Reprogrammed SimCells for antimicrobial therapy

Y Yun Dong (Department of Engineering Science, University of Oxford) X Xianglin Ji (Department of Chemistry, Mechanical Engineering and School of Biomedical Sciences, The University of Hong Kong) T Tao Dong (Department of Immunology and Microbiology, School of Life Sciences, Southern University of Science and Technology) Y Yun Wang E Erik Bakkeren (Department of Biological Sciences, University of Calgary, Calgary, Alberta, Canada.) K Kevin R. Foster (Sir William Dunn School of Pathology, University of Oxford) W Wei E. Huang (Department of Engineering Science, University of Oxford)

Abstract

Antimicrobial resistance (AMR) is a critical global health challenge. In this study, we developed a platform based on chromosome-free and nonreplicating simple cells (SimCells, size 1 to 2 µm) and mini-SimCells (size 100 to 400 nm) for targeted pathogen elimination. Engineered with surface-displayed nanobodies, SimCells and mini-SimCells selectively bind bacteria expressing specific antigens (e.g., OmpA in Escherichia coli ). The selective interactions facilitate close SimCell-pathogen proximity, enabling two antimicrobial mechanisms: direct injection of toxic effectors into bacterial cytoplasm via a heterologous expression of type VI secretion system (T6SS), and enzymatic conversion of aspirin into catechol by engineered salicylate hydroxylase, leading to sustained local production of hydrogen peroxide (H 2 O 2 ). Our results demonstrate that both reprogrammed SimCells and mini-SimCells can eliminate target E. coli with high specificity and efficiency. Multidose reprogrammed mini-SimCell treatment led to a 10 3 -fold selective reduction of targeted bacteria in mixed microbial communities, with minimal disruption to nontarget bacteria. We demonstrate that reprogrammed mini-SimCells, engineered with nanobody targeting outer membrane protein OmpA of the clinically relevant multidrug-resistant pathogen E. coli ST131, achieved elimination efficiencies over 97% at 24 and 48 h. This modularized “plug-and-play” antimicrobial platform provides a highly specific, efficient, and adaptable solution for combating diverse AMR pathogens.

Article Details

Volume / Issue Vol. 123, Issue 12
Published March 24, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (7)

Y

Yun Dong

Department of Engineering Science, University of Oxford

X

Xianglin Ji

Department of Chemistry, Mechanical Engineering and School of Biomedical Sciences, The University of Hong Kong

T

Tao Dong

Department of Immunology and Microbiology, School of Life Sciences, Southern University of Science and Technology

Y

Yun Wang

E

Erik Bakkeren

Department of Biological Sciences, University of Calgary, Calgary, Alberta, Canada.

K

Kevin R. Foster

Sir William Dunn School of Pathology, University of Oxford

W

Wei E. Huang

Department of Engineering Science, University of Oxford