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Updated: Jun 23, 2026

Lipid Exchange Assay in Living Cells
Published on: March 21, 2025
Lipid Flippase Mediated Membrane Asymmetry Governs Extracellular Vesicles Biogenesis and Host Interactions in
Abstract:
Cryptococcus neoformans is the leading cause of fungal meningitis in immunocompromised patients. Alveolar macrophages are the first line of defense against Cryptococcus infection. Our previous study showed that deletion of Cdc50, the regulatory subunit of P4-ATPase (lipid flippase) complex, results in increased phagocytosis and macrophage killing, and avirulence in animal models. However, how fungal flippase dysfunction modulates Cryptococcus -macrophage interaction remains unknown. Here we identify Cdc50 as a central determinant of membrane lipid homeostasis, extracellular vesicle (EV) biogenesis and macrophage responses in C. neoformans . Our whole cell lipidomic analysis revealed that loss of Cdc50 disrupted membrane lipid homeostasis leading to phospholipid enrichment in cdc50Δ mutant, and a reduction in fatty acid production accompanied by pronounced ultrastructural defects in membrane architecture. Loss of Cdc50 also induced a hyper-vesiculating phenotype, with cdc50Δ producing significantly more extracellular vesicles (EVs) than wild type H99 cells. Lipidomic profiling of cdc50Δ EVs revealed enrichment of phospholipids, including phosphatidylserine (PS), indicating active lipid sorting during vesicle biogenesis. Functional analysis showed that EVs from the wildtype H99 suppress phagocytosis whereas cdc50Δ EVs enhance phagocytosis, indicating a differential macrophage priming. Despite increased PS externalization in cdc50Δ cells and EVs, macrophage recognition and uptake occur independent of PS-mediated efferocytosis pathways, including PS receptor MertK. Following macrophage uptake, cdc50Δ were intrinsically vulnerable to macrophage killing due to rapid phagosome acidification. Together, we demonstrate that Cdc50 dependent lipid homeostasis regulates EV production, lipid composition, membrane architecture and drives the intracellular fate of C. neoformans .
Importance:
Cryptococcus neoformans is the leading cause of fungal meningitis in immunocompromised individuals. Understanding how this pathogen evades host immune mediated clearance is essential for developing new treatment strategies. Here, we demonstrated that Cdc50, the regulatory subunit of fungal lipid flippase complex, regulates membrane lipid homeostasis that governs extracellular vesicles (EV) biogenesis and macrophage immune responses. Loss of Cdc50 drives global membrane lipid remodeling, hyper-production of phospholipid enriched EVs that enhance macrophage phagocytosis, while the wild-type EV reduce macrophage phagocytosis. Contrary to the prevailing assumption that phosphatidylserine (PS) externalization on the fungal surfaces mimics the mammalian "eat-me signal", we show fungal PS does not engage canonical PS receptor MertK, revealing a fundamental difference between fungal and mammalian PS biology. Furthermore, cdc50 Δ cells are unable to resist phagosomal acidification, rendering them susceptible to macrophage killing. These findings establish how phospholipid homeostasis contributes to early host-pathogen interactions and serves as a compelling antifungal target in cryptococcosis.
Insights
Cryptococcus neoformans Cdc50 disruption alters lipid homeostasis, increasing extracellular vesicle production that enhances macrophage phagocytosis. These fungal cells are then more vulnerable to killing by macrophages due to rapid phagosome acidification.
Area of Science:
- Mycology and Immunology
- Host-Pathogen Interactions
- Fungal Pathogenesis
Background:
- Cryptococcus neoformans causes fungal meningitis in immunocompromised individuals.
- Alveolar macrophages are crucial for clearing Cryptococcus infections.
- Understanding immune evasion mechanisms is key to developing new treatments.
Purpose of the Study:
- To investigate the role of Cdc50, a regulatory subunit of the P4-ATPase lipid flippase complex, in Cryptococcus neoformans.
- To determine how Cdc50 dysfunction affects fungal lipid homeostasis, extracellular vesicle (EV) biogenesis, and macrophage interactions.
- To elucidate the mechanisms underlying Cryptococcus-macrophage interactions and identify potential antifungal targets.
Main Methods:
- Whole cell lipidomic analysis of wild-type and cdc50Δ Cryptococcus neoformans.
- Extracellular vesicle (EV) production and lipidomic profiling.
- Macrophage phagocytosis assays and assessment of intracellular killing.
- Analysis of phosphatidylserine (PS) externalization and PS receptor MertK engagement.
Main Results:
- Loss of Cdc50 disrupts membrane lipid homeostasis, leading to phospholipid enrichment and altered membrane architecture.
- cdc50Δ mutants exhibit hyper-vesiculation, producing more EVs with enriched phospholipids, including phosphatidylserine (PS).
- EVs from cdc50Δ mutants enhance macrophage phagocytosis, unlike wild-type EVs which suppress it.
- Fungal PS externalization does not engage the mammalian PS receptor MertK, indicating distinct biology.
- cdc50Δ cells are susceptible to macrophage killing due to rapid phagosome acidification.
Conclusions:
- Cdc50 is a critical regulator of lipid homeostasis, EV production, and membrane architecture in Cryptococcus neoformans.
- Dysfunctional Cdc50 leads to the production of immunomodulatory EVs that enhance phagocytosis.
- Fungal lipid homeostasis and EV production represent novel targets for antifungal therapies against cryptococcosis.
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