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Choi, J.-T.

Publications and source records attributed to Choi, J.-T..

5 recordsLinked to original sources

Cryptococcus neoformans rewires the conserved Wee1-CDK checkpoint through two divergent kinases required for replication-stress tolerance and virulence

Cell-cycle checkpoints couple cell division to environmental and intracellular stress. Here, we show that the human fungal pathogen Cryptococcus neoformans possesses two divergent Wee1-family kinases, CnSwe1 and CnSwe102, that retain conserved CDK-inhibitory activity but function differently from their counterparts in the canonical Saccharomyces cerevisiae morphogenesis checkpoint. The swe1{Delta} and swe102{Delta} mutants displayed distinct stress-response defects, and genetic analyses suggested a dosage-sensitive genetic interaction between SWE1 and SWE102. Although both proteins promoted Cdc28 tyrosine phosphorylation and elongated-cell morphology when expressed in S. cerevisiae, neither localized to the mother-bud neck in C. neoformans. Altered SWE1 dosage in the absence of SWE102 increased sensitivity to replicative and DNA-damaging stresses and perturbed cell-cycle progression under genotoxic conditions. Importantly, loss of SWE1 nearly abolished virulence in a murine infection model, and SWE102 also contributed to pathogenicity. Together, these findings indicate that the conserved Wee1-CDK module acts in C. neoformans as a dosage-sensitive checkpoint that promotes stress adaptation and fungal virulence.

microbiology↗

Systematic profiling of WD40 proteins reveals Wcp1, a cyclophilin linking CO2/heat tolerance to acidic pH adaptation in Cryptococcus neoformans

WD40 domains are major protein-protein interaction (PPI) scaffolds, yet their contributions to fungal pathogenicity remain poorly defined. We systematically analysed 94 canonical WD40 proteins in Cryptococcus neoformans. Conditional knockdown and sporulation identified 36 essential WD40 proteins, while in vitro and in vivo profiling of 103 signature-tagged deletion strains spanning 52 genes uncovered 31 pathogenicity-related WD40 proteins, including epigenetic and post-transcriptional regulators. We identified Wcp1, a dual-domain protein whose WD40-repeat and cyclophilin domains are required for growth at 37{degrees}C under 5% CO2. Its WD40 scaffold and PPIase domain supported CO2/heat tolerance and virulence. Notably, Wcp1 couples these functions to acidic pH adaptation: wcp1{Delta} failed to grow under elevated temperature and CO2 at acidic pH, exhibited enhanced intracellular acidification, reduced macrophage survival and attenuated virulence in Drosophila and mice. Integrated transcriptomic and proteomic analyses place Wcp1 at the centre of intracellular pH homeostasis, coordinating proton transport, metabolic adaptation and stress-buffering networks.

microbiology↗

Systematic Profiling of Essential Fungal Transcription Factors Uncovers Ezt1 as a Central Pathobiological and Morphogenic Regulator in Cryptococcus neoformans

Cryptococcus neoformans is a global fungal pathogen that causes fatal cryptococcosis, and the limitations of current antifungals underscore the urgent need for new therapeutics. Here we systematically investigate essential transcriptional regulators in C. neoformans as potential antifungal targets, developing experimental pipelines that assess growth requirement, essentiality and function through conditional gene expression, constitutive overexpression, and meiotic spore analysis. We identify one quasi-essential (growth-required but non-essential) transcription factor, Fhl1, and 13 essential transcriptional regulators, three of which are transcription factors (Ezt1, Ezt2 and Cbf1) highly divergent from counterparts in other eukaryotes. Notably, Ezt1 modulates the expression of more than 1,200 genes, controlling growth, antifungal drug and stress responses, sexual development and virulence. Our findings define the essential transcriptional regulator landscape of C. neoformans and provide a framework for prioritising divergent essential regulators, particularly Ezt1, for antifungal target discovery.

microbiology↗

Systems-level phosphoproteomics reveals conserved and subunit-specific STRIPAK signaling networks in Cryptococcus neoformans

The striatin-interacting phosphatase and kinase (STRIPAK) complex is a conserved PP2A-associated signaling hub that integrates kinase-phosphatase networks, yet its roles in human fungal pathogens remain poorly defined. Here, we dissected STRIPAK functions in the opportunistic pathogen Cryptococcus neoformans by combining genetic, genomic, virulence, and phosphoproteomic analyses across mutants lacking individual STRIPAK subunits. Loss of the core STRIPAK components via PPH22, FAR8, FAR9, or FAR11 mutations caused severe defects in growth, stress adaptation, cell-cycle progression, and morphogenesis, accompanied by widespread aneuploidy and genome instability. In murine infection models, far11{Delta} strains were avirulent, whereas far9{Delta} mutants caused delayed but ultimately fatal disease and underwent host-associated genome remodeling, with recovered isolates exhibiting chromosome 11 amplification despite no consistent in vitro fitness advantage. In contrast, deletion of MOB3 produced a hypervirulent phenotype. mob3{Delta} cells exhibited enhanced transmigration across an in vitro blood-brain barrier model, increased survival in macrophages, and generated small-cell morphotypes, features associated with increased dissemination. Phosphoproteomic profiling revealed extensive and overlapping phosphorylation changes among core STRIPAK mutants, affecting pathways involved in signaling, cytoskeletal and cell-cycle control, chromatin regulation, RNA metabolism, and stress responses. Conversely, mob3{Delta} mutants displayed a smaller, largely distinct phosphoproteomic signature. Network and functional enrichment analyses highlighted STRIPAK-dependent regulation of TORC2-associated signaling, MAPK/GTPase signaling, autophagy, nuclear transport, RNA processing, DNA replication, and ribosome biogenesis. Together, these findings establish STRIPAK as a coordinator of genome stability, morphological plasticity, stress adaptation, and virulence in C. neoformans, and demonstrate that individual STRIPAK subunits drive shared yet divergent signaling outputs that shape host-pathogen interactions. ImportanceFungal pathogens must rapidly adapt their growth, morphology, and stress responses to survive within the host, requiring precise coordination of cellular signaling pathways. The conserved striatin-interacting phosphatase and kinase (STRIPAK) complex controls key developmental programs in eukaryotes, but its roles in fungal pathogenesis are not fully defined. We previously showed that STRIPAK is important for genome stability, development, and virulence in the opportunistic human fungal pathogen Cryptococcus neoformans. Here, we define how individual STRIPAK subunits differentially regulate fungal morphogenesis, genome plasticity, host adaptation, and virulence, revealing both shared and subunit-specific functions within this conserved signaling complex. Core STRIPAK mutants exhibit severe growth and stress-response defects and attenuation of virulence, whereas loss of the Mob3 subunit promotes hypervirulence by enhancing dissemination and persistence within the host. Phosphoproteomic profiling reveals that individual STRIPAK components exert shared yet distinct control over phosphorylation networks that shape host-pathogen interactions, establishing STRIPAK as a central signaling hub and a potential target for antifungal intervention.

microbiology↗

The Cryptococcus neoformans STRIPAK complex controls genome stability, sexual development, and virulence

The eukaryotic serine/threonine protein phosphatase PP2A is a heterotrimeric enzyme composed of a scaffold A subunit, a regulatory B subunit, and a catalytic C subunit. Of the four known B subunits, the B subunit (known as striatin) interacts with the multi-protein striatin-interacting phosphatase and kinase (STRIPAK) complex. Orthologs of STRIPAK components were identified in Cryptococcus neoformans, namely PP2AA/Tpd3, PP2AC/Pph22, PP2AB/Far8, STRIP/Far11, SLMAP/Far9, and Mob3. Structural modeling, protein domain analysis, and detected protein-protein interactions suggest C. neoformans STRIPAK is assembled similarly to the human and fungal orthologs. Here, STRIPAK components Pph22, Far8, and Mob3 were functionally characterized. Whole-genome sequencing revealed that mutations in STRIPAK complex subunits lead to increased segmental and chromosomal aneuploidy, suggesting STRIPAK functions in maintaining genome stability. We demonstrate that PPH22 is a haploinsufficient gene: heterozygous PPH22/pph22{Delta} mutant diploid strains exhibit defects in hyphal growth and sporulation and have a significant fitness disadvantage when grown in competition against a wild-type diploid. Deletion mutants pph22{Delta}, far8{Delta}, and mob3{Delta} exhibit defects in mating and sexual differentiation, including impaired hyphae, basidia, and basidiospore production. Loss of either PPH22 or FAR8 in a haploid background leads to growth defects at 30C, severely reduced growth at elevated temperature, abnormal cell morphology, and impaired virulence. Additionally, pph22{Delta} strains frequently accumulate suppressor mutations that result in overexpression of another putative PP2A catalytic subunit, PPG1. The pph22{Delta} and far8{Delta} mutants are also unable to grow in the presence of the calcineurin inhibitors cyclosporine A or FK506, and thus these mutations are synthetically lethal with loss of calcineurin activity. Conversely, mob3{Delta} mutants display increased thermotolerance, capsule production, and melanization, and are hypervirulent in a murine infection model. Taken together, these findings reveal that the C. neoformans STRIPAK complex plays an important role in genome stability, vegetative growth, sexual development, and virulence in this prominent human fungal pathogen. Author summaryThis study focused on a highly conserved protein signaling complex known as STRIPAK, which is important for various developmental processes in fungi and humans. By investigating the functions of this complex in Cryptococcus neoformans, it was discovered to play crucial roles in maintaining genome stability, sexual development, and pathogenesis. In particular, mutations in the genes encoding two subunits of the STRIPAK complex were found to lead to significant defects, including abnormal growth and cell morphology, compromised stress response, and impaired virulence. Interestingly, mutation of a third STRIPAK complex subunit resulted in hypervirulence, characterized by increased thermotolerance, enhanced production of melanin pigment and polysaccharide capsule, and reduced survival in infected animals. Our findings reveal that the STRIPAK complex is an important regulator of growth and virulence of C. neoformans, highlighting its potential as a target for therapies aimed at combating fungal infections. This work furthers understanding of how the STRIPAK complex functions in Cryptococcus, and also in other organisms including humans, where related protein phosphatase complexes govern key cellular processes.

microbiology↗