C. albicans CRISPR efficiently edits the C. albicans genome. pV1524 encodes a yeast codon-optimized Cas9 and is designed such that investigators can easily clone guide RNA sequences downstream of the CaSNR52 promoter (Figure 1)11. It must be ensured that only a single copy of the guide sequence has been cloned into CaCas9 expression vectors by sequencing, as extra copies will impede genome editing. If multiple copies of the guide are introduced consistently, one should lower the concentration of the annealed guide used in ligation. The vector and protocol described allow targeting of any C. albicans gene. Although C. albicans is diploid, only a single transformation is required to target both alleles of a gene. Furthermore, the processive nature of CRISPR-CaCas9 genome editing enables researchers to target multiple members of gene families. Many gene families such as the secreted aspartyl proteases (SAPS) and agglutinin-like sequence proteins (ALS) are important for C. albicans virulence. CRISPR genome editing will facilitate investigation of these gene families.
The protocols described above introduce a stop codon to an open reading frame, resulting in the phenotypic equivalent of a null (Figure 2). A wide variety of genetic alternations can be made by varying the repair template. Nonsense, missense, and silent mutations can be inserted via recombination with an appropriate repair template. Incorporation of a restriction site streamlines transformant screening, as those without must be screened by sequencing12,13. In addition, C. albicans CRISPR enables researchers to generate insertions and deletions, making it an ideal system to insert affinity tags, perform promotor swaps, and generate knockouts (Figure 3). Screening for correct transformants for these mutations is more laborious, as it is necessary to sequence the edits to confirm correct incorporation of the repair templates. Furthermore, Southern blot may be necessary to ensure additional copies of a gene have not been inserted at additional locations in the genome. The requirement of the NGG PAM site places slight limitations on the regions of the genome that can be targeted. The development of alternative CRISPR systems that use alternative nucleases such as Cpf1 or variations on the Cas9 system have/will alleviate many of these limitations14. To the investigators' knowledge at this time, these systems have not yet been applied to C. albicans.
The CRISPR system described in the above protocol has been developed such that it can be applied in a wide variety of species including Saccharomyces cerevisiae, Naumouozyma castellii, and the human pathogen Candida glabrata11. Transformation and efficient editing of these yeast requires slight changes to the described protocol, but the framework for editing these alternate genomes is remarkably similar to that described for C. albicans12. Furthermore, yeast provide an excellent mechanism to develop genome editing procedures. In yeast, when ADE2 is mutated, a precursor to the adenine biosynthesis pathway accumulates, turning the cells red. This easily observable phenotype allows investigators to identify edited cells and quickly troubleshoot genome editing protocols. Combined with the extensive molecular biology toolbox available for fungi, protocols for editing numerous yeast species have been developed15,16. Such a broad application of genome editing technology in fungi has the potential to significantly impact a wide variety of scientific disciplines.
CRISPR has greatly improved the efficiency of genome engineering in C. albicans, but to date CRISPR has not been used to perform genome wide screens in C. albicans. Current protocols require a repair template to introduce mutations, as the nonhomologous end joining pathway in C. albicans is inefficient12. The generation of repair template oligos for every gene is a significant barrier to the execution of genome-wide screens. The confluence of decreased costs of DNA synthesis and advances to CRISPR technologies will make development of deletion libraries more feasible. For instance, expression of a repair template from the CaCas9 vector paves the way for the development of sustainable plasmid libraries that target every gene11. Furthermore, transient Candida CRISPR protocols that do not require CaCas9 expression vector incorporate into the C. albicans genome have been developed17. In addition, increased guide expression increases genome editing efficiency18. These, and other advances to CRISPR technologies, are crucial to the development of genome-wide screens in C. albicans19,20,21,22.
The C. albicans genome is diploid, but A and B alleles are not always identical5. Such heterozygosity provides both challenges and opportunities. If one aims to target both alleles, a PAM site, guide sequence, and repair template that will act on both copies of the gene must be used. However, depending upon single nucleotide polymorphisms present in a gene, the C.albicans CRISPR system enables investigators to target a single allele. Such precision has the potential to allow investigators to examine functional differences between alleles. Targeting specific alleles must be done carefully, as loss of heterozygosity (LOH) at an allele or of an entire chromosome has been observed. When editing single C. albicans alleles, one must examine adjacent DNA sequences to determine if a clone has maintained a diploid SNP profile. In addition, off-target effects are quite low for C. albicans CRISPR, but whole genome sequencing can be considered for key strains.