Strategic Communications and Marketing News Bureau

Scientists target bacterial sharing of antibiotic-resistance genes

CHAMPAIGN, lll. – The bacterium Streptococcus pneumoniae – which can cause pneumonia, meningitis, bacteremia and sepsis – likes to share its antibiotic-defeating weaponry with its neighbors. Individual cells can pass resistance genes to one another through a process called horizontal gene transfer, or by “transformation,” the uptake of DNA from the environment.

University of Illinois pathobiology professor Gee Lau and his colleagues targeted a protein that signals bacterial cells to allow the exchange of genes with their neighbors.

University of Illinois pathobiology professor Gee Lau and his colleagues targeted a protein that signals bacterial cells to allow the exchange of genes with their neighbors.

Now researchers report that they can interrupt the cascade of cellular events that allows S. pneumoniae to swap or suck up DNA. The new findings, reported in the journal PLoS ONE, advance the effort to develop a reliable method for shutting down the spread of drug resistance in bacteria.

“Within the last few decades, S. pneumoniae has developed resistance to several classes of antibiotics,” said University of Illinois pathobiology professor Gee Lau, who led the study. “Importantly, it has been shown that antibiotic stress – the use of antibiotics to treat an infection – can actually induce the transfer of resistance genes among S. pneumoniae. Our approach inhibits resistance gene transfer in all strains of S. pneumoniae, and does so without increasing selective pressure and without increasing the likelihood that resistant strains will become dominant.”

Lau and his colleagues focused on blocking a protein that, when it binds to a receptor in the bacterial cell membrane, spurs a series of events in the cell that makes the bacterium “competent” to receive new genetic material. The researchers hypothesized that interfering with this protein (called CSP) would hinder its ability to promote gene transfer.

In previous work published late last year in the journal PLoS Pathogens, Lau’s team identified proteins that could be made in the lab that were structurally very similar to the CSP proteins. These artificial CSPs can dock with the membrane receptors, block the bacterial CSPs’ access to the receptors and reduce bacterial competence, as well as reducing the infectious capacity of S. pneumoniae.

In the new study, the researchers fine-tuned the amino acid structure of more than a dozen artificial CSPs and tested how well they inhibited the S. pneumoniae CSPs. They also tested their ability (or, more desirably, their inability) to mimic the activity of CSPs in bacterial cells.

“The chemical properties of individual amino acids in a protein can greatly influence the protein’s activity,” Lau said.

The team identified several artificial CSPs that both inhibited the bacterial CSPs and reduced S. pneumoniae competence by more than 90 percent.

“This strategy will likely help us reduce the spread of antibiotic-resistance genes among S. pneumoniae and perhaps other species of streptococcus bacteria,” Lau said.

The study team included researchers from Sun-Yat-Sen University in Guangdong, China. The National Institutes of Health and the University of Illinois Research Board Arnold O. Beckman Research Endowment partially supported this work.

Editor’s note: To reach Gee Lau, call 217-333-5077; email geelau@illinois.edu.

The paper, “Saturated Alanine Scanning Mutagenesis of the Pneumococcus Competence Stimulating Peptide Identifies Analogs That Inhibit Genetic Transformation,” is available online.

Read Next

Health and medicine Dr. Timothy Fan, left, sits in a consulting room with the pet owner. Between them stands the dog, who is looking off toward Fan.

How are veterinarians advancing cancer research in dogs, people?

CHAMPAIGN, Ill. — People are beginning to realize that dogs share a lot more with humans than just their homes and habits. Some spontaneously occurring cancers in dogs are genetically very similar to those in people and respond to treatment in similar ways. This means inventive new treatments in dogs, when effective, may also be […]

Honors From left, individuals awarded the 2025 Campus Awards for Excellence in Public Engagement are Antoinette Burton, director of the Humanities Research Institute; Ariana Mizan, undergraduate student in strategy, innovation and entrepreneurship; Lee Ragsdale, the reentry resource program director for the Education Justice Project; and Ananya Yammanuru, a graduate student in computer science. Photos provided.

Awards recognize excellence in public engagement

The 2025 Campus Awards for Excellence in Public Engagement were recently awarded to faculty, staff and community members who address critical societal issues.

Uncategorized Portrait of the researchers standing outside in front of a grove of trees.

Study links influenza A viral infection to microbiome, brain gene expression changes

CHAMPAIGN, Ill. — In a study of newborn piglets, infection with influenza A was associated with disruptions in the piglets’ nasal and gut microbiomes and with potentially detrimental changes in gene activity in the hippocampus, a brain structure that plays a central role in learning and memory. Maternal vaccination against the virus during pregnancy appeared […]

Strategic Communications and Marketing News Bureau

507 E. Green St
MC-426
Champaign, IL 61820

Email: stratcom@illinois.edu

Phone (217) 333-5010