Phenotypic and genomic identification of Staphylococcus epidermidis GOI1153754-03-14 isolated from an infected orthopedic prosthesis

M. Bottagisio, A. Soggiu, A. B. Lovati, Marco Toscano, C. Piras, C. Romanò, L. Bonizzi, P. Roncada, L. Drago
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Abstract

Introduction: Staphylococcus epidermidis GOI1153754-03-14 is able to colonize orthopedic implants and to cause septic non-unions, as validated in a recent in vivo study (Lovati, 2016). To pore over the mechanisms leading to the biofilm formation on metallic implants, in the present study, we carried out the phenotypic and genotypic characterization of the clinical isolate S. epidermidis GOI1153754-03-14. Materials and Methods: The antimicrobial susceptibility and minimum inhibitory concentration (MIC) of the strain were evaluated through the Vitek2 System (Biomerieux), as well as its ability to form biofilm in vitro through a spectrophotometric assay (Stepanovich, 2000). The genomic DNA was extracted by Bacterial Genomic DNA Isolation Kit (Norgen Biotek Corp.). Libraries were prepared with the ThruPLEX DNA-seq (Rubicon Genomics) and then sequenced on the Illumina MiSeq platform through the MiSeq Reagent Kit v3 (600-cycles) to produce 300 bp paired-end reads (Illumina Inc.). Reads were quality-trimmed and gene annotated thanks to the RAST software (Aziz, 2008). Results: The antimicrobial susceptibility along with the MIC values are reported in Table 1. The outputs resulted in 51 contigs (Average = 50,720.6 Mb) with 396X fold average coverage. The total genome is 2,586,753 bp long with a GC content of 31.84% and an N50 value of 7 bp. The whole genome is composed by 2,467 protein-encoding genes and 64 RNAs (55 tRNAs and 9 rRNAs). The entire genome sequence has been deposited in the European Nucleotide Archive (ENA) under the accession no. FWCG01000000 (Bottagisio, 2017). Discussion: The genotypic and phenotypic characterization of the S. epidermidis GOI1153754-03-14 will enable a better comprehension of the mechanisms involved in the biofilm formation on orthopedic implants paving the way for innovative preventative and therapeutic strategies. Moreover, the sequence of this clinical strain is mandatory to develop dedicated proteomics analysis in order to highlight functional mechanism of biofilm formation.
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感染骨科假体表皮葡萄球菌GOI1153754-03-14的表型和基因组鉴定
最近的一项体内研究证实,表皮葡萄球菌GOI1153754-03-14能够在骨科植入物中定植并导致脓毒性骨不连(Lovati, 2016)。为了深入研究金属种植体生物膜形成的机制,本研究对临床分离的表皮葡萄球菌GOI1153754-03-14进行了表型和基因型鉴定。材料和方法:通过Vitek2系统(Biomerieux)评估菌株的抗菌敏感性和最低抑制浓度(MIC),并通过分光光度法测定其体外形成生物膜的能力(Stepanovich, 2000)。基因组DNA由细菌基因组DNA分离试剂盒(Norgen Biotek Corp.)提取。使用ThruPLEX DNA-seq (Rubicon Genomics)制备文库,然后通过MiSeq Reagent Kit v3 (600-cycles)在Illumina MiSeq平台上测序,产生300 bp的对端reads (Illumina Inc.)。借助RAST软件,对Reads进行了高质量的修剪和基因注释(Aziz, 2008)。结果:药敏及MIC值见表1。输出结果为51个contigs(平均= 50,720.6 Mb),平均覆盖率为396X倍。基因组全长2,586,753 bp, GC含量为31.84%,N50值为7 bp。整个基因组由2467个蛋白质编码基因和64个rna(55个trna和9个rrna)组成。整个基因组序列已存放在欧洲核苷酸档案(ENA),登记号为。FWCG01000000 (Bottagisio, 2017)。讨论:表皮葡萄球菌GOI1153754-03-14的基因型和表型特征将有助于更好地理解骨科植入物生物膜形成的机制,为创新的预防和治疗策略铺平道路。此外,该临床菌株的序列必须进行专门的蛋白质组学分析,以突出生物膜形成的功能机制。
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