The potential of these CRISPR-Cas9 systems to serve as a robust foundation for the functional genomics and metabolic engineering of A. limacinum is demonstrated.
Abstract
This study explores advanced molecular breeding techniques for
Aurantiochytrium limacinum
, a eukaryotic microorganism valued for its industrial production of DHA and astaxanthin. We first employed the CRISPR-Cas9 system to simultaneously disrupt two genes:
crtIBY
, a multifunctional carotenoid synthesis gene used as a visual marker, and
lig4
, which is involved in non-homologous end joining (NHEJ). This genetic disruption caused the wild-type orange colonies to turn into a white colony (Δ
lig4
-Δ
crtIBY
-TA#6), indicating the loss of carotenoid production. Subsequently, we successfully demonstrated marker recycling by repairing the
crtIBY
gene using single-strand oligodeoxynucleotide (ssODN) templates, which restored the orange phenotype (Δ
lig4
-TB#18). Further investigation into the Δ
lig4
strain (TB#18) revealed that its overall transformation efficiency dropped significantly compared to that of the wild-type strain when using only a bleomycin resistance expression cassette with two
crtIBY
homologous regions. However, when we combined the bleomycin resistance expression cassette with CRISPR-Cas9 ribonucleoproteins (RNPs) during electroporation, the Δ
lig4
strains (TA#6 and TB#18) exhibited higher homologous recombination-type efficiencies through double-crossover-type events than the wild-type. These results indicate that while Lig4 is important for general transformation against zeocin, disrupting the NHEJ pathway enhances precise gene targeting. This study demonstrated the potential of these CRISPR-Cas9 systems to serve as a robust foundation for the functional genomics and metabolic engineering of
A. limacinum
.
Compared with conventional homologous recombination, the CRISPR-Cas9 system substantially improved gene disruption efficiency, thereby overcoming a major limitation in the genetic manipulation of lichen-forming fungi.
Ze-Yi Wang, Niu-Niu Wang, Hai-Yu Zhang et al.· Journal of Fungi· 0 citations
The filamentous cyanobacterium Nostoc punctiforme is a key model organism used to study several aspects of cyanobacterial biology, including development, nitrogen-fixing symbioses with plants, and secondary metabolites, among others. While N. punctiforme is amenable to genetic manipulation, traditional approaches for the generation of mutant strains using homologous recombination are slow, requiring prolonged outgrowth under antibiotic selection to ensure isogenic mutant populations. CRISPR-based genome editing using Cpf1 (Cas12a) was recently shown to be an effective means of rapid generation of isogenic mutants in several cyanobacteria. In this study, Cpf1-based genome editing tools were developed for N. punctiforme. A total of 19 unmarked, in-frame deletion mutants were successfully constructed using Cpf1-targeted cleavage along with homology directed repair (HDR). The length of the homology arms (HAs) on the homologous repair template (HRT) used for HDR was found to be a critical factor for successful deletion of target genes, with some requiring up to 4 kb HAs to acquire mutant exconjugants. A strategy for allelic replacement was also developed by introducing an exogenous target site in place of the deleted genes, which could subsequently be targeted for cleavage and repaired with an HRT containing altered alleles of the genes of interest. Additionally, a single-step cloning strategy was devised, allowing for rapid assembly of editing plasmids, and improved conjugation protocols for genetic transfer from E. coli to N. punctiforme were implemented. Collectively, these tools and protocols should enhance the pace and ease of conducting genetic studies in this important model cyanobacterium.
Jenna R. Ryder, Soohan Woo, Ailea A. Blahm et al.· bioRxiv· 0 citations
ABSTRACT Despite substantial advances in bacterial genome engineering, functional genetic analysis remains challenging in many non-model bacterial species, particularly among host-associated gram-positive bacteria. The fructophilic species Apilactobacillus kunkeei has been investigated for more than two decades and is a dominant member of the honeybee microbiome, where it contributes to pathogen resistance and colony fitness. Nevertheless, the mechanistic investigation of this ecologically important species has remained limited despite its growing probiotic relevance. To enable functional genomics in this organism, we developed an inducible genome-engineering platform that leverages its endogenous Type II-A CRISPR-Cas9 system. The system uses a sakacin-responsive dual-plasmid initiator–effector design in which phage-derived recombineering genes and a single-guide RNA are coordinately expressed, while DNA cleavage is mediated by natively expressed Cas9. Using this approach, we achieved scarless deletion of individual genes, including targets as large as ~25 kb, gene replacement with a fluorescent reporter, C-terminal epitope tagging, and precise nucleotide substitutions, with editing efficiencies approaching 100%. Both plasmids can be readily cured following modification, allowing recovery of clean mutant genotypes. We further demonstrate that endogenous Cas9 can be repurposed for CRISPR interference using a single, self-contained plasmid to enable targeted transcriptional repression. Together, this work establishes a robust strategy for genetic manipulation of A. kunkeei and expands the toolkit available for harnessing endogenous CRISPR-Cas systems in genetically recalcitrant, non-model gram-positive bacteria. IMPORTANCE Many ecologically and industrially important bacteria remain genetically recalcitrant, limiting functional genomic studies. As research increasingly extends beyond traditional model organisms, these limitations are especially apparent in non-model gram-positive bacteria from host-associated or environmental niches. Here, we establish an inducible genome-editing framework exploiting the endogenous Cas9 system of Apilactobacillus kunkeei, a key member of the honeybee microbiota. This approach enables reliable scarless gene deletions, precise nucleotide changes, large-scale genome modifications, and programmable transcriptional repression. By enabling genetic manipulation in A. kunkeei, this work facilitates experimental studies of its roles in honeybee health, microbial interactions, and host-associated adaptation, and highlights the potential of endogenous CRISPR-Cas systems for expanding genetic access in non-model bacteria. Many ecologically and industrially important bacteria remain genetically recalcitrant, limiting functional genomic studies. As research increasingly extends beyond traditional model organisms, these limitations are especially apparent in non-model gram-positive bacteria from host-associated or environmental niches. Here, we establish an inducible genome-editing framework exploiting the endogenous Cas9 system of Apilactobacillus kunkeei, a key member of the honeybee microbiota. This approach enables reliable scarless gene deletions, precise nucleotide changes, large-scale genome modifications, and programmable transcriptional repression. By enabling genetic manipulation in A. kunkeei, this work facilitates experimental studies of its roles in honeybee health, microbial interactions, and host-associated adaptation, and highlights the potential of endogenous CRISPR-Cas systems for expanding genetic access in non-model bacteria.
Mahesh S Iyer, Erik Hagström, Kristina Näslund et al.· Applied and Environmental Mi...· 0 citations
A substantial decrease in menthofuran content in the essential oil of the edited line #10 compared to the wild-type control is revealed, thereby demonstrating a viable strategy for improving mint essential oil quality through genome-editing.