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Updated: May 5, 2026

Multiplex Detection of Bacteria in Complex Clinical and Environmental Samples using Oligonucleotide-coupled Fluorescent Microspheres
Published on: October 23, 2011
Methodology and application of multiplex PCR-dipstick DNA chromatography for the detection of eight respiratory
Liuyang Hu1, Xiuri Wang2, Qiong Li3
1Department of Laboratory Medicine, The People's Hospital of Guangxi Zhuang Autonomous Region, Guangxi Academy of Medical Sciences, Nanning, China.
Background:
Community-acquired pneumonia is primarily caused by Acinetobacter baumannii, Pseudomonas aeruginosa, Klebsiella pneumoniae, Streptococcus pneumoniae, Haemophilus influenzae, Staphylococcus aureus, Mycoplasma pneumoniae, and Chlamydia pneumoniae, leading to severe illness and death in developing countries.
Methods:
A rapid, straightforward, sensitive, high-throughput, and precise multiplex PCR-dipstick DNA chromatography assay was devised. This innovative technique was specifically engineered for the immediate and efficient detection of the aforementioned eight respiratory pathogens, with particular emphasis on scenarios involving co-infections. Custom-designed specific primers were employed, wherein the 5' end of the forward primers was tagged with oligonucleotide tags (Tag) and the 5' end of the reverse primers was conjugated with biotin. A C3 spacer was incorporated to bridge the Tag and the forward primer. Complementary oligonucleotides (cTag) corresponding to each of the eight pathogens were immobilized within the test area of the test strip. Meanwhile, biotin was strategically utilized to create an internal control line at the distal end of the test strip. The biotin moiety at the 5' end of the reverse primer was engineered to interact with blue latex microspheres coated with streptavidin, thereby triggering a detectable signal. Following the PCR amplification of the target DNA fragments, during the membrane strip chromatography hybridization process, the Tag- and biotin-labeled target DNA engaged in a dual interaction. First, it bound to the blue latex microspheres via streptavidin-biotin binding, and second, it hybridized with the cTag on the membrane strip. This led to the accumulation of captured blue latex microspheres at both the test line and the internal control line, manifesting as visible blue bands. A total of 186 respiratory sputum or bronchoalveolar lavage fluid specimens were collected and analyzed. The multiplex PCR-dipstick DNA chromatography assay was deployed for detection, while traditional bacterial culture was also carried out in parallel for comparative purposes. To rigorously validate the accuracy of the multiplex PCR-dipstick DNA chromatography assay in identifying PCR products, DNA sequencing was performed on all PCR products derived from the clinical samples.
Results:
The multiplex PCR-dipstick DNA chromatography assay demonstrated remarkable efficacy, being capable of specifically discriminating among the eight pathogens within a remarkably short timeframe of 40 minutes. The detection limit for individual bacterial species ranged from 10 to 102 CFU/mL. Notably, no cross-reactions were observed among the eight target bacteria, nor with other representative respiratory bacteria, including Acinetobacter junii, Enterobacter cloacae, Klebsiella oxytoca, Haemophilus parainfluenzae, Pseudomonas fluorescens, Aeromonas hydrophila, and Staphylococcus epidermidis. The concordance between the results obtained from the multiplex PCR-dipstick DNA chromatography assay and those from DNA sequencing was absolute, with a kappa value of 1.00.
Conclusion:
A successful multiplex PCR-dipstick DNA chromatography assay was established for the simultaneous detection of eight respiratory bacterial pathogens and was effectively applied in clinical sample analysis. This indicates that this single-use device has promising potential for analyzing the microbial composition related to respiratory infections and is also suitable for small laboratories and field diagnostics.
Insights
A new multiplex PCR-dipstick assay rapidly detects eight common pneumonia pathogens. This innovative method offers accurate results for co-infections, aiding in timely diagnosis and treatment.
Area of Science:
- Molecular Biology
- Diagnostic Microbiology
- Biotechnology
Background:
- Community-acquired pneumonia (CAP) is a significant cause of severe illness and mortality, particularly in developing nations.
- Key pathogens responsible for CAP include *Acinetobacter baumannii*, *Pseudomonas aeruginosa*, *Klebsiella pneumoniae*, *Streptococcus pneumoniae*, *Haemophilus influenzae*, *Staphylococcus aureus*, *Mycoplasma pneumoniae*, and *Chlamydia pneumoniae*.
- Accurate and rapid pathogen identification is crucial for effective management and control of CAP, especially in cases of co-infection.
Purpose of the Study:
- To develop and validate a novel multiplex PCR-dipstick DNA chromatography assay for the simultaneous detection of eight common respiratory pathogens.
- To assess the assay's sensitivity, specificity, and speed for identifying pathogens in clinical respiratory samples.
- To evaluate the assay's potential for use in resource-limited settings and field diagnostics.
Main Methods:
- A multiplex PCR assay was designed using primers tagged with oligonucleotide tags and biotin for simultaneous amplification of target DNA from eight pathogens.
- A dipstick DNA chromatography strip was developed with immobilized complementary oligonucleotides (cTags) for hybridization and streptavidin-coated blue latex microspheres for signal detection.
- The assay involved PCR amplification followed by hybridization on the dipstick, resulting in visible blue bands for detected pathogens. Clinical samples were analyzed alongside traditional culture and DNA sequencing for validation.
Main Results:
- The multiplex PCR-dipstick DNA chromatography assay successfully detected all eight target pathogens simultaneously within 40 minutes.
- The assay exhibited high specificity, with no cross-reactivity observed against other common respiratory bacteria.
- Detection limits ranged from 10 to 10^2 CFU/mL, and results showed perfect concordance (kappa = 1.00) with DNA sequencing.
Conclusions:
- A rapid, sensitive, and specific multiplex PCR-dipstick DNA chromatography assay for eight respiratory pathogens has been successfully developed and validated.
- This single-use device demonstrates significant potential for the accurate analysis of microbial composition in respiratory infections.
- The assay is suitable for use in small laboratories and for field diagnostics, offering a valuable tool for managing respiratory infections.

