Sweet and Sour Ehrlichia: Glycoproteomics and Phosphoproteomics Reveal New Players in Ehrlichia ruminantium Physiology and Pathogenesis

Altres autors/es

Institut Català de la Salut

[Marcelino I] CIRAD, UMR ASTRE, Petit-Bourg, France. ASTRE, CIRAD, INRA, Université de Montpellier, Montpellier, France. Unitè TReD-Path (Transmission Rèservoirs et Diversitè des Pathogènes), Institut Pasteur de Guadeloupe, Les Abymes, France. [Colomé-Calls N, Canals F] Grup de Proteòmica, Vall d'Hebron Institut d'Oncologia, Barcelona, Spain. [Holzmuller P] ASTRE, CIRAD, INRA, Université de Montpellier, Montpellier, France. CIRAD, UMR ASTRE, Montpellier, France. [Lisacek F] Proteome Informatics, Swiss Institute of Bioinformatics, Geneva, Switzerland. Computer Science Department and Section of Biology, University of Geneva, Geneva, Switzerland. [Reynaud Y] Unitè TReD-Path (Transmission Rèservoirs et Diversitè des Pathogènes), Institut Pasteur de Guadeloupe, Les Abymes, France.

Vall d'Hebron Barcelona Hospital Campus

Data de publicació

2019-05-24T09:58:40Z

2019-05-24T09:58:40Z

2019-03-15



Resum

Ehrlichia ruminantium; N-glycoproteins; O-GlcNAcylated proteins


Ehrlichia ruminantium; N-glicoproteïnes; Proteïnes O-GlcNAcilades


Ehrlichia ruminantium; N-glicoproteínas; Proteínas O-GlcNAciladas


Unraveling which proteins and post-translational modifications (PTMs) affect bacterial pathogenesis and physiology in diverse environments is a tough challenge. Herein, we used mass spectrometry-based assays to study protein phosphorylation and glycosylation in Ehrlichia ruminantium Gardel virulent (ERGvir) and attenuated (ERGatt) variants and, how they can modulate Ehrlichia biological processes. The characterization of the S/T/Y phosphoproteome revealed that both strains share the same set of phosphoproteins (n = 58), 36% being overexpressed in ERGvir. The percentage of tyrosine phosphorylation is high (23%) and 66% of the identified peptides are multi-phosphorylated. Glycoproteomics revealed a high percentage of glycoproteins (67% in ERGvir) with a subset of glycoproteins being specific to ERGvir (n = 64/371) and ERGatt (n = 36/343). These glycoproteins are involved in key biological processes such as protein, amino-acid and purine biosynthesis, translation, virulence, DNA repair, and replication. Label-free quantitative analysis revealed over-expression in 31 proteins in ERGvir and 8 in ERGatt. While further PNGase digestion confidently localized 2 and 5 N-glycoproteins in ERGvir and ERGatt, respectively, western blotting suggests that many glycoproteins are O-GlcNAcylated. Twenty-three proteins were detected in both the phospho- and glycoproteome, for the two variants. This work represents the first comprehensive assessment of PTMs on Ehrlichia biology, rising interesting questions regarding ER-host interactions. Phosphoproteome characterization demonstrates an increased versatility of ER phosphoproteins to participate in different mechanisms. The high number of glycoproteins and the lack of glycosyltransferases-coding genes highlight ER dependence on the host and/or vector cellular machinery for its own protein glycosylation. Moreover, these glycoproteins could be crucial to interact and respond to changes in ER environment. PTMs crosstalk between of O-GlcNAcylation and phosphorylation could be used as a major cellular signaling mechanism in ER. As little is known about the Ehrlichia proteins/proteome and its signaling biology, the results presented herein provide a useful resource for further hypothesis-driven exploration of Ehrlichia protein regulation by phosphorylation and glycosylation events. The mass spectrometry proteomics data have been deposited to the ProteomeXchange Consortium with the data set identifier PXD012589.

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Article


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Anglès

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Frontiers Media

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Attribution-NonCommercial-NoDerivatives 4.0 International

http://creativecommons.org/licenses/by-nc-nd/4.0/

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