@misc{FriedrichHollensteinerScherfetal., author = {Friedrich, Ines and Hollensteiner, Jacqueline and Scherf, Janna and Weyergraf, Judith and Klassen, Anna and Poehlein, Anja and Hertel, Robert and Daniel, Rolf}, title = {Complete Genome Sequence of Stenotrophomonas indicatrix DAIF1}, series = {Microbiology Resource Announcements}, volume = {10}, journal = {Microbiology Resource Announcements}, number = {6}, issn = {2576-098X}, doi = {10.1128/MRA.01484-20}, pages = {1 -- 3}, abstract = {We present the complete genome of Stenotrophomonas indicatrix DAIF1, which was isolated from an oligotrophic pond in a water protection area. Whole-genome alignments indicated that strain DAIF1 belongs to the species Stenotrophomonas indicatrix. The whole genome (4,639,375 bp) harbors 4,108 protein-encoding genes, including 3,029 genes with assigned functions.}, language = {en} } @misc{HollensteinerFriedrichHollsteinetal., author = {Hollensteiner, Jacqueline and Friedrich, Ines and Hollstein, Lucas and Lamping, Jan-Philipp and Wolf, Kalina and Liesegang, Heiko and Poehlein, Anja and Hertel, Robert and Daniel, Rolf}, title = {Complete Genome Sequence of Kinneretia sp. Strain DAIF2, Isolated from a Freshwater Pond}, series = {Microbiology Resource Announcements}, volume = {10}, journal = {Microbiology Resource Announcements}, number = {8}, issn = {2576-098X}, doi = {10.1128/MRA.00003-21}, pages = {1 -- 3}, abstract = {Kinneretia sp. strain DAIF2 was isolated from a eutrophic freshwater pond. The genome consists of a single chromosome (6,010,585 bp) with a GC content of 69.3\%. The whole-genome-based phylogeny of DAIF2 revealed a closest relation to the genus Kinneretia.}, language = {en} } @misc{OtteKuehneFurreretal., author = {Otte, Kolja and K{\"u}hne, Nora and Furrer, Alexandra and Lozada, Lina and Lutz, Veronika and Schilling, Tobias and Hertel, Robert}, title = {A CRISPR-Cas9 tool to explore the genetics of Bacillus subtilis phages}, series = {Letters in Applied Microbiology}, volume = {71}, journal = {Letters in Applied Microbiology}, number = {6}, issn = {1472-765X}, doi = {10.1111/lam.13349}, pages = {588 -- 595}, abstract = {Here we present pRH030, a new CRISPR-Cas9 tool for the genetic engineering of Bacillus phages and beyond. It is based on the Streptococcus pyogenes cas9 with its native constitutive promoter, tracrRNA, and a gRNA precursor. The constitutive expression of Cas9 was conducive to the inactivation of viral attackers and enhanced phage mutagenesis efficiency up to 100\%. The gRNA precursor can be built-up to an artificial CRISPR array with up to 5 spacers (target sequences) assembled from ordinary oligonucleotides and directly cloned into pRH030. Required time and resources remain comparable to a single gRNA cloning. These properties make pRH030 an attractive new system for the modification of Bacillus phages and qualify it for research beyond genetic construction.}, language = {en} } @misc{FriedrichHollensteinerSchneideretal., author = {Friedrich, Ines and Hollensteiner, Jacqueline and Schneider, Dominik and Poehlein, Anja and Hertel, Robert and Daniel, Rolf}, title = {First Complete Genome Sequences of Janthinobacterium lividum EIF1 and EIF2 and their Comparative Genome Analysis}, series = {Genome Biology and Evolution}, volume = {12}, journal = {Genome Biology and Evolution}, number = {10}, issn = {1759-6653}, doi = {10.1093/gbe/evaa148}, pages = {1782 -- 1788}, abstract = {We present the first two complete genomes of the Janthinobacterium lividum species, namely strains EIF1 and EIF2, which both possess the ability to synthesize violacein. The violet pigment violacein is a secondary metabolite with antibacterial, antifungal, antiviral, and antitumoral properties. Both strains were isolated from environmental oligotrophic water ponds in G{\"o}ttingen. The strains were phylogenetically classified by ANI analysis and showed a species assignment to Janthinobacterium lividum with 97.72\% (EIF1) and 97.66\% (EIF2) identity. These are the first complete genome sequences of strains belonging to the species Janthinobacterium lividum. The genome of strain EIF1 consists of one circular chromosome (6,373,589 bp) with a GC-content of 61.98\%. The genome contains 5,551 coding sequences, 122 rRNAs, 93 tRNAs, and 1 tm-RNA. The genome of EIF2 comprises one circular chromosome (6,399,352 bp) with a GC-content of 61.63\% and a circular plasmid p356839 (356,839 bp) with a GC-content of 57.21\%. The chromosome encodes 5,691 coding sequences, 122 rRNAs, 93 tRNAs, and 1 tm-RNA and the plasmid harbors 245 coding sequences. In addition to the highly conserved chromosomally encoded violacein operon, the plasmid comprises a non-ribosomal peptide synthetase cluster (NRPS) with similarity to xenoamicin, which is a bioactive compound effective against protozoan parasites.}, language = {en} } @misc{RichtsHertelPototetal., author = {Richts, Bj{\"o}rn and Hertel, Robert and Potot, S{\´e}bastien and Poehlein, Anja and Daniel, Rolf and Schyns, Ghislain and Pr{\´a}gai, Zolt{\´a}n and Commichau, Fabian M.}, title = {Complete Genome Sequence of the Prototrophic Bacillus subtilis subsp. subtilis Strain SP1}, series = {Microbiology Resource Announcements}, volume = {9}, journal = {Microbiology Resource Announcements}, number = {32}, issn = {2576-098X}, doi = {10.1128/MRA.00825-20}, pages = {3}, abstract = {Here, we present the complete genome sequence of the Bacillus subtilis strain SP1. This strain is a descendant of the laboratory strain 168. The strain is suit- able for biotechnological applications because the prototrophy for tryptophan has been restored. Due to laboratory cultivation, the strain has acquired 24 additional sequence variations.}, language = {en} } @misc{LilgeHertelMorabbiHeravietal., author = {Lilge, Lars and Hertel, Robert and Morabbi Heravi, Kambiz and Henkel, Marius and Commichau, Fabian M. and Hausmann, Rudolf}, title = {Draft Genome Sequence of the Type Strain Bacillus subtilis subsp. subtilis DSM10}, series = {Microbiology Resource Announcements}, volume = {10}, journal = {Microbiology Resource Announcements}, number = {10}, issn = {2576-098X}, doi = {10.1128/MRA.00158-21}, pages = {1 -- 3}, abstract = {The Bacillus subtilis subsp. subtilis type strain DSM10 has been used as a reference in various studies. However, detailed information about the genome has not been available. Therefore, whole-genome sequencing was performed, and the sequence was compared with that of the related B. subtilis strain NCIB3610.}, language = {en} } @misc{RiedelCommichauBenndorfetal., author = {Riedel, Ramona and Commichau, Fabian M. and Benndorf, Dirk and Hertel, Robert and Holzer, Katharina and Mardoukhi, Mohammad Saba Yousef and Noack, Laura and Martienssen, Marion}, title = {Biodegradation of selected aminophosphonates by the bacterial isolate Ochrobactrum sp. BTU1}, series = {Microbial Research}, volume = {280}, journal = {Microbial Research}, issn = {0944-5013}, doi = {10.1016/j.micres.2024.127600}, pages = {1 -- 12}, abstract = {Aminophosphonates, like glyphosate (GS) or metal chelators such as ethylenediaminetetra(methylenephosphonic acid) (EDTMP), are released on a large scale worldwide. Here, we have characterized a bacterial strain capable of degrading synthetic aminophosphonates. The strain was isolated from LC/MS standard solution. Genome sequencing indicated that the strain belongs to the genus Ochrobactrum. Whole-genome classification using pyANI software to compute a pairwise ANI and other metrics between Brucella assemblies and Ochrobactrum contigs revealed that the bacterial strain is designated as Ochrobactrum sp. BTU1. Degradation batch tests with Ochrobactrum sp. BTU1 and the selected aminophosphonates GS, EDTMP, aminomethylphosphonic acid (AMPA), iminodi(methylene-phosphonic) (IDMP) and ethylaminobis(methylenephosphonic) acid (EABMP) showed that the strain can use all phosphonates as sole phosphorus source during phosphorus starvation. The highest growth rate was achieved with AMPA, while EDTMP and GS were least supportive for growth. Proteome analysis revealed that GS degradation is promoted by C-P lyase via the sarcosine pathway, i.e., initial cleavage at the C-P bond. We also identified C-P lyase to be responsible for degradation of EDTMP, EABMP, IDMP and AMPA. However, the identification of the metabolite ethylenediaminetri(methylenephosphonic acid) via LC/MS analysis in the test medium during EDTMP degradation indicates a different initial cleavage step as compared to GS. For EDTMP, it is evident that the initial cleavage occurs at the C-N bond. The detection of different key enzymes at regulated levels, form the bacterial proteoms during EDTMP exposure, further supports this finding.}, language = {en} } @misc{HertelSchoeneMittelstaedtetal., author = {Hertel, Robert and Sch{\"o}ne, Kerstin and Mittelst{\"a}dt, Carolin and Meißner, Janek and Zschoche, Nick and Collignon, Madeline and Kohler, Christian and Friedrich, Ines and Schneider, Dominik and Hoppert, Michael and Kuhn, Ramona and Schwedt, Inge and Scholz, Patricia and Poehlein, Anja and Martienssen, Marion and Ischebeck, Till and Daniel, Rolf and Commichau, Fabian M.}, title = {Characterization of glyphosate-resistant Burkholderia anthina and Burkholderia cenocepacia isolates from a commercial Roundup® solution}, series = {Environmental Microbiology Reports}, volume = {14}, journal = {Environmental Microbiology Reports}, number = {1}, issn = {1758-2229}, doi = {10.1111/1758-2229.13022}, pages = {70 -- 84}, abstract = {Roundup® is the brand name for herbicide solutions containing glyphosate, which specifically inhibits the 5-enolpyruvyl-shikimate-3-phosphate (EPSP) synthase of the shikimate pathway. The inhibition of the EPSP synthase causes plant death because EPSP is required for biosynthesis of aromatic amino acids. Glyphosate also inhibits the growth of archaea, bacteria, Apicomplexa, algae and fungi possessing an EPSP synthase. Here, we have characterized two glyphosate-resistant bacteria from a Roundup solution. Taxonomic classification revealed that the isolates 1CH1 and 2CH1 are Burkholderia anthina and Burkholderia cenocepacia strains respectively. Both isolates cannot utilize glyphosate as a source of phosphorus and synthesize glyphosate-sensitive EPSP synthase variants. Burkholderia. anthina 1CH1 and B. cenocepacia 2CH1 tolerate high levels of glyphosate because the herbicide is not taken up by the bacteria. Previously, it has been observed that the exposure of soil bacteria to herbicides like glyphosate promotes the development of antibiotic resistances. Antibiotic sensitivity testing revealed that the only the B. cenocepacia 2CH1 isolate showed increased resistance to a variety of antibiotics. Thus, the adaptation of B. anthina 1CH1 and B. cenocepacia 2CH1 to glyphosate did not generally increase the antibiotic resistance of both bacteria. However, our study confirms the genomic adaptability of bacteria belonging to the genus Burkholderia.}, language = {en} } @misc{FriedrichBodenbergerNeubaueretal., author = {Friedrich, Ines and Bodenberger, Bernhard and Neubauer, Hannes and Hertel, Robert and Daniel, Rolf}, title = {Down in the pond: Isolation and characterization of a new Serratia marcescens strain (LVF3) from the surface water near frog's lettuce (Groenlandia densa)}, series = {PLoS One}, volume = {16}, journal = {PLoS One}, number = {11}, issn = {1932-6203}, doi = {10.1371/journal.pone.0259673}, abstract = {Serratia marcescens is a species that belongs to the family of Yersiniaceae. This family comprises taxa representing opportunistic human- and phytopathogens but also plant growth-promoting rhizobacteria (PGPR). This study describes a novel Gram-negative strain (LVF3R) of the species Serratia marcescens. The strain was characterized genomically, morphologically, and physiologically. In addition, the potential of the isolate to act as a host strain to assess the diversity of Serratia associated phages in environmental samples was explored. Average nucleotide identity analysis revealed that LVF3R belongs to the species Serratia marcescens. In silico analysis and ProphageSeq data resulted in the identification of one prophage, which is capable of viral particle formation. Electron microscopy showed cells of a rod-shaped, flagellated morphotype. The cells revealed a length and width of 1-1.6 μm and 0.8 μm, respectively. LVF3R showed optimal growth at 30 C and in the presence of up to 2\% (w/v) NaCl. It exhibited resistances to ampicillin, erythromycin, oxacillin, oxytetracycline, rifampicin, tetracycline, and vancomycin. Genome data indicate that strain S. marcescens LVF3R is a potential PGPR strain. It harbors genes coding for indole acetic acid (IAA) biosynthesis, siderophore production, plant polymer degradation enzymes, acetoin synthesis, flagellar proteins, type IV secretion system, chemotaxis, phosphorous solubilization, and biofilm formation.}, language = {en} } @misc{HertelGibhardtMartienssenetal., author = {Hertel, Robert and Gibhardt, Johannes and Martienssen, Marion and Kuhn, Ramona and Commichau, Fabian M.}, title = {Molecular mechanisms underlying glyphosate resistance in bacteria}, series = {Environmental Microbiology}, volume = {23}, journal = {Environmental Microbiology}, number = {6}, issn = {1462-2920}, doi = {10.1111/1462-2920.15534}, pages = {2891 -- 2905}, abstract = {Glyphosate is a nonselective herbicide that kills weeds and other plants competing with crops. Glyphosate specifically inhibits the 5-enolpyruvyl-shikimate-3-phosphate (EPSP) synthase, thereby depleting the cell of EPSP serving as a precursor for biosynthesis of aromatic amino acids. Glyphosate is considered to be toxicologically safe for animals and humans. Therefore, it became the most-important herbicide in agriculture. However, its intensive application in agriculture is a serious environmental issue because it may negatively affect the biodiversity. A few years after the discovery of the mode of action of glyphosate, it has been observed that bacteria evolve glyphosate resistance by acquiring mutations in the EPSP synthase gene, rendering the encoded enzyme less sensitive to the herbicide. The identification of glyphosate-resistant EPSP synthase variants paved the way for engineering crops tolerating increased amounts of the herbicide. This review intends to summarize the molecular mechanisms underlying glyphosate resistance in bacteria. Bacteria can evolve glyphosate resistance by (i) reducing glyphosate sensitivity or elevating production of the EPSP synthase, by (ii) degrading or (iii) detoxifying glyphosate and by (iv) decreasing the uptake or increasing the export of the herbicide. The variety of glyphosate resistance mechanisms illustrates the adaptability of bacteria to anthropogenic substances due to genomic alterations.}, language = {en} } @misc{SchwedtSchoeneEckertetal., author = {Schwedt, Inge and Sch{\"o}ne, Kerstin and Eckert, Maike and Pizzinato, Manon and Winkler, Laura and Knotkova, Barbora and Richts, Bj{\"o}rn and Hau, Jann-Louis and Steuber, Julia and Mireles, Raul and Noda-Garcia, Lianet and Fritz, G{\"u}nter and Mittelst{\"a}dt, Carolin and Hertel, Robert and Commichau, Fabian M.}, title = {The low mutational flexibility of the EPSP synthase in Bacillus subtilis is due to a higher demand for shikimate pathway intermediates}, series = {Environmental Microbiology}, volume = {25}, journal = {Environmental Microbiology}, number = {12}, issn = {1462-2912}, doi = {10.1111/1462-2920.16518}, pages = {3604 -- 3622}, abstract = {Glyphosate (GS) inhibits the 5-enolpyruvyl-shikimate-3-phosphate (EPSP) synthase that is required for aromatic amino acid, folate and quinone biosynthesis in Bacillus subtilis and Escherichia coli. The inhibition of the EPSP synthase by GS depletes the cell of these metabolites, resulting in cell death. Here, we show that like the laboratory B. subtilis strains also environmental and undomesticated isolates adapt to GS by reducing herbicide uptake. Although B. subtilis possesses a GS-insensitive EPSP synthase, the enzyme is strongly inhibited by GS in the native environment. Moreover, the B. subtilis EPSP synthase mutant was only viable in rich medium containing menaquinone, indicating that the bacteria require a catalytically efficient EPSP synthase under nutrient-poor conditions. The dependency of B. subtilis on the EPSP synthase probably limits its evolvability. In contrast, E. coli rapidly acquires GS resistance by target modification. However, the evolution of a GS-resistant EPSP synthase under non-selective growth conditions indicates that GS resistance causes fitness costs. Therefore, in both model organisms, the proper function of the EPSP synthase is critical for the cellular viability. This study also revealed that the uptake systems for folate precursors, phenylalanine and tyrosine need to be identified and characterized in B. subtilis.}, language = {en} } @misc{SchwedtCollignonMittelstaedtetal., author = {Schwedt, Inge and Collignon, Madeline and Mittelst{\"a}dt, Carolin and Giudici, Florian and Rapp, Johanna and Meißner, Janek and Link, Hannes and Hertel, Robert and Commichau, Fabian M.}, title = {Genomic adaptation of Burkholderia anthina to glyphosate uncovers a novel herbicide resistance mechanism}, series = {Environmental Microbiology Reports}, volume = {15}, journal = {Environmental Microbiology Reports}, number = {6}, issn = {1758-2229}, doi = {10.1111/1758-2229.13184}, pages = {727 -- 739}, abstract = {Glyphosate (GS) specifically inhibits the 5-enolpyruvyl-shikimate-3-phosphate (EPSP) synthase that converts phosphoenolpyruvate (PEP) and shikimate-3-phosphate to EPSP in the shikimate pathway of bacteria and other organisms. The inhibition of the EPSP synthase depletes the cell of the EPSP-derived aromatic amino acids as well as of folate and quinones. A variety of mechanisms (e.g., EPSP synthase modification) has been described that confer GS resistance to bacteria. Here, we show that the Burkholderia anthina strain DSM 16086 quickly evolves GS resistance by the acquisition of mutations in the ppsR gene. ppsR codes for the pyruvate/ortho-Pi dikinase PpsR that physically interacts and regulates the activity of the PEP synthetase PpsA. The mutational inactivation of ppsR causes an increase in the cellular PEP concentration, thereby abolishing the inhibition of the EPSP synthase by GS that competes with PEP for binding to the enzyme. Since the overexpression of the Escherichia coli ppsA gene in Bacillus subtilis and E. coli did not increase GS resistance in these organisms, the mutational inactivation of the ppsR gene resulting in PpsA overactivity is a GS resistance mechanism that is probably unique to B. anthina.}, language = {en} } @misc{FriedrichKlassenNeubaueretal., author = {Friedrich, Ines and Klassen, Anna and Neubauer, Hannes and Schneider, Dominik and Hertel, Robert and Daniel, Rolf}, title = {Living in a Puddle of Mud: Isolation and Characterization of Two Novel Caulobacteraceae Strains Brevundimonas pondensis sp. nov. and Brevundimonas goettingensis sp. nov.}, series = {Applied Microbiology}, volume = {1}, journal = {Applied Microbiology}, number = {1}, issn = {2673-8007}, doi = {10.3390/applmicrobiol1010005}, pages = {38 -- 59}, abstract = {Brevundimonas is a genus of freshwater bacteria belonging to the family Caulobacteraceae. The present study describes two novel species of the genus Brevundimonas (LVF1 T and LVF2 T ). Both were genomically, morphologically, and physiologically characterized. Average nucleotide identity analysis revealed both are unique among known Brevundimonas strains. In silico and additional ProphageSeq analyses resulted in two prophages in the LVF1 T genome and a remnant prophage in the LVF2 T genome. Bacterial LVF1 T cells form an elliptical morphotype, in average 1 µ m in length and 0.46 µ m in width, with a single flagellum. LVF2 T revealed motile cells approximately 1.6 µ m in length and 0.6 µ m in width with a single flagellum, and sessile cell types 1.3 µ m in length and 0.6 µ m in width. Both are Gram-negative, aerobic, have optimal growth at 30 ◦ C (up to 0.5 to 1\% NaCl). Both are resistant towards erythromycin, meropenem, streptomycin, tetracycline and vancomycin. Anaerobic growth was observed after 14 days for LVF1 T only. For LVF1 T the name Brevundimonas pondensis sp. nov. and for LVF2 T the name Brevundimonas goettingensis sp. nov. are proposed. Type strains are LVF1 T (=DSM 112304 T = CCUG 74982 T = LMG 32096 T ) and LVF2 T (=DSM 112305 T = CCUG 74983 T = LMG 32097 T ).}, language = {en} } @misc{KohmHertel, author = {Kohm, Katharina and Hertel, Robert}, title = {The life cycle of SPβ and related phages}, series = {Archives of Virology}, volume = {166}, journal = {Archives of Virology}, number = {8}, issn = {1432-8798}, doi = {10.1007\%2Fs00705-021-05116-9}, pages = {2119 -- 2130}, abstract = {Phages are viruses of bacteria and are the smallest and most common biological entities in the environment. They can reproduce immediately after infection or integrate as a prophage into their host genome. SPβ is a prophage of the Gram-positive model organism Bacillus subtilis 168, and it has been known for more than 50 years. It is sensitive to dsDNA damage and is induced through exposure to mitomycin C or UV radiation. When induced from the prophage, SPβ requires 90 min to produce and release about 30 virions. Genomes of sequenced related strains range between 128 and 140 kb, and particle-packed dsDNA exhibits terminal redundancy. Formed particles are of the Siphoviridae morphotype. Related isolates are known to infect other B. subtilis clade members. When infecting a new host, SPβ presumably follows a two-step strategy, adsorbing primarily to teichoic acid and secondarily to a yet unknown factor. Once in the host, SPβ-related phages pass through complex lysis-lysogeny decisions and either enter a lytic cycle or integrate as a dormant prophage. As prophages, SPβ-related phages integrate at the host chromosome's replication terminus, and frequently into the spsM or kamA gene. As a prophage, it imparts additional properties to its host via phage-encoded proteins. The most notable of these functional proteins is sublancin 168, which is used as a molecular weapon by the host and ensures prophage maintenance. In this review, we summarise the existing knowledge about the biology of the phage regarding its life cycle and discuss its potential as a research object.}, language = {en} } @misc{KohmFloccariLutzetal., author = {Kohm, Katharina and Floccari, Valentina and Lutz, Veronika and Nordmann, Birthe and Mittelst{\"a}dt, Carolin and Poehlein, Anja and Dragos, Anna and Commichau, Fabian M. and Hertel, Robert}, title = {The Bacillus phage SPβ and its relatives: A temperate phage model system reveals new strains, species, prophage integration loci, conserved proteins and lysogeny management components}, series = {bioRxiv beta}, journal = {bioRxiv beta}, doi = {10.1101/2021.11.22.469490}, pages = {44}, abstract = {The Bacillus phage SPβ has been known for about 50 years, but only a few strains are avalible. We isolated four new wild type strains of the SPbeta species. Phage vB_BsuS-Goe14 introduces its prophage into the spoVK locus, previously not observed to be used by SPβ-like phages. We could also reveal the SPβ-like phage genome replication strategy, the genome packaging mode, and the phage genome opening point. We extracted 55 SPβ-like prophages from public Bacillus genomes, thereby discovering three more integration loci and one additional type of integrase. The identified prophages resembled four new species clusters and three species orphans in the genus Spbetavirus. The determined core proteome of all SPβ-like prophages consists of 38 proteins. The integration cassette proved to be not conserved even though present in all strains. It consists of distinct integrases. Analysis of SPβ transcriptomes revealed three conserved genes, yopQ, yopR, and yokI, to be transcribed from a dormant prophage. While yopQ and yokI could be deleted from the prophage without activating the prophage, damaging of yopR led to a clear-plaque phenotype. Under the applied laboratory conditions, the yokI mutant showed an elevated virion release implying the YokI protein being a component of the arbitrium system.}, language = {en} } @misc{Hertel, author = {Hertel, Robert}, title = {SPβ, ein Bacillus-Phage mit vielen Geheimnissen}, series = {Biospektrum}, volume = {27}, journal = {Biospektrum}, number = {7}, issn = {1868-6249}, doi = {10.1007/s12268-021-1666-5}, pages = {S. 781}, abstract = {Phagen oder Bakteriophagen sind Viren von Bakterien. Sie {\"u}bernehmen den Wirtsmetabolismus und nutzen diesen f{\"u}r die eigene Vermehrung. Die direkte Reproduktion wird als lytischer Zyklus bezeichnet und die Phagen als lytische Phagen. Temperente Phagen hingegen k{\"o}nnen ihr Erbgut in das bakterielle Genom integrieren, es inaktiv schalten und gemeinsam mit ihrem Wirt replizieren. Es entsteht ein Prophage und ein lysogenes Bakterium. Ein Prophage kann seinem Wirt durch das zus{\"a}tzliche genetische Material neue Eigenschaften vermitteln und ihn in seltenen F{\"a}llen sogar zum Pathogen machen.}, language = {de} }