Skip to menu Skip to content Skip to footer
News

New method helps researchers piece together the puzzle of antibiotic resistance

22 February 2017
Associate Professor Lachlan Coin, Devika Ganesamoorthy, Dr Minh Duc Cao
Associate Professor Lachlan Coin, Dr Devika Ganesamoorthy, Dr Minh Duc Cao

Researchers from The University of Queensland’s Institute for Molecular Bioscience (IMB) have developed a faster and more accurate method for assembling genomes which could help clinicians rapidly identify antibiotic-resistant infections.

IMB Centre for Superbug Solutions Deputy Director Associate Professor Lachlan Coin said arming clinicians with this information could help them prescribe the most effective antibiotic for their patient.

“Antibiotic resistance is a global challenge that threatens our ability to treat common infections,” he said.

“Sequencing a bacterial genome using standard techniques resulted in a genome splitting into hundreds of fragments which was impossible to piece together.

“In particular, pathogenicity islands — which are crucial to identifying antibiotic resistance — usually split across multiple pieces.

“For the past two years, we have used cutting-edge Oxford Nanopore Technologies sequencing devices to sequence bacterial genomes and understand how antibiotic resistance develops.

“Because this technology is so new, we needed to develop a powerful method that could help us make the most of its results and really understand the genetic drivers of antibiotic resistance,” Associate Professor Coin said.

IMB Postdoctoral Researcher Dr Minh Duc Cao said the team developed a new method for analysis of sequencing data on the fly, which allowed them to quickly and accurately piece together complete genomes.

“With our method, we can reconstruct an entire bacterial genome shortly after you switch on the machine and put in the DNA sample.

“The speed is key as we’re interested in predicting antibiotic resistance in real time on clinical samples, because when it comes to diagnosing and treating infections, every minute counts,” he said.

Associate Professor Coin said the method could be applied to help unravel the genomic causes of other diseases.

“We would like to work towards finding new ways to apply this approach to help unravel other diseases, particularly cancer.

“Cancer genomes are about 1000 times larger than bacterial genomes, so the powerful combination of this leading technology and our improved method holds enormous potential for rapid assembly of personalised tumour genomes,” Associate Professor Coin said.

The research was published in Nature Communications (doi:10.1038/ncomms14515) and was funded by The University of Queensland, National Health and Medical Research Council and the Australian Research Council.

The University of Queensland’s Institute for Molecular Bioscience Centre for Superbug Solutions will host the Solutions for Drug-Resistant Infections conference in Brisbane from 3-5 April 2017.

The conference will bring international experts and advocates in the field to network and discuss new ways to solve the global challenge of drug-resistant infections.

Contact: IMB Communications, 07 3346 2155 or 0439 651 107, communications@imb.uq.edu.au

Related articles

A green turtle swimming in a turquoise ocean.
Analysis

New data reveals how Australia’s threatened reptiles and frogs are disappearing – and what we have to do

More than 1,100 reptiles and 250 frog species are found across the Australian continent and islands. But we are losing them.
28 November 2025
A large sun rises over the ocean at dawn during a heatwave in Australia.

Sunlight-powered breakthrough turns methane into valuable ethylene

A cleaner and more efficient method to convert the greenhouse gas methane into ethylene – a key ingredient in plastics and textiles – has been developed using the harsh Australian sun.
28 November 2025

Media contact

Subscribe to UQ News

Get the latest from our newsroom.