Literature DB >> 32409557

Draft Genome Sequence of Staphylococcus epidermidis UMB7765, Isolated from the Urobiome of a Woman with Recurrent Urinary Tract Infection.

Lucy Kemper1, Taylor Miller-Ensminger2, Adelina Voukadinova2, Alan J Wolfe3, Catherine Putonti4,2,3,5.   

Abstract

Staphylococcus epidermidis is a Gram-positive bacterium that is resistant to many antibiotics. Here, we present the 2.5-Mb draft genome of S. epidermidis UMB7765, isolated from a voided urine sample from a female with recurrent urinary tract infections.
Copyright © 2020 Kemper et al.

Entities:  

Year:  2020        PMID: 32409557      PMCID: PMC7225556          DOI: 10.1128/MRA.00417-20

Source DB:  PubMed          Journal:  Microbiol Resour Announc        ISSN: 2576-098X


ANNOUNCEMENT

While Staphylococcus epidermidis primarily colonizes human skin (1), it has also been found to be a native member of the microbiota of other organs (2, 3). While often harmless, S. epidermidis is an opportunistic pathogen; it can cause serious infections of implanted medical devices (such as catheters and pacemakers) (4, 5). Treatment of S. epidermidis infections is complicated by the species’ often high levels of antibiotic resistance and ability to form biofilms (6, 7). Here, we present the genome sequence of S. epidermidis UMB7765, isolated from a voided urine sample from a woman with recurrent urinary tract infection (UTI). While S. epidermidis has on rare occasions been associated with UTIs (8), we do not have definitive evidence that this strain was the cause of UTI symptoms for this individual. S. epidermidis UMB7765 was isolated using the expanded quantitative urine culture (EQUC) method (3) as part of a prior institutional review board (IRB)-approved study (University of California, San Diego, IRB no. 170077AW). The genus and species for this isolate were determined by matrix-assisted laser desorption ionization–time of flight (MALDI-TOF) mass spectrometry following protocols detailed previously (3). The isolate was stored at −80°C until sequencing. The freezer stock was first streaked onto a Columbia nalidixic acid (CNA) agar plate and incubated at 35°C with 5% CO2 for 24 h. Tryptone soy liquid medium was inoculated with a single colony from the plate and incubated overnight at 37°C. DNA extraction was done using the Qiagen DNeasy blood and tissue kit with the following modifications to the Gram-positive protocol: the bacteria were lysed using 230 μl of lysis buffer (180 μl of 20 mM Tris-Cl, 2 mM sodium EDTA, and 1.2% Triton X-100 and 50 μl of lysozyme) in step 2, and the incubation time in step 5 was altered to 10 min. The purified DNA was quantified using a Qubit fluorometer. DNA sequencing was done at the Microbial Genome Sequence Center at the University of Pittsburgh, where the DNA was fragmented using an Illumina tagmentation enzyme. Indices were attached using PCR and sequenced on the Illumina NextSeq 550 platform. Sequencing yielded 1,950,209 pairs of 150-bp reads. Unless otherwise noted, default parameters were used for all software tools. Reads were trimmed using Sickle v1.33 (https://github.com/najoshi/sickle). The reads were assembled using SPAdes v3.13.0 with the “only-assembler” option for k values of 55, 77, 99, and 127 (9). The genome coverage was calculated using BBMap v38.47 (https://sourceforge.net/projects/bbmap/). NCBI’s Prokaryotic Genome Annotation Pipeline (PGAP) v4.11 was used to annotate the publicly available genome sequences (10). The draft genome sequence is 2,530,547 bp long, assembled into 68 contigs with an N50 value of 158,051 bp and 190× coverage. The GC content of the assembled genome is 31.93%, which is consistent with that of other publicly available S. epidermidis genomes. PGAP annotation includes 2,475 genes total, 2,361 encoding proteins, and 56 tRNAs. We analyzed the genome assembly using the Center for Genomic Epidemiology’s Web tool ResFinder v3.2 (11) and identified resistance genes for aminoglycosides, beta-lactams, fosfomycin, macrolides, and tetracycline. Frequently, antibiotics are prescribed for recurrent UTIs, and antibiotic resistance is likely (12). We can thus speculate that the multiple genes associated with antibiotic resistance encoded by S. epidermidis UMB7765 were acquired through repeated antibiotic exposure.

Data availability.

This whole-genome shotgun project has been deposited in GenBank under the accession no. JAAUWD000000000. The version described in this paper is the first version, JAAUWD010000000. The raw sequencing reads have been deposited in the SRA under the accession no. SRR11441034.
  12 in total

1.  Urine is not sterile: use of enhanced urine culture techniques to detect resident bacterial flora in the adult female bladder.

Authors:  Evann E Hilt; Kathleen McKinley; Meghan M Pearce; Amy B Rosenfeld; Michael J Zilliox; Elizabeth R Mueller; Linda Brubaker; Xiaowu Gai; Alan J Wolfe; Paul C Schreckenberger
Journal:  J Clin Microbiol       Date:  2013-12-26       Impact factor: 5.948

Review 2.  The human skin microbiome.

Authors:  Allyson L Byrd; Yasmine Belkaid; Julia A Segre
Journal:  Nat Rev Microbiol       Date:  2018-01-15       Impact factor: 60.633

3.  Biofilm formation, icaADBC transcription, and polysaccharide intercellular adhesin synthesis by staphylococci in a device-related infection model.

Authors:  Ursula Fluckiger; Martina Ulrich; Andrea Steinhuber; Gerd Döring; Dietrich Mack; Regine Landmann; Christiane Goerke; Christiane Wolz
Journal:  Infect Immun       Date:  2005-03       Impact factor: 3.441

4.  Global spread of three multidrug-resistant lineages of Staphylococcus epidermidis.

Authors:  Jean Y H Lee; Ian R Monk; Anders Gonçalves da Silva; Torsten Seemann; Kyra Y L Chua; Angela Kearns; Robert Hill; Neil Woodford; Mette D Bartels; Birgit Strommenger; Frederic Laurent; Magali Dodémont; Ariane Deplano; Robin Patel; Anders R Larsen; Tony M Korman; Timothy P Stinear; Benjamin P Howden
Journal:  Nat Microbiol       Date:  2018-09-03       Impact factor: 17.745

Review 5.  Staphylococcus epidermidis--the 'accidental' pathogen.

Authors:  Michael Otto
Journal:  Nat Rev Microbiol       Date:  2009-08       Impact factor: 60.633

Review 6.  Antibiotics for preventing recurrent urinary tract infection in non-pregnant women.

Authors:  X Albert; I Huertas; I I Pereiró; J Sanfélix; V Gosalbes; C Perrota
Journal:  Cochrane Database Syst Rev       Date:  2004

7.  Identification of acquired antimicrobial resistance genes.

Authors:  Ea Zankari; Henrik Hasman; Salvatore Cosentino; Martin Vestergaard; Simon Rasmussen; Ole Lund; Frank M Aarestrup; Mette Voldby Larsen
Journal:  J Antimicrob Chemother       Date:  2012-07-10       Impact factor: 5.790

8.  Temporal dynamics of the very premature infant gut dominant microbiota.

Authors:  Fabien Aujoulat; Laurent Roudière; Jean-Charles Picaud; Aurélien Jacquot; Anne Filleron; Dorine Neveu; Thierry-Pascal Baum; Hélène Marchandin; Estelle Jumas-Bilak
Journal:  BMC Microbiol       Date:  2014-12-31       Impact factor: 3.605

Review 9.  Pathogenic Mechanisms and Host Interactions in Staphylococcus epidermidis Device-Related Infection.

Authors:  Marina Sabaté Brescó; Llinos G Harris; Keith Thompson; Barbara Stanic; Mario Morgenstern; Liam O'Mahony; R Geoff Richards; T Fintan Moriarty
Journal:  Front Microbiol       Date:  2017-08-02       Impact factor: 5.640

10.  NCBI prokaryotic genome annotation pipeline.

Authors:  Tatiana Tatusova; Michael DiCuccio; Azat Badretdin; Vyacheslav Chetvernin; Eric P Nawrocki; Leonid Zaslavsky; Alexandre Lomsadze; Kim D Pruitt; Mark Borodovsky; James Ostell
Journal:  Nucleic Acids Res       Date:  2016-06-24       Impact factor: 16.971

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