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Updated: Apr 21, 2026

Generating Transposon Insertion Libraries in Gram-Negative Bacteria for High-Throughput Sequencing
Published on: July 7, 2020
From microbial gene essentiality to novel antimicrobial drug targets
Fredrick M Mobegi, Sacha A F T van Hijum1, Peter Burghout
1Radboud Institute for Molecular Life Sciences, Laboratory of Paediatric Infectious Diseases, Radboud University Medical Centre, Nijmegen 6500 HB, The Netherlands. Sacha.vanHijum@radboudumc.nl.
Background:
Bacterial respiratory tract infections, mainly caused by Streptococcus pneumoniae, Haemophilus influenzae and Moraxella catarrhalis are among the leading causes of global mortality and morbidity. Increased resistance of these pathogens to existing antibiotics necessitates the search for novel targets to develop potent antimicrobials.
Result:
Here, we report a proof of concept study for the reliable identification of potential drug targets in these human respiratory pathogens by combining high-density transposon mutagenesis, high-throughput sequencing, and integrative genomics. Approximately 20% of all genes in these three species were essential for growth and viability, including 128 essential and conserved genes, part of 47 metabolic pathways. By comparing these essential genes to the human genome, and a database of genes from commensal human gut microbiota, we identified and excluded potential drug targets in respiratory tract pathogens that will have off-target effects in the host, or disrupt the natural host microbiota. We propose 249 potential drug targets, 67 of which are targets for 75 FDA-approved antimicrobials and 35 other researched small molecule inhibitors. Two out of four selected novel targets were experimentally validated, proofing the concept.
Conclusion:
Here we have pioneered an attempt in systematically combining the power of high-density transposon mutagenesis, high-throughput sequencing, and integrative genomics to discover potential drug targets at genome-scale. By circumventing the time-consuming and expensive laboratory screens traditionally used to select potential drug targets, our approach provides an attractive alternative that could accelerate the much needed discovery of novel antimicrobials.
Insights
This study introduces a novel genomic approach to identify essential genes in respiratory pathogens like Streptococcus pneumoniae. This method accelerates the discovery of new antimicrobial drug targets, addressing antibiotic resistance.
Area of Science:
- Microbiology
- Genomics
- Drug Discovery
Background:
- Bacterial respiratory tract infections caused by Streptococcus pneumoniae, Haemophilus influenzae, and Moraxella catarrhalis are major global health concerns.
- Increasing antibiotic resistance in these pathogens highlights the urgent need for novel antimicrobial targets.
Purpose of the Study:
- To develop and validate a genome-scale approach for identifying essential genes and potential antimicrobial drug targets in key respiratory pathogens.
- To circumvent traditional, time-consuming methods for drug target selection.
Main Methods:
- Integration of high-density transposon mutagenesis, high-throughput sequencing, and comparative genomics.
- Analysis of essential genes across three bacterial species.
- Exclusion of potential targets with predicted off-target effects on human cells or commensal microbiota.
Main Results:
- Approximately 20% of genes in the studied pathogens were found to be essential for growth.
- 128 essential and conserved genes were identified, involved in 47 metabolic pathways.
- 249 potential drug targets were proposed, including 67 targets for existing antimicrobials and inhibitors.
- Two novel targets were experimentally validated, confirming the approach's efficacy.
Conclusions:
- A systematic, genome-scale method combining high-density transposon mutagenesis, high-throughput sequencing, and integrative genomics was established for discovering antimicrobial drug targets.
- This approach offers a faster and more efficient alternative to traditional laboratory screens, potentially accelerating the development of new antimicrobials.
Related Concept Videos
Gene Regulation in Microbial Communities: Quorum Sensing
Clinical Significance of Antibiotic Resistance
Antibiotic Selection
Development of Antibiotic Resistance
Microorganisms in Medicine and Therapeutics
Antimicrobial Effectiveness

