Skip to main content
bioRxiv
  • Home
  • About
  • Submit
  • ALERTS / RSS
Advanced Search
New Results

Continuous Multiplexed Phage Genome Editing Using Recombitrons

View ORCID ProfileChloe B. Fishman, Kate D. Crawford, View ORCID ProfileSanti Bhattarai-Kline, Karen Zhang, Alejandro González-Delgado, View ORCID ProfileSeth L. Shipman
doi: https://doi.org/10.1101/2023.03.24.534024
Chloe B. Fishman
1Gladstone Institute of Data Science and Biotechnology, San Francisco, CA, USA
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
  • ORCID record for Chloe B. Fishman
Kate D. Crawford
1Gladstone Institute of Data Science and Biotechnology, San Francisco, CA, USA
2Graduate Program in Bioengineering, University of California, San Francisco and Berkeley, CA, USA
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Santi Bhattarai-Kline
1Gladstone Institute of Data Science and Biotechnology, San Francisco, CA, USA
3UCLA-Caltech Medical Scientist Training Program, David Geffen School of Medicine, University of California, Los Angeles, CA, USA
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
  • ORCID record for Santi Bhattarai-Kline
Karen Zhang
1Gladstone Institute of Data Science and Biotechnology, San Francisco, CA, USA
2Graduate Program in Bioengineering, University of California, San Francisco and Berkeley, CA, USA
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Alejandro González-Delgado
1Gladstone Institute of Data Science and Biotechnology, San Francisco, CA, USA
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Seth L. Shipman
1Gladstone Institute of Data Science and Biotechnology, San Francisco, CA, USA
4Department of Bioengineering and Therapeutic Sciences, University of California, San Francisco, CA, USA
5Chan Zuckerberg Biohub, San Francisco, CA
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
  • ORCID record for Seth L. Shipman
  • For correspondence: seth.shipman@gladstone.ucsf.edu
  • Abstract
  • Full Text
  • Info/History
  • Metrics
  • Supplementary material
  • Preview PDF
Loading

ABSTRACT

Bacteriophages, which naturally shape bacterial communities, can be co-opted as a biological technology to help eliminate pathogenic bacteria from our bodies and food supply1. Phage genome editing is a critical tool to engineer more effective phage technologies. However, editing phage genomes has traditionally been a low efficiency process that requires laborious screening, counter selection, or in vitro construction of modified genomes2. These requirements impose limitations on the type and throughput of phage modifications, which in turn limit our knowledge and potential for innovation. Here, we present a scalable approach for engineering phage genomes using recombitrons: modified bacterial retrons3 that generate recombineering donor DNA paired with single stranded binding and annealing proteins to integrate those donors into phage genomes. This system can efficiently create genome modifications in multiple phages without the need for counterselection. Moreover, the process is continuous, with edits accumulating in the phage genome the longer the phage is cultured with the host, and multiplexable, with different editing hosts contributing distinct mutations along the genome of a phage in a mixed culture. In lambda phage, as an example, recombitrons yield single-base substitutions at up to 99% efficiency and up to 5 distinct mutations installed on a single phage genome, all without counterselection and only a few hours of hands-on time.

Competing Interest Statement

C.B.F., S.B.K., and S.L.S. are named inventors on a patent application related to the technologies described in this work.

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
Back to top
PreviousNext
Posted March 25, 2023.
Download PDF

Supplementary Material

Email

Thank you for your interest in spreading the word about bioRxiv.

NOTE: Your email address is requested solely to identify you as the sender of this article.

Enter multiple addresses on separate lines or separate them with commas.
Continuous Multiplexed Phage Genome Editing Using Recombitrons
(Your Name) has forwarded a page to you from bioRxiv
(Your Name) thought you would like to see this page from the bioRxiv website.
CAPTCHA
This question is for testing whether or not you are a human visitor and to prevent automated spam submissions.
Share
Continuous Multiplexed Phage Genome Editing Using Recombitrons
Chloe B. Fishman, Kate D. Crawford, Santi Bhattarai-Kline, Karen Zhang, Alejandro González-Delgado, Seth L. Shipman
bioRxiv 2023.03.24.534024; doi: https://doi.org/10.1101/2023.03.24.534024
Reddit logo Twitter logo Facebook logo LinkedIn logo Mendeley logo
Citation Tools
Continuous Multiplexed Phage Genome Editing Using Recombitrons
Chloe B. Fishman, Kate D. Crawford, Santi Bhattarai-Kline, Karen Zhang, Alejandro González-Delgado, Seth L. Shipman
bioRxiv 2023.03.24.534024; doi: https://doi.org/10.1101/2023.03.24.534024

Citation Manager Formats

  • BibTeX
  • Bookends
  • EasyBib
  • EndNote (tagged)
  • EndNote 8 (xml)
  • Medlars
  • Mendeley
  • Papers
  • RefWorks Tagged
  • Ref Manager
  • RIS
  • Zotero
  • Tweet Widget
  • Facebook Like
  • Google Plus One

Subject Area

  • Bioengineering
Subject Areas
All Articles
  • Animal Behavior and Cognition (4377)
  • Biochemistry (9568)
  • Bioengineering (7079)
  • Bioinformatics (24808)
  • Biophysics (12582)
  • Cancer Biology (9932)
  • Cell Biology (14307)
  • Clinical Trials (138)
  • Developmental Biology (7940)
  • Ecology (12087)
  • Epidemiology (2067)
  • Evolutionary Biology (15971)
  • Genetics (10910)
  • Genomics (14719)
  • Immunology (9855)
  • Microbiology (23610)
  • Molecular Biology (9466)
  • Neuroscience (50782)
  • Paleontology (369)
  • Pathology (1537)
  • Pharmacology and Toxicology (2675)
  • Physiology (4003)
  • Plant Biology (8650)
  • Scientific Communication and Education (1506)
  • Synthetic Biology (2388)
  • Systems Biology (6418)
  • Zoology (1345)