A diverse single-stranded DNA–annealing protein library enables efficient genome editing across bacterial phyla

G Gabriel T. Filsinger (Department of Systems Biology, Harvard Medical School) A Aaron Mychack (Department of Microbiology, Harvard University) E Evan Lyerly (Department of Microbiology, Harvard University) C Camilla Henriksen (Department of Veterinary and Animal Disease, University of Copenhagen) T Thomas M. Bartlett (Department of Microbiology, Harvard University) H Helene Kuchwara (Department of Genetics, Harvard Medical School) S Simon Eitzinger (Department of Genetics, Harvard Medical School) T Thomas G. Bernhardt (Department of Microbiology) S Suzanne Walker G George M. Church T Timothy M. Wannier (Department of Genetics, Harvard Medical School)

Abstract

Genome modification is essential for studying and engineering bacteria, yet making efficient modifications to most species remains challenging. Bacteriophage-encoded single-stranded DNA–annealing proteins (SSAPs) can facilitate efficient genome editing by homologous recombination, but their typically narrow host range limits broad application. Here, we demonstrate that a single library of 227 SSAPs enables efficient genome-editing across six diverse bacteria from three divergent classes: Actinomycetia ( Mycobacterium smegmatis and Corynebacterium glutamicum ), Alphaproteobacteria ( Agrobacterium tumefaciens and Caulobacter crescentus ), and Bacilli ( Lactococcus lactis and Staphylococcus aureus ). Surprisingly, the most effective SSAPs frequently originated from phyla distinct from their bacterial hosts, challenging the assumption that phylogenetic relatedness is necessary for recombination efficiency, and supporting the value of a large unbiased library. Across these hosts, the identified SSAPs enable genome modifications requiring efficient homologous recombination, demonstrated through three examples. First, we use SSAPs with Cas9 in C. crescentus to introduce single amino acid mutations with >70% efficiency. Second, we adapt SSAPs for dsDNA editing in C. glutamicum and S. aureus , enabling one-step gene knockouts using PCR products. Finally, we apply SSAPs for multiplexed editing in S. aureus to precisely map the interaction between a conserved protein and a small-molecule inhibitor. Overall, this library-based SSAP screen expands engineering capabilities across diverse, previously recalcitrant microbes, enabling efficient genetic manipulation for both fundamental research and biotechnological applications.

Article Details

Volume / Issue Vol. 122, Issue 17
Published April 29, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (11)

G

Gabriel T. Filsinger

Department of Systems Biology, Harvard Medical School

A

Aaron Mychack

Department of Microbiology, Harvard University

E

Evan Lyerly

Department of Microbiology, Harvard University

C

Camilla Henriksen

Department of Veterinary and Animal Disease, University of Copenhagen

T

Thomas M. Bartlett

Department of Microbiology, Harvard University

H

Helene Kuchwara

Department of Genetics, Harvard Medical School

S

Simon Eitzinger

Department of Genetics, Harvard Medical School

T

Thomas G. Bernhardt

Department of Microbiology

S

Suzanne Walker

G

George M. Church

T

Timothy M. Wannier

Department of Genetics, Harvard Medical School