Phage-induced protection against lethal bacterial reinfection

Y Yikun Xing (TAILOR Labs, Baylor College of Medicine) H Haroldo J. Hernandez Santos (TAILOR Labs, Baylor College of Medicine) L Ling Qiu (Department of Molecular Virology and Microbiology, Baylor College of Medicine) S Samantha R. Ritter (TAILOR Labs, Baylor College of Medicine) J Jacob J. Zulk (TAILOR Labs, Baylor College of Medicine) R Rachel Lahowetz (Department of Molecular Virology and Microbiology, Baylor College of Medicine) K Kathryn A. Patras (Department of Molecular Virology and Microbiology, Baylor College of Medicine) A Austen L. Terwilliger (TAILOR Labs, Baylor College of Medicine) A Anthony W. Maresso (TAILOR Labs, Baylor College of Medicine)

Abstract

Bacteriophages, or phages, are viruses that target and infect bacteria. Due to a worldwide rise in antimicrobial resistance (AMR), phages have been proposed as a promising alternative to antibiotics for the treatment of resistant bacterial infections. Up to this point in history, phage use in preclinical animal studies, clinical trials, and emergency-use compassionate care cases has centered around the original observation from 1915 showing phage as lytic agent, and thus a treatment that kills bacteria. Here, we describe an activity associated with phage therapy that extends beyond lytic activity that results in long-term protection against reinfection. This activity is potent, providing almost complete protection against a second lethal infection for animals treated with phage therapy. The activity also reduced infection burden an astounding billion-fold over the control. Reinfection protection requires phage lytic killing of its target bacterium but is independent of additional phage therapy. The effect is not driven by phage alone, lingering phage resistors, or a sublethal inoculum. In vitro phage-lysed bacteria provide partial protection, suggesting a combination of phage-induced lytic activity and immune stimulation by phage treatment is responsible for the effect. These observations imply certain phages may induce host adaptive responses following the lysis of the infecting bacteria. This work suggests phage therapy may contain a dual-action effect, an initial treatment efficacy followed by a long-term protection against reoccurring infection, a therapeutic-vaccination mechanism of action.

Article Details

Volume / Issue Vol. 122, Issue 22
Published June 03, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (9)

Y

Yikun Xing

TAILOR Labs, Baylor College of Medicine

H

Haroldo J. Hernandez Santos

TAILOR Labs, Baylor College of Medicine

L

Ling Qiu

Department of Molecular Virology and Microbiology, Baylor College of Medicine

S

Samantha R. Ritter

TAILOR Labs, Baylor College of Medicine

J

Jacob J. Zulk

TAILOR Labs, Baylor College of Medicine

R

Rachel Lahowetz

Department of Molecular Virology and Microbiology, Baylor College of Medicine

K

Kathryn A. Patras

Department of Molecular Virology and Microbiology, Baylor College of Medicine

A

Austen L. Terwilliger

TAILOR Labs, Baylor College of Medicine

A

Anthony W. Maresso

TAILOR Labs, Baylor College of Medicine