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Johnston, E. A.

Publications and source records attributed to Johnston, E. A..

2 recordsLinked to original sources

Toxoplasma gondii GRA66 prevents premature egress driven by the host phospholipase RARRES3, independently of RNF213

Toxoplasma gondii replicates inside a host-derived parasitophorous vacuole (PV), and interferon-gamma (IFN{gamma}) induces host restriction factors that target this compartment. Previous CRISPR screens identified the dense granule protein GRA66 and the GRA57/GRA70/GRA71 complex as required for parasite fitness in IFN{gamma}-stimulated human cells, but the host pathways they oppose were unknown. Here, we show that GRA66, a PV membrane (PVM)-associated protein predicted to be an N-acylphosphatidylethanolamine (NAPE)-hydrolyzing phospholipase D, is required to prevent premature egress driven by the host phospholipase and acyltransferase RARRES3. Loss of GRA66 caused premature parasite egress, host cell death, and impaired replication in human cells. These phenotypes persisted in cells lacking RNF213, the E3 ubiquitin ligase that dominates IFN{gamma}-dependent Toxoplasma restriction in human cells, and{Delta} gra66 vacuoles recruited less RNF213 and ubiquitin than wild type, indicating an RNF213-independent mechanism rather than an exaggerated RNF213 response. Complementation with a catalytic-site mutant of the GRA66 zinc-binding motif failed to restore any of these phenotypes, indicating a requirement for its predicted enzymatic activity. Deleting RARRES3 rescued the premature egress of {Delta}gra66 and catalytic-mutant parasites but not of{Delta} gra70 parasites, whereas the replication defect persisted, revealing a second, RARRES3-independent consequence of GRA66 loss. RARRES3 was recruited to the PVM and intravacuolar network after IFN{gamma} stimulation, and structural modeling supported assignment of GRA66 to the NAPE-phospholipase D family with an intact di-zinc active site. These findings define a lipid-centered, RNF213-independent arm of human cell-autonomous immunity and identify the parasite effector required to withstand it.

microbiology↗

Intracellular pathogen targeting by IL32 elicits cell-autonomous immunity

Interferon-{gamma} safeguards humans against intracellular pathogens, yet how most interferon-stimulated genes protect host cells, and how human-adapted pathogens evade these defenses is unclear1,2. Here, we discover a potent immune surveillance and effector circuit executed by an intracellularly acting cytokine, IL32, that targets and restricts phylogenetically distinct vacuolar pathogens, including the bacterium Chlamydia and the microsporidian Encephalitozoon. Quantitative proteomics coupled to a tailored CRISPR screen, uncovered components of the cysteine/Arg N-degron pathway3 that modify IL32 through oxidation-dependent arginylation, thereby enabling the recruitment of the autophagy machinery to pathogen-containing vacuoles. A forward genetics screen in Chlamydia trachomatis, the leading cause of sexually transmitted bacterial infection, identified the secreted virulence factor IncS as an evasion factor that blocks IL32 targeting and shields this human pathogen from xenophagy. These findings establish an IL32-dependent intracellular sensing mechanism linking IFN{gamma} signaling to N-degron-mediated xenophagy, revealing a broadly relevant axis of human host-pathogen conflict.

immunology↗