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Mathivathanan, S.

Publications and source records attributed to Mathivathanan, S..

2 recordsLinked to original sources

A Conserved Metabolic Network Regulates Titan Cell Formation in Cryptococcus neoformans

Cryptococcus neoformans is an opportunistic fungal pathogen that causes pulmonary infections and life-threatening meningoencephalitis in immunocompromised individuals. In addition to the polysaccharide capsule and melanin, titan cell formation is a key virulence trait that promotes immune evasion and disease progression. Despite the established role of titan cells in C. neoformans pathogenesis, the molecular mechanisms governing their formation remain poorly understood. Here, we demonstrate that glycolysis is critical for titan cell formation in C. neoformans. Pharmacological inhibition or genetic disruption of glycolysis significantly impaired titanization, whereas exogenous cAMP add-back restored the defect. To elucidate the underlying mechanism, we performed comparative RNA-seq analyses of wild- type, hxk2{Delta}, and hxk2{Delta} supplemented with cAMP under titan cell inducing conditions. Transcriptomic analyses revealed significant downregulation of a large subset of calcineurin- responsive genes in the hxk2{Delta} mutant, many of which were restored upon cAMP supplementation. Consistent with these findings, pharmacological inhibition of calcineurin using FK506 or cyclosporin A markedly reduced titan cell formation, establishing an essential role for calcineurin signaling in this morphological transition. Furthermore, supplementation with CaCl2 rescued the titanization defect of the hxk2{Delta} mutant, whereas chelation of extracellular calcium with EGTA significantly inhibited titanization in wild-type cells. Using the calcium-sensitive dye, we found that intracellular calcium levels were substantially reduced in the hxk2{Delta} mutant and were restored by CaCl2 or cAMP supplementation. Collectively, our findings uncover a previously unrecognized glycolysis-calcineurin regulatory axis that governs titan cell formation and establishes a direct mechanistic link between central carbon metabolism, calcium homeostasis and fungal morphogenesis. SummaryTitan cell formation is a critical virulence trait that promotes immune evasion and disease progression of Cryptococcus neoformans. However, the mechanisms governing this morphological transition remain poorly understood. Here, we demonstrate that glycolysis is essential for titan cell formation and uncover a previously unrecognized link between glycolysis, calcium homeostasis, and calcineurin signaling. Comparative transcriptomics, pharmacological perturbation, calcium rescue experiments, and intracellular calcium measurements reveal that disruption of glycolysis attenuates calcineurin signaling by reducing intracellular calcium levels, thereby impairing titanization. These findings establish a novel glycolysis-calcineurin regulatory axis controlling fungal morphogenesis in C. neoformans.

microbiology↗

Glycolysis-dependent Sulfur Metabolism Orchestrates Morphological Plasticity and Virulence in Fungi

Fungi exhibit remarkable morphological plasticity, which allows them to undergo reversible transitions between distinct cellular states in response to changes in their environment. This phenomenon, termed fungal morphogenesis, is critical for fungi to survive and colonize diverse ecological niches and establish infections in a variety of hosts. Despite significant advancements in the field with respect to understanding the gene regulatory networks that control these transitions, the metabolic determinants of fungal morphogenesis remain poorly characterized. In this study, we uncover a previously uncharacterized, conserved dependency between central carbon metabolism and de novo biosynthesis of sulfur-containing amino acids that is critical for fungal morphogenesis, in two key fungal species. Using a multidisciplinary approach, we demonstrate that glycolytic flux is crucial to drive fungal morphogenesis in a cAMP-independent manner and perturbation of this pathway leads to a significant downregulation in the expression of genes involved in de novo biosynthesis of sulfur-containing amino acids. Remarkably, exogenous supplementation of sulfur-containing amino acids robustly rescues the morphogenesis defect induced by the perturbation of glycolysis in both Saccharomyces cerevisiae and Candida albicans, underscoring the pivotal role of de novo biosynthesis of sulfur-containing amino acid as a downstream effector of morphogenesis. Furthermore, a C. albicans mutant lacking the glycolytic enzyme, phosphofructokinase-1 (Pfk1) exhibited significantly reduced survival within murine macrophages and attenuated virulence in a murine model of systemic candidiasis. Overall, our work elucidates a previously uncharacterized coupling between glycolysis and sulfur metabolism that is critical for driving fungal morphogenesis, contributing to our understanding of this conserved phenomenon.

microbiology↗