Related Experiment Video
Updated: Jul 23, 2025

Generation of Genomic Deletions in Mammalian Cell Lines via CRISPR/Cas9
Published on: January 3, 2015
Recyclable CRISPR/Cas9 mediated gene disruption and deletions in Histoplasma
Bastian Joehnk1, Nebat Ali1, Mark Voorhies1
1Department of Microbiology and Immunology, University of California San Francisco, San Francisco, California, USA.
Abstract:
Targeted gene disruption is challenging in the dimorphic fungal pathogen Histoplasma due to the low frequency of homologous recombination. Transformed DNA is either integrated ectopically into the genome or maintained extra chromosomally by de novo addition of telomeric sequences. Based on a system developed in Blastomyces, we adapted a CRISPR/Cas9 system to facilitate targeted gene disruption in Histoplasma with high efficiency. We express a codon-optimized version of Cas9 as well as guide RNAs from a single ectopic vector carrying a selectable marker. Once the desired mutation is verified, one can screen for isolates that have lost the Cas9 vector by simply removing the selective pressure. Multiple mutations can then be generated in the same strain by retransforming the Cas9 vector carrying different guides. We used this system to disrupt a number of target genes including RYP2 and SRE1 where loss-of-function mutations could be monitored visually by colony morphology or color, respectively. Interestingly, expression of two guide RNAs targeting the 5' and 3' ends of a gene allowed isolation of deletion mutants where the sequence between the guide RNAs was removed from the genome. Whole-genome sequencing showed that the frequency of off-target mutations associated with the Cas9 nuclease was negligible. Finally, we increased the frequency of gene disruption by using an endogenous Histoplasma regulatory sequence to drive guide RNA expression. These tools transform our ability to generate targeted mutations in Histoplasma.
Insights
CRISPR-Cas9 technology enables efficient targeted gene disruption in Histoplasma, a fungal pathogen. This breakthrough simplifies the study of gene function by overcoming previous genetic manipulation challenges.
Area of Science:
- Mycology
- Molecular Biology
- Genetics
Background:
- Targeted gene disruption in the dimorphic fungal pathogen Histoplasma is difficult due to low homologous recombination frequencies.
- Existing methods result in ectopic integration or extrachromosomal maintenance of DNA.
- Efficient genetic tools are needed to study Histoplasma pathogenesis.
Approach:
- Adapted a CRISPR-Cas9 system for high-efficiency targeted gene disruption in Histoplasma.
- Utilized a single ectopic vector expressing codon-optimized Cas9 and guide RNAs with a selectable marker.
- Developed strategies for generating multiple mutations and isolating deletion mutants.
Key Points:
- Demonstrated successful disruption of genes like RYP2 and SRE1, with observable phenotypes.
- Confirmed negligible off-target mutations through whole-genome sequencing.
- Enhanced gene disruption efficiency by using an endogenous Histoplasma regulatory sequence for guide RNA expression.
Conclusions:
- The developed CRISPR-Cas9 system significantly improves the ability to generate targeted mutations in Histoplasma.
- This tool facilitates the functional analysis of genes in this important fungal pathogen.
- Enables deeper understanding of Histoplasma biology and pathogenesis.
Related Concept Videos
CRISPR/Cas9 Genome Editing
CRISPR

