences (~24%) than the X. testudinaria data set (~6%). The most abundant operational taxonomic units (OTUs) were shared between all three sources (S. carteri, X. testudinaria, seawater), while rare OTUs were unique to any given source. Despite this high degree of overlap, each sponge species contained its own specific microbiota. S. carteri microbiomes were enriched of Gammaproteobacteria and members of the genus Synechococcus and Nitrospira. Enriched members of X. testudinaria microbiomes included Chloroflexi, Deferribacteres, and Actinobacteria. The transcriptional activity of sponge-associated microorganisms was assessed by comparing 16S rRNA gene with transcript amplicons, which showed a good correlation.
The microbial functional gene repertoire of sponges and seawater from the Red Sea (X. testudinaria, S. carteri) and the Mediterranean (Aplysina aerophoba, Dysidea avara) were investigated with the environmental microarray GeoChip 4. Amplicon sequencing was performed alongside in order to assess microbial diversity. The typical microbial diversity patterns characteristic of HMA (abundance of Gammaproteobacteria, Chloroflexi, Acidobacteria, Deferribacteres, and others) and LMA sponges (abundance of Alpha-, Beta-, Gammaproteobacteria, Cyanobacteria, and Bacteroidetes) were confirmed. The HMA/LMA dichotomy was stronger than any possible geographic pattern based on microbial diversity (amplicon) and functional genes (GeoChip). However upon inspection of individual genes detected by GeoChip, very few specific differences were discernible, including differences related to microbial ammonia oxidation, ammonification (higher gene abundance in sponges over seawater) as well as denitrification (lower gene abundance). Furthermore, a higher abundance of a gene, pcc, representative of archaeal autotrophic carbon fixation was noted in sponges over seawater. Thirdly, stress-related genes, in particular those related to radiation, were found in lower abundances in sponge microbiomes than in seawater. With the exception of few documented specific differences, the functional gene repertoire between the different sources appeared largely similar.
The most actively expressed genes of S. carteri microbiomes were investigated with metatranscriptomics. Prokaryotic mRNA was enriched from sponge total RNA, sequenced using Illumina HiSeq technology, and annotated with the metagenomics Rapid Annotation using Subsystem Technology (MG-RAST) pipeline. High expression of archaeal ammonia oxidation and photosynthetic carbon fixation by members of the genus Synechococcus was detected. Functions related to stress response and membrane transporters were among the most highly expressed by S. carteri symbionts. Unexpectedly, gene functions related to methylotrophy were highly expressed by gammaproteobacterial symbionts. The presence of seawater-derived microbes is indicated by the phylogenetic proximity of organic carbon transporters to orthologs of members from the SAR11 clade. In summary, the most expressed functions of the S. carteri-associated microbial community were revealed and linked to the dominant taxonomic members of the microbiome.
In conclusion, HMA and LMA Red Sea sponges were used as models to gain insights into relevant themes in sponge microbiology, i.e. diversity, specificity, and functional activities. Overall, my Thesis contributes to a better understanding of sponge-associated microbial communities, and the implications of this association to marine ecology.
Sponges (phylum Porifera) are evolutionary ancient, sessile filter-feeders that harbor a largely diverse microbial community within their internal mesohyl matrix. Throughout this thesis project, I aimed at exploring the adaptations of these symbionts to life within their sponge host by sequencing and analyzing the genomes of a variety of bacteria from the microbiome of the Mediterranean sponge Aplysina aerophoba. Employed methods were fluorescence-activated cell sorting with subsequent multiple displacement amplification and single-cell / ‘mini-metagenome’ sequencing, and metagenomic sequencing followed by differential coverage binning. These two main approaches both aimed at obtaining genome sequences of bacterial symbionts of A. aerophoba, that were then compared to each other and to references from other environments, to gain information on adaptations to the host sponge environment and on possible interactions with the host and within the microbial community.
Cyanobacteria are frequent members of the sponge microbial community. My ‘mini-metagenome’ sequencing project delivered three draft genomes of “Candidatus Synechococcus spongiarum,” the cyanobacterial symbiont of A. aerophoba and many more sponges inhabiting the photic zone. The most complete of these genomes was compared to other clades of this symbiont and to closely related free-living cyanobacterial references in a collaborative project published in Burgsdorf I*, Slaby BM* et al. (2015; *shared first authorship). Although the four clades of “Ca. Synechococcus spongiarum” from the four sponge species A. aerophoba, Ircinia variabilis, Theonella swinhoei, and Carteriospongia foliascens were approximately 99% identical on the level of 16S rRNA gene sequences, they greatly differed on the genomic level. Not only the genome sizes were different from clade to clade, but also the gene content and a number of features including proteins containing the eukaryotic-type domains leucine-rich repeats or tetratricopeptide repeats. On the other hand, the four clades shared a number of features such as ankyrin repeat domain-containing proteins that seemed to be conserved also among other microbial phyla in different sponge hosts and from different geographic locations. A possible novel mechanism for host phagocytosis evasion and phage resistance by means of an altered O antigen of the lipopolysaccharide was identified.
To test previous hypotheses on adaptations of sponge-associated bacteria on a broader spectrum of the microbiome of A. aerophoba while also taking a step forward in methodology, I developed a bioinformatic pipeline to combine metagenomic Illumina short-read sequencing data with PacBio long-read data. At the beginning of this project, no pipelines to combine short-read and long-read data for metagenomics were published, and at time of writing, there are still no projects published with a comparable aim of un-targeted assembly, binning and analysis of a metagenome. I tried a variety of assembly programs and settings on a simulated test dataset reflecting the properties of the real metagenomic data. The developed assembly pipeline improved not only the overall assembly statistics, but also the quality of the binned genomes, which was evaluated by comparison to the originally published genome assemblies.
The microbiome of A. aerophoba was studied from various angles in the recent years, but only genomes of the candidate phylum Poribacteria and the cyanobacterial sequences from my above-described project have been published to date. By applying my newly developed assembly pipeline to a metagenomic dataset of A. aerophoba consisting of a PacBio long-read dataset and six Illumina short-read datasets optimized for subsequent differential coverage binning, I aimed at sequencing a larger number and greater diversity of symbionts. The results of this project are currently in review by The ISME Journal. The complementation of Illumina short-read with PacBio long-read sequencing data for binning of this highly complex metagenome greatly improved the overall assembly statistics and improved the quality of the binned genomes. Thirty-seven genomes from 13 bacterial phyla and candidate phyla were binned representing the most prominent members of the microbiome of A. aerophoba. A statistical comparison revealed an enrichment of genes involved in restriction modification and toxin-antitoxin systems in most symbiont genomes over selected reference genomes. Both are defense features against incoming foreign DNA, which may be important for sponge symbionts due to the sponge’s filtration and phagocytosis activity that exposes the symbionts to high levels of free DNA. Also host colonization and matrix utilization features were significantly enriched. Due to the diversity of the binned symbiont genomes, a within-symbionts genome comparison was possible, that revealed three guilds of symbionts characterized by i) nutritional specialization on the metabolization of carnitine, ii) specialization on sulfated polysaccharides, and iii) apparent nutritional generalism. Both carnitine and sulfated polysaccharides are abundant in the sponge extracellular matrix and therefore available to the sponge symbionts as substrates. In summary, the genomes of the diverse community of symbionts in A. aerophoba were united in their defense features, but specialized regarding their nutritional preferences.
Am Rebstock werden in der Natur von Agrobacterium vitis, dem Auslöser Wurzelhalsgallenerkrankung, charakteristische Wurzelhalsgallentumore induziert. Virulente Vertreter der Gattung der Agrobacteria schleusen bakterielle DNA in das pflanzliche Genom ein, wodurch die Pflanze Tumore produziert. Die Wurzelhalsgallenerkrankung wird seit einem Jahrhundert als ein Beispiel der Pflanzen-Pathogen-Interaktion untersucht. Die Rolle der bakteriellen Flora im Zusammenhang mit der Wurzelhalsgallenerkrankung beim Rebstock wurde bisher kaum betrachtet. Um dieser Frage nachzugehen, habe ich die endophytische mikrobielle Zusammensetzung von Rebstöcken mit und ohne Wurzelhalsgalle analysiert. Es werden Proben von drei Zeitpunkten einer Wachstumsperiode (Frühling, Sommer und Herbst) und von den Organen der Rebstöcke (Wurzeln, Pfropfstelle und einjährige Triebe) sowie dem Boden in einer Weinanlage bei Himmelstadt in Unterfranken genommen. Die Bakterienflora dieser Umweltproben wird mit kultivierungsabhängigen (Isolierung von Bakterien) und kultivierungsunabhängigen (Hochdurchsatzsequenzierungen) Methoden untersucht. Zudem werden i) die Virulenz der verschiedenen Agrobacterium-Isolate in Tumorassays bestimmt, ii) synthetische Bakteriengemeinschaften von in vitro kultivierten Weinpflänzchen mit Wurzelhalsgallen analysiert, iii) die Genome von einem virulenten und einem nicht-virulenten Agrobacteria-Isolat aus der Wurzelhalsgalle verglichen, iv) erste Interaktionsstudien auf festen Nährmedien durchgeführt und v) virulente Agrobacteria mittels bildgebender Fluoreszenz-Lebenszeit-Mikroskopie (FLIM) in Wurzelhalsgallen lokalisiert.
Die Rebstöcke dieser Studie haben eine organspezifische Bakterienflora, die innerhalb einer Wachstumsperiode variiert. Nur die Bakterienflora der Pfropfstelle (mit oder ohne Wurzelhalsgalle) aber nicht die des Bodens, der Wurzeln, und der einjährigen Triebe unterscheidet sich strukturell zwischen gesunden und erkrankten Rebstöcken. Mikroskopisch konnten virulente Agrobacteria punktuell in Interzellularen, sklerenchymatischen Geweben und assoziiert mit Leitgefäßen nachgewiesen werden. Dadurch ist ausreichend Lebensraum vorhanden, der zusätzlich von tumorspezifischen Bakterien besiedelt werden kann. Im Gegensatz zur gesunden Pfropfstelle ist in der Wurzelhalsgalle eine saisonal stabile Kernmikroflora, bestehend aus Vertreter von A. vitis, Pseudomonas, Enterobacteriaceae, Agrobacterium tumefaciens, Gammaproteobacteria und Burkholderiales, vorhanden. Diese Bakterien werden überwiegend aus dem Boden rekrutiert und profitieren von der Nährstoffsituation in der Wurzelhalsgalle. Wurzelhalsgallen enthalten Opine, die nur von der transformierten Pflanzenzelle produziert werden. Interessanterweise hat in dieser Arbeit ein Agrobacterium-Isolat Gene, die zum Opinkatabolismus beitragen und ein Pseudomonas-Isolat kann Opine als einzige Kohlenstoffquelle nutzen. Trotzdem sind beide Isolate weder virulent noch verdrängen sie die virulenten A. vitis, die ebenso Opine nutzen, aus der Wurzelhalsgalle. In synthetischen Bakteriengemeinschaften an in vitro kultivierten Weinpflänzchen konnte gezeigt werden, dass diese und weitere tumorspezifischen Bakterien, neben A. vitis, nicht essentiell zur Entstehung der Wurzelhalsgalle nötig sind aber unterschiedliche Funktionen in der Wurzelhalsgalle übernehmen. Ein Serratia-Isolat hemmt das Wachstum von A. vitis auf festen Nährmedium, andere fördern oder hemmen das Wachstum der Wurzelhalsgalle. Nach Studien in der Literatur erhöhen weitere Bakterien die Resistenz des Rebstocks gegenüber biotischem und abiotischem Stress.
Zusammengefasst identifizierten und isolierte ich in dieser Studie unter 150 unterschiedlichen Bakterien in der Wurzelhalsgalle jene Bakterien, die neben A. vitis von der neuen ökologischen Nische profitieren und somit wahrscheinlich Opportunisten mit unterschiedlichen Funktionen sind. In Folge von multiplen Interaktionen in der Wurzelhalsgalle entsteht ein ökologisches Gleichgewicht zwischen den opportunistischen Bakterien, der Wurzelhalsgalle und dem Rebstock, das den Fortbestand des Rebstocks mit Wurzelhalsgalle ermöglicht.