| Literature DB >> 30176804 |
Haixu Xu1, Fang Tang2, Jianjun Dai2, Chengming Wang3, Xin Zhou4.
Abstract
BACKGROUND: Escherichia coli (E. coli) is one of the best-known zoonotic bacterial species, which pathogenic strain can cause infections in humans and animals. However, existing technologies or methods are deficient for quickly on-site identifying infection of E. coli before they breakout. Herein, we present an ultrasensitive and on-site method for counting E. coli using magnetic nanoparticle (MNP) probe under a dark-field in 30 min.Entities:
Keywords: Dark-field microscope; Escherichia coli; Magnetic nanoparticle; Rapid enumeration
Mesh:
Substances:
Year: 2018 PMID: 30176804 PMCID: PMC6122661 DOI: 10.1186/s12866-018-1241-5
Source DB: PubMed Journal: BMC Microbiol ISSN: 1471-2180 Impact factor: 3.605
Fig. 1Schematic diagram of counting E. coli under a dark-field by hatting them golden ring structure with MNP probes. a The MNP probes were obtained by incubating anti-E. coli antibodies and the MNP under gently shaking for 4 h at room temperature, followed by washing three times with PBS. b E. coli samples were first mixed with MNP probes to develop probe-E. coli complexes, followed by magnetic separation for counting with dark-field microscope
Fig. 2SDS-PAGE analysis of prepared MNP probes. Column 1: 10 μL of as-synthesized MNP; Column 2: 5 μg anti-E. coli antibody; Column 3: 10 μL of MNP probes
Fig. 3Microscope images of E. coli at different conditions. a E. coli without MNP probes under a bright field; b E. coli without MNP probes under a dark-field; c E. coli mixed with MNP probes under a bright field; d E. coli mixed with MNP probes under a dark-field; e Transmission Electronic Microscope (TEM) image of E. coli mixed with naked MNPs. f TEM image of . coli with MNP probes. g Salmonella mixed with MNP probes; Red box in the upper right corner of d and e is the enlargement of the selected area, respectively
Fig. 4Sensitivity analysis of E.coli at different dilution concentrations and count of two real samples by our MNP-based strategy. a 103 dilution of E. coli stock solution (equal to 102 CFU/μL) captured by MNP probe; b 104 dilution of E. coli stock solution (equal to 10 CFU/μL) captured by MNP probe; c 105 dilution of E. coli stock solution (equal to 1 CFU/μL) captured by MNP probe. d PCR analysis of E.coli at different dilution concentrations. M: DNA Marker; Line 1: E. coli stock solution; Line 2–6: 101, 102, 103, 104 and 105 dilution of E. coli stock solution, respectively; Red box in the upper right corner of a, b and c is the enlargement of the selected area, respectively. e A representative dark-field image of E. coli in ten-fold concentration dilute soup sample captured by MNP probes; f A representative dark-field image of E. coli in ten-fold concentration rice sample captured by MNP probes
Detection of real samples by traditional colony counting and MNP-labeled dark-field counting strategy
| Samples | Colony counting method | Our counting strategy |
|---|---|---|
| Dilute soup | 163 ± 16 | 142 ± 14 |
| Rice | 126 ± 14 | 112 ± 8 |
Statistical analysis: The experimental counting results are reported as means ± SE of triplicate independent experiments. Ten fields of view were counted for each sample. Data were analyzed using the SPSS (Statistical Package for the Social Sciences) software (Version 13.0; SPSS, Inc., Chicago, IL)