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- Chrissian, Christine3
- Stark, Ruth E3
- Camacho, Emma2
- Baker, Rosanna P1
- Bowen, Anthony1
- Cole, Robert N1
- Cordero, Radames JB1
- Cordero, Radamés JB1
- Crawford, Conor J1
- Gil, David1
- Guazzelli, Lorenzo1
- Kelly, John E1
- McCaffery, J Michael1
- O'Meally, Robert N1
- Oscarson, Stefan1
- Prados-Rosales, Rafael1
- Vij, Raghav1
- Wang, Hsin1
- Wear, Maggie P1
Keyword
- cell wall3
- melanin3
- solid-state NMR3
- Cryptococcus neoformans2
- virulence factor2
- 3,4-Dihydroxy-L-phenylalanine1
- aminooxy fluorescent probes1
- basic unit1
- BCM1
- biopolymer1
- biosynthesis1
- brain catecholamine mixture1
- capsule1
- catecholamine1
- chemical biology1
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- cross-polarization magic-angle spinning1
- DA1
- EPR1
- L-DOPA1
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Microbiology
4 Results
- Research ArticleOpen Access
Cryptococcus neoformans melanization incorporates multiple catecholamines to produce polytypic melanin
Journal of Biological ChemistryVol. 298Issue 1101519Published online: December 20, 2021- Rosanna P. Baker
- Christine Chrissian
- Ruth E. Stark
- Arturo Casadevall
Cited in Scopus: 3Melanin is a major virulence factor in pathogenic fungi that enhances the ability of fungal cells to resist immune clearance. Cryptococcus neoformans is an important human pathogenic fungus that synthesizes melanin from exogenous tissue catecholamine precursors during infection, but the type of melanin made in cryptococcal meningoencephalitis is unknown. We analyzed the efficacy of various catecholamines found in brain tissue in supporting melanization using animal brain tissue and synthetic catecholamine mixtures reflecting brain tissue proportions. - Molecular BiophysicsOpen Access
Solid-state NMR spectroscopy identifies three classes of lipids in Cryptococcus neoformans melanized cell walls and whole fungal cells
Journal of Biological ChemistryVol. 295Issue 44p15083–15096Published online: August 28, 2020- Christine Chrissian
- Emma Camacho
- John E. Kelly
- Hsin Wang
- Arturo Casadevall
- Ruth E. Stark
Cited in Scopus: 13A primary virulence-associated trait of the opportunistic fungal pathogen Cryptococcus neoformans is the production of melanin pigments that are deposited into the cell wall and interfere with the host immune response. Previously, our solid-state NMR studies of isolated melanized cell walls (melanin “ghosts”) revealed that the pigments are strongly associated with lipids, but their identities, origins, and potential roles were undetermined. Herein, we exploited spectral editing techniques to identify and quantify the lipid molecules associated with pigments in melanin ghosts. - MicrobiologyOpen Access
Exploring Cryptococcus neoformans capsule structure and assembly with a hydroxylamine-armed fluorescent probe
Journal of Biological ChemistryVol. 295Issue 13p4327–4340Published online: January 31, 2020- Conor J. Crawford
- Radamés J.B. Cordero
- Lorenzo Guazzelli
- Maggie P. Wear
- Anthony Bowen
- Stefan Oscarson
- and others
Cited in Scopus: 7Chemical biology is an emerging field that enables the study and manipulation of biological systems with probes whose reactivities provide structural insights. The opportunistic fungal pathogen Cryptococcus neoformans possesses a polysaccharide capsule that is a major virulence factor, but is challenging to study. We report here the synthesis of a hydroxylamine-armed fluorescent probe that reacts with reducing glycans and its application to study the architecture of the C. neoformans capsule under a variety of conditions. - MicrobiologyOpen Access
The structural unit of melanin in the cell wall of the fungal pathogen Cryptococcus neoformans
Journal of Biological ChemistryVol. 294Issue 27p10471–10489Published online: May 22, 2019- Emma Camacho
- Raghav Vij
- Christine Chrissian
- Rafael Prados-Rosales
- David Gil
- Robert N. O’Meally
- and others
Cited in Scopus: 47Melanins are synthesized macromolecules that are found in all biological kingdoms. These pigments have a myriad of roles that range from microbial virulence to key components of the innate immune response in invertebrates. Melanins also exhibit unique properties with potential applications in physics and material sciences, ranging from electrical batteries to novel therapeutics. In the fungi, melanins, such as eumelanins, are components of the cell wall that provide protection against biotic and abiotic elements.