| Literature DB >> 31739456 |
Xue Lin1, Xiangyu Jin1, Bin Xu2, Ruliang Wang1, Rongxin Fu1, Ya Su1, Kai Jiang1, Han Yang1, Ying Lu1, Yong Guo1, Guoliang Huang1,3.
Abstract
Considering the lack of official vaccines and medicines for Ebola virus infection, reliable diagnostic methods are necessary for the control of the outbreak and the spread of the disease. We developed a microfluidic-chip-based portable system for fast and parallel detection of four Ebola virus species. The system is based on reverse transcription loop-mediated isothermal amplification (RT-LAMP) and consists of four specific LAMP primers, a disc microfluidic chip, and a portable real-time fluorescence detector. It could specifically and parallelly distinguish four species of the Ebola virus after only one sampling, including the Zaire Ebola virus, the Sudan Ebola virus, the Bundibugyo Ebola virus, and the Tai Forest Ebola virus, without cross-contamination. The limit of detection was as small as 10 copies per reaction, while the total consumption of sample and reagent was 0.94 μL per reaction. The final results could be obtained in 50 min after one addition of sample and reagent mixture. This approach provides simplicity, high sensitivity, and multi-target parallel detection at a low cost, which could enable convenient and effective on-site detections of the Ebola virus in the outdoors, remote areas, and modern hospitals.Entities:
Keywords: Ebola virus; detection; microfluidic chip; reverse transcription loop-mediated isothermal amplification
Year: 2019 PMID: 31739456 PMCID: PMC6915550 DOI: 10.3390/mi10110777
Source DB: PubMed Journal: Micromachines (Basel) ISSN: 2072-666X Impact factor: 2.891
Ebola virus species-specific loop-mediated isothermal amplification (LAMP) primer sets.
| Species | Name | Sequences (5′-3′) |
|---|---|---|
| EBOV | Z-F3 | ATCAATTGAGATCAGTTGGAC |
| Z-B3 | ACTTTGTGCACATACCGG | |
| Z-FIP | CCTGAAGCCCCATCTTTTAGTCACATGAATCTCGAGGGGAATGGA | |
| Z-BIP | TTATGAAGCTGGTGAATGGGCTGCTGGTAGACACTCACTC | |
| Z-LF | GCACGTCAGTTGCCAC | |
| Z-LB | GAAAACTGCTACAATCTTGAAATC | |
| SUDV | S-F3 | GCCTTAGTCTGTGGACTTAGG |
| S-B3 | GTGGCTCAATGCAACAATC | |
| S-FIP | GTCCGCAGCTCCGTTGTGCAACTTGCAAATGAAACAACTCA | |
| S-BIP | CCATACTCAATAGGAAGGCCATAGCCCAGGATCCTGCATGTC | |
| S-LF | CTTAAGAAAAGCTGCAGAGC | |
| S-LB | ATTTCCTTCTGCGACGAT | |
| BDBV | B-F3 | CCCAAAGTGGTGAACTACGA |
| B-B3 | AGCGCCTTCTTTGTGGAAAG | |
| B-FIP | CAGGGGCTTCAGGTAGGCATTCGGGAGTGGGCTGAAAACTG | |
| B-BIP | GGTGTAAGAGGCTTCCCTCGCAAACCTTCAGGACACGGC | |
| B-LF | GCTTTCTTGATGTCCAGGTTGTA | |
| B-LB | GTTATGTGCACAAGGTTTCTGGAAC | |
| TAFV | T-F3 | TAGAGGCACGGGACCATC |
| T-B3 | TTCTGGATCCTGTCAGGAGA | |
| T-FIP | GCAGTGTGCTGTTCTGGGAGTGAACACCACAGAAAGCCACG | |
| T-BIP | GCCAGTGCCATTCCAAGAGCCTTGTGTTCGTCAGGAAGCC | |
| T-LF | TGGGGTTGTCTTGCCAAGT | |
| T-LB | CACCCCGACGAACTCAGT |
EBOV: Zaire Ebola virus; SUDV: Sudan Ebola virus; BDBV: Bundibugyo Ebola virus; TAFV: Tai Forest Ebola virus.
Figure 1Schematic of the novel microfluidic chip for the parallel detection of four Ebola virus species. (A) Main composition of the microfluidic chip; (B) encapsulation of the chip; (C) sampling reaction mixture; (D) after the chip centrifugation; (E) embedded primers; (F) released primers at 50 °C; (G) amplified products binding with a fluorescent marker.
Figure 2Portable real-time fluorescence detection system. (a) Schematic of the portable real-time fluorescence detection system; (b) fast Fourier transform (FFT) diffraction encircled energy diagram of its optical system; (c) photograph of the portable system.
Figure 3Linear fitting curves of the amplification times of the four subtypes of the Ebola virus to the template RNA concentration. (a) EBOV; (b) SUDV; (c) BDBV; (d) TAFV.
Figure A1Linear fitting curves of the amplification times of the four subtypes of the Ebola virus to the template RNA concentration on the device. (a) EBOV; (b) SUDV; (c) BDBV; (d) TAFV.
Figure 4Comparison of the SUDV amplification curves in the tube and on the chip obtained by using templates of 10 copies per reaction. (a) LAMP amplification curves in the tubes—three repeated reactions (red lines) with a positive control (blue line) and negative controls (green lines); (b) LAMP amplification curves on the chip. The blue line corresponds to the twenty-third bio-reactor cell (positive control), while the red, the green, and the light blue lines correspond to the seventh, the eleventh, and the fifteenth cells (embedded with SUDV specific primers), respectively. The other cells contained negative controls.
Comparison of the sensitivities in the tube and on the chip.
| Sensitivity (Copy Number per Reaction) | EBOV | SUDV | BDBV | TAFV |
|---|---|---|---|---|
| Tube | 100 | 10 | 1000 | 10 |
| Chip | 100 | 1 | 1000 | 10 |
Test of the specificities of the microfluidic chip to the Ebola virus species.
| Numbers of | EBOV | SUDV | BDBV | TAFV | Positive Control | Negative Controls |
|---|---|---|---|---|---|---|
| EBOV | + | − | − | − | + | − |
| SUDV | − | + | − | − | + | − |
| BDBV | − | − | + | − | + | − |
| TAFV | − | − | − | + | + | − |
| Negative | − | − | − | − | + | − |