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Small-Scale Plasma Membrane Preparation for the Analysis of Candida albicans Cdr1-mGFPHis
Published on: June 13, 2021
Candida albicans serotype B strains synthesize a serotype-specific phospholipomannan overexpressing a beta-1,2-linked
Pierre-André Trinel1, Florence Delplace, Emmanuel Maes
1Inserm E0360, Physiopathologie des Candidoses, Faculté de Médecine, Pôle Recherche, 59037, Lille Cedex, France.
Abstract:
Candida albicans strains consist of serotypes A and B depending on the presence of terminal beta-1,2-linked mannose residues in the acid-stable part of serotype A phosphopeptidomannan (PPM). The distribution of C. albicans serotypes varies according to country and human host genetic and infectious backgrounds. However, these epidemiological traits have not yet been related to a phenotypically stable molecule as cell surface expression of the serotype A epitope depends on the growth conditions. We have shown that C. albicans serotype A associates beta-mannose residues with another molecule, phospholipomannan (PLM), which is a member of the mannoseinositolphosphoceramide family. In this study, PLM from serotype B strains was analysed in order to provide structural bases for the differences in molecular mass and antigenicity observed between PLMs from both serotypes. Through these analyses, carbon 10 was shown to be the location of a second hydroxylation of fatty acids previously unknown in fungal sphingolipids. Minor differences observed in the ceramide moiety appeared to be strain-dependent. More constant features of PLM from serotype B strains were the incorporation of greater amounts of phytosphingosine C20, a twofold reduced glycosylation of PLM and overexpression of a beta-1,2 mannotriose, the epitope of protective antibodies. This specific beta-mannosylation was observed even when growth conditions altered serotype A PPM-specific epitopes, confirming the potential of PLM as a phenotypically stable molecule for serotyping. This study also suggests that the regulation of beta-mannosyltransferases, which define specific immunomodulatory adhesins whose activity depends on the mannosyl chain length, are part of the genetic background that differentiates serotypes.
Insights
This study reveals phospholipomannan (PLM) as a stable molecule for Candida albicans serotyping. PLM structure in serotype B strains shows unique features, differentiating them from serotype A strains.
Area of Science:
- Mycology
- Immunology
- Biochemistry
Background:
- Candida albicans serotypes A and B are defined by mannose residues in phosphopeptidomannan (PPM).
- Serotype distribution varies geographically and with host factors.
- Cell surface epitope expression is condition-dependent, limiting PPM's use in stable serotyping.
Purpose of the Study:
- To structurally analyze phospholipomannan (PLM) from serotype B strains.
- To identify stable molecular differences between serotype A and B PLM.
- To assess PLM's potential as a stable serotyping marker.
Main Methods:
- Structural analysis of PLM from C. albicans serotype B.
- Fatty acid and ceramide moiety analysis.
- Glycosylation and phytosphingosine content determination.
Main Results:
- Identified a novel C10 fatty acid hydroxylation in fungal sphingolipids.
- Observed strain-dependent variations in the ceramide moiety.
- Serotype B PLM showed increased phytosphingosine C20, reduced glycosylation, and a specific beta-1,2 mannotriose epitope.
Conclusions:
- PLM exhibits stable structural features, particularly beta-mannosylation, suitable for Candida albicans serotyping.
- Differences in PLM structure, including beta-mannosyltransferase regulation, contribute to serotype differentiation.
- PLM represents a promising stable marker for epidemiological studies of C. albicans.
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