Combining FAIMS based glycoproteomics and DIA proteomics reveals widespread proteome alterations in response to glycosylation occupancy changes in Neisseria gonorrhoeae

Author:

Hadjineophytou Chris123,Loh Edmund23,Koomey Michael14,Scott Nichollas E.5ORCID

Affiliation:

1. Department of Biosciences Section for Genetics and Evolutionary Biology University of Oslo Oslo Norway

2. Department of Microbiology Tumor and Cell Biology Karolinska Institutet Solna Sweden

3. Clinical Microbiology BioClinicum Karolinska University Hospital Solna Sweden

4. Department of Biosciences Centre for Ecological and Evolutionary Synthesis University of Oslo Oslo Norway

5. Department of Microbiology and Immunology University of Melbourne at the Peter Doherty Institute for Infection and Immunity Melbourne Australia

Abstract

AbstractProtein glycosylation is increasingly recognized as a common protein modification across bacterial species. Within the Neisseria genus O‐linked protein glycosylation is conserved yet closely related Neisseria species express O‐oligosaccharyltransferases (PglOs) with distinct targeting activities. Within this work, we explore the targeting capacity of different PglOs using Field Asymmetric Waveform Ion Mobility Spectrometry (FAIMS) fractionation and Data‐Independent Acquisition (DIA) to allow the characterization of the impact of changes in glycosylation on the proteome of Neisseria gonorrhoeae. We demonstrate FAIMS expands the known glycoproteome of wild type N. gonorrhoeae MS11 and enables differences in glycosylation to be assessed across strains expressing different pglO allelic chimeras with unique substrate targeting activities. Combining glycoproteomic insights with DIA proteomics, we demonstrate that alterations within pglO alleles have widespread impacts on the proteome of N. gonorrhoeae. Examination of peptides known to be targeted by glycosylation using DIA analysis supports alterations in glycosylation occupancy occurs independently of changes in protein levels and that the occupancy of glycosylation is generally low on most glycoproteins. This work thus expands our understanding of the N. gonorrhoeae glycoproteome and the roles that pglO allelic variation may play in governing genus‐level protein glycosylation.

Funder

National Health and Medical Research Council

Norges Forskningsråd

Publisher

Wiley

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