A fully synthetic Golden Gate assembly system for engineering a <i>Pseudomonas aeruginosa</i> phiKMV-like phage

A Andrew P. Sikkema (Research Department, Applied Molecular Biology, New England Biolabs) K Kaitlyn E. Kortright (Department of Ecology and Evolutionary Biology, Yale University) H Hemaa Selvakumar (Felix Biotechnology) J Jyot Antani (Department of Ecology and Evolutionary Biology, Yale University) B Benjamin K. Chan (Department of Ecology and Evolutionary Biology, Yale University) M Matthew Davidson (Department of Ecology and Evolutionary Biology, Yale University) M Max Hopkins (Felix Biotechnology) B Benjamin Newman (Applied Molecular Biology Division, New England Biolabs Research Department) V Vladimir Potapov (Applied Molecular Biology Division, New England Biolabs Research Department) C Cecilia A. Silva-Valenzuela (Applied Molecular Biology Division, New England Biolabs Research Department) S S. Kasra Tabatabaei (Applied Molecular Biology Division, New England Biolabs Research Department) R Robert McBride (Felix Biotechnology) P Paul E. Turner (Department of Ecology and Evolutionary Biology, Yale University) G Gregory J. S. Lohman (Research Department, Applied Molecular Biology, New England Biolabs)

Abstract

Bacteriophages have applications in biotechnology, including human and veterinary medicine, agriculture, food safety, and biosecurity. One example of resurging importance is phage therapy, the use of phages to treat antibiotic-resistant bacterial infections. Phage therapy currently requires screening of environmental phages against the infecting strains for each individual patient, a laborious process that limits the development of standardized treatments. To overcome limitations of narrow host range inherent to many native phages, a robust genomic engineering platform is required which permits rapid and dependable genome production and engineering for nonmodel phage. Here, we describe an engineering platform for a phiKMV-like Pseudomonas aeruginosa phage, 41S1 that builds on previous work in the rapid assembly of small genomes through one-pot, High Complexity Golden Gate assembly (HC-GGA). This system divides the 41S1 genome into DNA fragments small enough to be conveniently synthesized and to avoid toxicity during DNA propagation, with all but one maintained in Escherichia coli . These fragments are readily assembled in a high accuracy, one-pot reaction; phages can be rescued by direct transformation into P. aeruginosa PAO1 or E. coli 10-beta cells. We demonstrate the precise generation of point mutations, DNA insertions, deletions, and the addition of fluorescence reporter genes that are expressed during phage replication. All viable genotypes could be generated with near 100% success rate with minimal screening. This system demonstrates the potential of HC-GGA for the rapid production and engineering of phages and provides a chassis for the development of phages that broadly target the opportunistic human pathogen P. aeruginosa .

Article Details

Volume / Issue Vol. 123, Issue 4
Published January 27, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

A

Andrew P. Sikkema

Research Department, Applied Molecular Biology, New England Biolabs

K

Kaitlyn E. Kortright

Department of Ecology and Evolutionary Biology, Yale University

H

Hemaa Selvakumar

Felix Biotechnology

J

Jyot Antani

Department of Ecology and Evolutionary Biology, Yale University

B

Benjamin K. Chan

Department of Ecology and Evolutionary Biology, Yale University

M

Matthew Davidson

Department of Ecology and Evolutionary Biology, Yale University

M

Max Hopkins

Felix Biotechnology

B

Benjamin Newman

Applied Molecular Biology Division, New England Biolabs Research Department

V

Vladimir Potapov

Applied Molecular Biology Division, New England Biolabs Research Department

C

Cecilia A. Silva-Valenzuela

Applied Molecular Biology Division, New England Biolabs Research Department

S

S. Kasra Tabatabaei

Applied Molecular Biology Division, New England Biolabs Research Department

R

Robert McBride

Felix Biotechnology

P

Paul E. Turner

Department of Ecology and Evolutionary Biology, Yale University

G

Gregory J. S. Lohman

Research Department, Applied Molecular Biology, New England Biolabs