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Semi-Quantitative Analysis of Peptidoglycan by Liquid Chromatography Mass Spectrometry and Bioinformatics
Published on: October 13, 2020
Structural characterization of muropeptides from Chlamydia trachomatis peptidoglycan by mass spectrometry resolves
Mathanraj Packiam1, Brian Weinrick2, William R Jacobs3
1Department of Microbiology and Immunology, F. Edward Hébert School of Medicine, Uniformed Services University of the Health Sciences, Bethesda, MD 20814;
Abstract:
The "chlamydial anomaly," first coined by James Moulder, describes the inability of researchers to detect or purify peptidoglycan (PG) from pathogenic Chlamydiae despite genetic and biochemical evidence and antibiotic susceptibility data that suggest its existence. We recently detected PG in Chlamydia trachomatis by a new metabolic cell wall labeling method, however efforts to purify PG from pathogenic Chlamydiae have remained unsuccessful. Pathogenic chlamydial species are known to activate nucleotide-binding oligomerization domain-containing protein 2 (NOD2) innate immune receptors by as yet uncharacterized ligands, which are presumed to be PG fragments (muramyl di- and tripeptides). We used the NOD2-dependent activation of NF-κB by C. trachomatis-infected cell lysates as a biomarker for the presence of PG fragments within specific lysate fractions. We designed a new method of muropeptide isolation consisting of a double filtration step coupled with reverse-phase HPLC fractionation of Chlamydia-infected HeLa cell lysates. Fractions that displayed NOD2 activity were analyzed by electrospray ionization mass spectrometry, confirming the presence of muramyl di- and tripeptides in Chlamydia-infected cell lysate fractions. Moreover, the mass spectrometry data of large muropeptide fragments provided evidence that transpeptidation and transglycosylation reactions occur in pathogenic Chlamydiae. These results reveal the composition of chlamydial PG and disprove the "glycanless peptidoglycan" hypothesis.
Insights
Researchers detected peptidoglycan (PG) fragments in pathogenic Chlamydiae using a novel isolation method. This finding resolves the "chlamydial anomaly" and confirms PG synthesis in these bacteria.
Area of Science:
- Microbiology
- Infectious Diseases
- Cell Biology
Background:
- The "chlamydial anomaly" refers to the difficulty in detecting peptidoglycan (PG) in pathogenic Chlamydiae, despite evidence suggesting its presence.
- Pathogenic Chlamydiae are known to activate the NOD2 innate immune receptor, presumably via PG fragments like muramyl di- and tripeptides.
- Previous attempts to isolate and purify PG from these bacteria have been unsuccessful.
Purpose of the Study:
- To confirm the presence of peptidoglycan (PG) fragments in pathogenic Chlamydiae.
- To develop a method for isolating and identifying PG fragments.
- To investigate PG synthesis pathways in Chlamydiae.
Main Methods:
- Utilized NOD2-dependent NF-κB activation as a biomarker for PG fragments in cell lysates.
- Developed a novel muropeptide isolation technique involving double filtration and reverse-phase HPLC.
- Analyzed fractions using electrospray ionization mass spectrometry (ESI-MS).
Main Results:
- Confirmed the presence of muramyl di- and tripeptides in Chlamydia-infected cell lysate fractions.
- Mass spectrometry data provided evidence of transpeptidation and transglycosylation reactions, indicating PG synthesis.
- Successfully isolated and identified PG fragments, disproving the "glycanless peptidoglycan" hypothesis.
Conclusions:
- Pathogenic Chlamydiae synthesize peptidoglycan (PG).
- The study provides direct evidence for PG fragments and synthesis in Chlamydiae.
- This research resolves the long-standing "chlamydial anomaly" regarding PG presence.
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