Protein kinase A signaling regulates immune evasion by shaving and concealing fungal β-1,3-glucan.

Rhys A Farrer, Olga A Nev, Oleg A Nev, Gordon D Brown, Hugo A van den Berg, Neil A R Gow, Alistair J P Brown, Mihai G Netea, Arnab Pradhan, Ian Leaves, Qinxi Ma, Gillian Milne, Grace Patterson, Lars P Erwig

Journal: Proceedings of the National Academy of Sciences of the United States of America 2025;122(24):e2423864122

PMID: 40489619

Abstract

Fungal pathogens infect billions and kill millions of people each year. Many of these pathogens have evolved strategies to evade our antifungal immune defenses. for example, masks the proinflammatory pathogen-associated molecular pattern (PAMP) β-1,3-glucan, in response to specific host signals such as lactate. In , most β-1,3-glucan lies in the inner cell wall shielded, by the outer mannan layer, from recognition by certain immune cells such as macrophages. β-1,3-glucan that becomes exposed at the cell surface can be shaved off by secreted enzymes. By integrating mathematical modeling with experimentation, we show that the dynamics of this shaving, together with the dynamics of β-1,3-glucan exposure during growth, can account for a range of β-1,3-glucan masking phenotypes. The mathematical model accurately simulates the dynamics of β-1,3-glucan exposure during growth and predicts levels of β-1,3-glucan shaving under a variety of conditions, revealing how subtle differences in growth contribute to observed variabilities in lactate-induced β-1,3-glucan masking. For example, clinical isolates previously thought to display minimal lactate-induced masking are shown to mask robustly. Using a range of mutants, we confirm the importance of Gpr1/Gpa2-protein kinase A signaling for lactate-induced β-1,3-glucan shaving and define the contributions of the Xog1 and Eng1 glucanases to this shaving. Furthermore, examination of a shielding-defective x6 mutant confirms that both β-1,3-glucan shaving and shielding contribute to the dynamism of β-1,3-glucan masking at the fungal cell surface. Dynamism in PAMP masking is likely to be relevant to other fungal pathogens of humans.

Address: Medical Research Council Centre for Medical Mycology at the University of Exeter, Department of Biosciences, Faculty of Health and Life Sciences, Exeter EX4 4QD, United Kingdom.; Software Consultant, Belgrade, Serbia.; Microscopy and Histology Facility, Institute of Medical Sciences, University of Aberdeen, Aberdeen AB25 2ZD, United Kingdom.; Bioimaging Centre, Department of Biosciences, University of Exeter, Exeter EX4 4QD, United Kingdom.; Department of Internal Medicine and Radboud Center for Infectious Diseases, Radboud University Medical Center, Nijmegen 6525 GA, The Netherlands.; Department for Immunology and Metabolism, Life and Medical Sciences Institute, University of Bonn, Bonn 53115, Germany.; Cancer Research UK, London E20 1JQ, United Kingdom.; Mathematics Institute, University of Warwick, Coventry CV4 7AL, United Kingdom.
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