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March 27, 2026Microbiology Spectrum0 citationsOpen Access

Unlocking genome engineering in Alcaligenes faecalis by exploiting its native type I-F CRISPR-Cas

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WCWanting ChengJLJie LiLLLei Lei

Key Points

  • The aim is to develop an efficient genome editing toolkit using the native type I-F CRISPR-Cas system in Alcaligenes faecalis.
  • Developed a genome editing toolkit using the endogenous type I-F CRISPR-Cas system.
  • Engineered a PheS-mutant counterselection marker for rapid plasmid curing.
  • Conducted two rounds of large-fragment removal totaling ~47 kb within 5 days.
  • Achieved efficient single-gene knockouts.
  • Enabled precise deletion of large genomic fragments previously considered unattainable.
  • Established a scalable genetic toolbox for enhanced bioremediation and eutrophication control in A. faecalis.

Abstract

ABSTRACT Alcaligenes faecalis is an environmentally significant bacterium for pollutant biodegradation and aerobic denitrification, yet its genetic engineering has been hindered by a lack of high-throughput tools. Conventional methods like homologous recombination are time-consuming and cannot achieve large genomic deletions, while technologies based on heterologous CRISPR-Cas systems failed due to cytotoxicity. This study resolves these limitations by developing a genome editing toolkit based on the endogenous type I-F CRISPR-Cas of A. faecalis J481. The toolkit enables efficient single-gene knockout and accomplishes the previously unattainable precise deletion of large genomic fragments. By engineering a PheS -mutant counterselection marker, we achieved rapid plasmid curing, allowing two rounds of large-fragment removal (~47 kb total) within 5 days. This breakthrough provides the first CRISPR-based platform for complex genome engineering in A. faecalis , overcoming intrinsic constraints of heterologous systems. The work establishes a scalable genetic toolbox to enhance A. faecalis ’ capabilities in bioremediation and eutrophication control. Moreover, the strategy of harnessing endogenous CRISPR-Cas systems offers a blueprint for developing advanced genome editing tools in other prokaryotes. IMPORTANCE This study breaks through the longstanding genetic engineering bottleneck in an environmentally crucial bacterium, Alcaligenes faecalis , by creating a fast, efficient, and versatile toolkit using its native CRISPR-Cas system. This enables complex edits, such as large genomic deletions previously impossible, unlocking new potential for bioremediation and eutrophication control, providing a blueprint for other prokaryotes, and setting a precedent for genetic tool development in other hard-to-engineer microbes.

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Cite This Study

Cheng et al. (2026) studied this question.

synapsesocial.com/papers/69c620d515a0a509bde1978ehttps://doi.org/10.1128/spectrum.02786-25
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