| Literature DB >> 31921357 |
Markus M Heimesaat1, Greta Gölz2, Vanessa Brückner2, Ulrike Fiebiger1, Ralf Ignatius1,3, Johannes Friesen3, Martin Eisenblätter4, Marlies Höck5, Thomas Alter2, Stefan Bereswill1.
Abstract
BACKGROUND: Arcobacter constitute emerging food- and waterborne pathogens causing gastroenteritis in humans, but the underlying mechanisms are only incompletely understood. We therefore characterized Arcobacter isolates derived from human stool samples that had been collected during a prospective prevalence study in Germany in vitro. Thirty-six bacterial isolates belonging to the species A. butzleri (n = 24), A. cryaerophilus (n = 10) and A. lanthieri (n = 2) were genotyped by ERIC-PCR, the presence of 10 putative virulence genes was assessed and cytotoxic effects on the human intestinal cell line HT-29/B6 were analyzed applying the WST-assay.Entities:
Keywords: Arcobacter; Cytotoxicity; Genotyping; Human; Virulence genes
Year: 2020 PMID: 31921357 PMCID: PMC6947975 DOI: 10.1186/s13099-019-0344-3
Source DB: PubMed Journal: Gut Pathog ISSN: 1757-4749 Impact factor: 4.181
Fig. 1Dendrogram based on ERIC-PCR assay using Dice similarity coefficient and UPGMA method and virulence gene pattern of Arcobacter spp. isolated from human stool samples. Black: genes detected by primers designed based on A. butzleri sequences (Douidah et al. [25], Karadas et al. [11], Whiteduck-Leveillee et al. [40]; pale grey: genes not detected by both PCR; dark grey: genes detected by primers designed based on A. lanthieri sequences (Zambri et al. [16]). A. butzleri (CCUG 30485) was included as reference strain
Fig. 2Viability of HT-29/B6 cells after inoculation with Arcobacter isolates. HT-29/B6 cells, differentiated for 7 days, were inoculated with A. butzleri (a), A. cryaerophilus (b) and A. lanthieri (c) isolates (MOI 100, except for isolates 02651 and 02771 that were incubated at MOI 50), and cytotoxicity was measured after 48 h incubation by WST-1 assay. At least three independent experiments were performed with six replicates each. Cells treated with medium only or with A. cryaerophilus ILSH 02659 (Ac) were included as negative control, and dimethyl sulfoxide (DMSO) and Campylobacter jejuni 81–176 (Cj) as positive controls. The isolates were arbitrarily classified in three groups due to the level of toxicity, i.e., isolates of low (group I), moderate (group II) and high cytotoxicity (group III) with 20–49%, 50–94% and at least 95% reduction of absorbance as compared to the negative control, respectively. # inoculation at MOI 50; * p < 0.05 (Mann–Whitney U-test) as compared to control
List of primers used in this study
| Primer | Sequence (5′-3′) | Product size (bp) | References |
|---|---|---|---|
| Genotyping | |||
| ERIC 1R | ATG TAA GCT CCT GGG GAT TCA C | Houf et al. [ | |
| ERIC 2 | AAG TAA GTG ACT GGG GTG AGC G | Houf et al. [ | |
| Detection of putative virulence genes | |||
| cadF-F | TTA CTC CTA CAC CGT AGT | 283 | Douidah et al. [ |
| cadF-R | AAA CTA TGC TAA CGC TGG TT | Douidah et al. [ | |
| irgA-F | TGC AGA GGA TGC TTG GAG CGT AAC T | 437 | Whiteduck-Leveillee et al. [ |
| irgA-R | GTA TAA CCC CAT TGA TGA GGA GCA | Whiteduck-Leveillee et al. [ | |
| hecA-F | GTG GAA GTA CAA CGA TAG CAG GCT C | 537 | Whiteduck-Leveillee et al. [ |
| hecA-R | GTC TGT TTT AGT TGC TCT GCA GTC | Whiteduck-Leveillee et al. [ | |
| hecB-F | CTA AAC TCT ACA AAT CGT GC | 528 | Whiteduck-Leveillee et al. [ |
| hecB-R | CTT TTG AGT GTT GAC CTC | Whiteduck-Leveillee et al. [ | |
| pldA-F | TTG ACG AGA CAA TAA GTG CAG C | 293 | Whiteduck-Leveillee et al. [ |
| pldA-R | CGT CTT TAT CTT TGC TTT CAG GGA | Whiteduck-Leveillee et al. [ | |
| ciaB-F | TGG GCA GAT GTG GAT AGA GCT TGG A | 284 | Whiteduck-Leveillee et al. [ |
| ciaB-R | TAG TGC TGG TCG TCC CAC ATA AAG | Whiteduck-Leveillee et al. [ | |
| cj1349-F | CCA GAA ATC ACT GGC TTT TGA G | 659 | Whiteduck-Leveillee et al. [ |
| cj1349-R | GGG CAT AAG TTA GAT GAG GTT CC | Whiteduck-Leveillee et al. [ | |
| tlyA-F | CAA AGT CGA AAC AAA GCG ACT G | 230 | Whiteduck-Leveillee et al. [ |
| tlyA-R | TCC ACC AGT GCT ACT TCC TAT A | Whiteduck-Leveillee et al. [ | |
| mviN-F | TGC ACT TGT TGC AAA ACG GTG | 294 | Whiteduck-Leveillee et al. [ |
| mviN-R | TGC TGA TGG AGC TTT TAC GCA AGC | Whiteduck-Leveillee et al. [ | |
| iroE-F | AAT GGC TAT GAT GTT GTT TAC | 415 | Karadas et al. [ |
| iroE-R | TTG CTG CTA TGA AGT TTT | Karadas et al. [ | |
| Detection of putative virulence genes with | |||
| AL_cdtB F | GCA AAA GGT GAT TGG GCT CC | 303 | Zambri et al. [ |
| AL_cdtB R | TCC TCC AGC TCC TTG AAC AC | Zambri et al. [ | |
| AL_cadF F | TCC AAC TCC AGT TGC TGC TC | 243 | Zambri et al. [ |
| AL_cadF R | TGT CCT TCG ATG TCA GCT TTC | Zambri et al. [ | |
| AL_irgA F | AGA GCT GTT GGT TGG GAT GG | 186 | Zambri et al. [ |
| AL_irgA R | TGC ATT TGC TCT TGT AGG GT | Zambri et al. [ | |
| AL_cdtC F | GAT GAA TCC ACC AGA AAT AGA G | 196 | Zambri et al. [ |
| AL_cdtC R | TTT GGG ATC AAG AGT ATA AAG TTC | Zambri et al. [ | |
| AL_pldA F | TGC TCC ATT TAG AGA AAC TAA C | 132 | Zambri et al. [ |
| AL_pldA R | GAA CGA GAT TCT TCA CCA TCT T | Zambri et al. [ | |
| AL_cdtA F | CAG GAA TAG ATC TCG CTA CAA ATG | 220 | Zambri et al. [ |
| AL_cdtA R | TTT GGT AGA AGA GGA AGT TCA TTG | Zambri et al. [ | |
| AL_mviN F | ACC TTT GGT TCT TCA ACT TTA C | 170 | Zambri et al. [ |
| AL_mviN R | CGT GCT ACC ATA GGA AAT AGG | Zambri et al. [ | |
| AL_ciaB F | GAT AGA TGC TAT TCT GCT CTT G | 207 | Zambri et al. [ |
| AL_ciaB R | ATC TTC ACT AAA TGC TAC TAT T | Zambri et al. [ | |
| AL_tlyA F | GAC ATT GTA ACA TGT GAT GTA TCT T | 125 | Zambri et al. [ |
| AL_tlyA R | TTT ACA TTT GTT CCC ACT TCA AA | Zambri et al. [ | |