| Literature DB >> 30374098 |
Yuting Hou1,2, Xu Zhang3, Xiaolin Hou4, Ruofen Wu1,2, Yanbai Wang1,2, Xuexian He1,2, Libin Wang3, Zhenhai Wang5,6,7.
Abstract
In order to improve the diagnosis of pathogenic bacteria in cerebrospinal fluid (CSF) with purulent meningitis, we developed a DNA microarray technique for simultaneous detection and identification of seven target bacterium. DNA were extracted from 24 CSF samples with purulent meningitis (or suspected purulent meningitis). The specific genes of each pathogen were chosen as the amplification target, performed the polymerase chain reaction (PCR), labeled with a fluorescence dye, and hybridized to the oligonucleotide probes on the microarray. There is no significant cross-hybridization fluorescent signal occurred in untargeted bacteria. There were 87.5% (21/24) positive results in DNA microarray compared with the 58.3% (14/24) of the CSF culture test. Of which 58.3% (14/24) of the patients with culture-confirmed purulent meningitis, 37.5% (9/24) patients who were not confirmed by culture test but were demonstrated by the clinical diagnosis and DNA microarray. Multiple bacterial infections were detected in 5 cases by the microarray. In addition, the number of gene copies was carried out to determine the sensitivity of this technique, which was shown to be 3.5 × 101 copies/μL. The results revealed that the microarray technique which target pathogens of the CSF specimen is better specificity, accuracy, and sensitivity than traditional culture method. The microarray method is an effective tool for rapidly detecting more target pathogens and identifying the subtypes of strains which can eliminate the impact of the different individuals with purulent meningitis for prompt diagnosis and treatment.Entities:
Mesh:
Substances:
Year: 2018 PMID: 30374098 PMCID: PMC6206030 DOI: 10.1038/s41598-018-34051-0
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Target strains information and sequences gather information.
| NO. | Target strains Standard Nomenclature | Lineage (Full) | Taxonomy ID | Sequence gather information | |||
|---|---|---|---|---|---|---|---|
|
|
|
|
| ||||
| 1 |
| cellular organisms; Bacteria; Proteobacteria; Gammaproteobacteria; Pasteurellales; Pasteurellaceae; Haemophilus | 727 | 675 | 29 | ||
| 2 |
| cellular organisms; Bacteria; Proteobacteria; Gammaproteobacteria; Enterobacteriales; Enterobacteriaceae; Escherichia | 562 | 3342 | 855 | ||
| 3 |
| cellular organisms; Bacteria; Firmicutes; Bacilli; Bacillales; Staphylococcaceae; Staphylococcus | 1280 | 623 | 169 | 49 | 78 |
| 4 |
| cellular organisms; Bacteria; Proteobacteria; Betaproteobacteria; Neisseriales; Neisseriaceae; Neisseria | 487 | 1349 | 30 | ||
| 5 |
| cellular organisms; Bacteria; Firmicutes; Bacilli; Bacillales; Staphylococcaceae; Staphylococcus | 1282 | 331 | 32 | ||
| 6 |
| cellular organisms; Bacteria; Firmicutes; Bacilli; Bacillales; Staphylococcaceae; Staphylococcus | 1279 | 539 | 14 | ||
| 7 |
| cellular organisms; Bacteria; Firmicutes; Bacilli; Lactobacillales; Streptococcaceae; Streptococcus | 1313 | 1166 | 235 | ||
Figure 1Oligonucleotide probes for array positioning.
Target genes’ primer sequences and size of products (bp).
| Genes | Primer names | Primer sequences (5′-3′) | Product (bp) | Target strains |
|---|---|---|---|---|
|
| 16s-F27 | AGA GTT TGA TCC TGG CTC AG | 1466 |
|
| 16s-R1492 | GGT TAC CTT GTT ACG ACT T | |||
|
| Spne-gyrB-64F | GAG GGC TTA GAG GCT GTT CG | 1402 |
|
| Spne-gyrB-1447R | CGC CAA ATC CTG TTC CCA T | |||
|
| rmyy-gyrB-2f | AAA AGA CCR GGT ATG TAT ATW GG | 1200 |
|
| rmyy-gyrB-2r | CCG GCA GAG TCM CCY TCK AC | |||
|
| gsp-F | GGT ACT ACT AAA GAT TAT CAA GAC GGC T | 147 |
|
| gsp-R | TTC TTC ACG ACT AAA TAA ACG CTC A | |||
|
| nuc-F | GAA AGG GCA ATA CGC AAA GA | 481 |
|
| nuc-R | AGC CAA GCC TTG ACG AAC TAA AGC |
Figure 2The specificity and sensitivity of the pathogen probes. (A) Microarray hybridized with the probe untarget bacteria and human genome DNA. (B) Microarray hybridized with the probe target bacteria. NC means microarray hybridized with ddH2O and positive control sequence (show the signal of PC probes). (C) Microarray hybridized with the Escherichia coli (ATCC 25922) which diluted for concentration gradient (the original DNA samples were extracted from CSF).
Figure 3The gel images of PCR products using specific primers. (A) PCR products with 6 standard strains using specific primers. (B) PCR products with 2 specimens which was chosen randomly from all specimens.
Comparison between microarry, culture-based testing results.
| Sample ID | Age/sex (years) | Symptom | The chemical analysis of CSFa | CSF cytology examination | The results of Blood culture testing | The results of CSF culture testing | The results of CSF microarry analysis | Diagnosis | ||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Pro (g/L) | Glu (mmol/L) | Cl (mmol/L) | WBC (/mm3) | L (%) | M (%) | N (%) | Bacteriai | |||||||
| Specimen 1 | 41/F | Fever | 4.48 | 2.0 | 112 | 967 | 14 | 17 | 69 | NO | Negative | Negative | Negative | suspected case |
| Specimen 2 | 0.5/M | Fever, vomit | 3.51 | 1.1 | 117 | 1,750 | 17 | 13 | 70 | NO | Negative | Negative |
| suspected case |
| Specimen 3 | 43/M | Fever | 3.63 | 3.3 | 120 | 1,760 | 8 | 22 | 70 | NO | ND | Negative |
| suspected case |
| Specimen 4 | 13/F | Fever | 2.93 | 1.3 | 120 | 2,480 | 5 | 12 | 83 | NO | Negative |
|
| Purulent Meningitis |
| Specimen 5 | 44/F | Unconsciousness Fever | 4.95 | 1.0 | 110 | 182 | 11 | 35 | 54 | YES |
|
|
| Purulent Meningitis |
| Specimen 6 | 38/F | Fever | 2.46 | 1.9 | 116 | 825 | 7 | 15 | 78 | NO | Negative | Negative |
| suspected case |
| Specimen 7 | 18/M | Headache, Fever Nausea, vomit | 5.13 | 1.1 | 110 | 8,840 | 13 | 12 | 75 | NO | Negative |
|
| Purulent Meningitis |
| Specimen 8 | 4/F | Fever Headache,vomit | 0.57 | 1.5 | 112 | 2,250 | 8 | 8 | 84 | NO | Negative |
| Negative | Purulent Meningitis |
| Specimen 9 | 8/M | Fever | 2.76 | 1,4 | 117 | 896 | 9 | 12 | 79 | NO | Negative | Negative | CN-S | suspected case |
| Specimen 10 | 60/M | Unconsciousness | 0.25 | 4.0 | 125 | 7 | — | — | — | YES | ND |
| Negative | Purulent Meningitis |
| Specimen 11 | 0.58/M | Fever | 8.82 | 1.0 | 101 | 280 | 5 | 7 | 88 | YES |
|
|
| Purulent Meningitis |
| Specimen 12 | 4/F | Fever Headache, | ND | ND | ND | 4,250 | 2 | 3 | 97 | YES | ND | ND |
| Purulent Meningitis |
| Specimen 13 | 1/M | Fever, vomit | 7.56 | 2.6 | 120 | 4,960 | 11 | 7 | 82 | YES | Negative |
|
| Purulent Meningitis |
| Specimen 14 | 39/F | Fever Headache,vomit | 4.68 | 1.1 | 88 | 915 | 12 | 11 | 77 | NO | Negative | Negative |
| suspected case |
| Specimen 15 | 51/M | Encephalorrhagia Unconsciousness | 2.09 | 3.0 | 117 | 2,280 | 11 | 14 | 75 | NO | ND |
|
| Purulent Meningitis |
| Specimen 16 | 1/M | Fever, vomit | 1.89 | 3.1 | 117 | 11,480 | 9 | 7 | 84 | NO | Negative |
|
| Purulent Meningitis |
| Specimen 17 | 12/F | Postoperative Infection | 4.95 | 1.2 | 113 | 190 | 15 | 37 | 72 | NO | Negative | Negative |
| suspected case |
| Specimen 18 | 9/F | Fever | 3.59 | 1.1 | 110 | 400 | 26 | 15 | 59 | YES | Negative |
|
| Purulent Meningitis |
| Specimen 19 | 40/F | Fever,Nausea, vomit, Unconsciousness | 10.35 | 1.1 | 112 | 67 | 1 | 2 | 97 | YES |
|
|
| Purulent Meningitis, |
| Specimen 20 | 0.4/M | Fever,Nausea, vomit, | 1.03 | 1.1 | 113 | 687 | 7 | 20 | 72 | YES |
|
|
| Purulent Meningitis |
| Specimen 21 | 12/F | Fever | 4.97 | 1.6 | 115 | 834 | 12 | 18 | 86 | NO | Negative | Negative |
| suspected case |
| Specimen 22 | 0.25/M | Fever, Tic, Unconsciousness | 3.61 | 1.0 | 111 | 607 | 13 | 32 | 54 | YES | Negative |
|
| Purulent Meningitis |
| Specimen 23 | 9/M | Fever | 4.33 | 1.0 | 117 | 709 | 18 | 20 | 49 | NO | Negative |
|
| Purulent Meningitis |
| Specimen 24 | 14/M | Fever Headache,nausea | 7.04 | 1.1 | 116 | 13,280 | 4 | 3 | 93 | NO | ND | Negative |
| Purulent Meningitis |
Notes: CSF-cerebrospinal fluid; Pro-protein contents of cerebrospinal fluid; Glu-glucose contents of cerebrospinal fluid; Cl-chloride contents of cerebrospinal fluid; WBC-white blood cells ofcerebrospinal fluid; L-lymphocyte count of cerebrospinal fluid; M-monocyte count of cerebrospinal fluid; N-neutrophils count of cerebrospinal fluid; Bacteriai -Cerebrospinal fluid cytology examination.
Figure 4The results of microarray hybridization of 24 specimens from CSF. (A) There is a probe repeat for every 3 spots and “or” relation between all probes for the same bacteria (multiple probes were used for detecting bacteria subtypes). So the signals of three spots (or its multiples) means the sample containing this target bacteria.