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Plos Pathogens|September 19, 2019
Correction: Cryptococcus neoformans resists to drastic conditions by switching to viable but non-culturable cell phenotypeBenjamin Hommel, Aude Sturny-Leclère, Stevenn Volant, et al.
Clinical Infectious Diseases : an Official Publication of the Infectious Diseases Society of America|November 3, 2001
The impact of culture isolation of Aspergillus species: a hospital-based survey of aspergillosisJ R Perfect, G M Cox, J Y Lee, et al.
Mbio|February 6, 2014
The Cryptococcus neoformans transcriptome at the site of human meningitisYuan Chen, Dena L Toffaletti, Jennifer L Tenor, et al.
Proceedings of the National Academy of Sciences of the United States of America|July 31, 2024
Structures of trehalose-6-phosphate synthase, Tps1, from the fungal pathogen <i>Cryptococcus neoformans</i>: A target for antifungalsErica J Washington, Ye Zhou, Allen L Hsu, et al.
Journal of Fungi (Basel, Switzerland)|December 24, 2025
Vaccine-Mediated Protection of Mice Against African and Asian Clinical Strains of <i>Cryptococcus neoformans</i>Diana Carlson, Ruiying Wang, Zachary Hastings, et al.
European Journal of Clinical Microbiology & Infectious Diseases : Official Publication of the European Society of Clinical Microbiology|June 28, 2011
The impact of caspase-12 on susceptibility to candidemiaD C Rosentul, T S Plantinga, W K Scott, et al.
Molecular Microbiology|December 21, 2000
Extracellular phospholipase activity is a virulence factor for Cryptococcus neoformansG M Cox, H C McDade, S C Chen, et al.
Infection and Immunity|August 5, 2009
The trehalose synthesis pathway is an integral part of the virulence composite for Cryptococcus gattiiPopchai Ngamskulrungroj, Uwe Himmelreich, Julia A Breger, et al.
Fuel (London, England)|November 21, 2024
Solvent-pore interactions in the Eagle Ford shale formationVictoria H DiStefano, Joanna McFarlane, Andrew G Stack, et al.
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