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Semi-Quantitative Analysis of Peptidoglycan by Liquid Chromatography Mass Spectrometry and Bioinformatics
Published on: October 13, 2020
Exploring the Impact of Amidation Status in Meso-Diaminopimelic-Acid-Containing Disaccharide Peptidoglycan Fragments
Yaquan Liang1, Christopher Adamson1, Shiliu Feng1
1School of Chemistry, Chemical Engineering and Biotechnology, Nanyang Technological University, Singapore 637371, Singapore.
Abstract:
Bacterial peptidoglycan, the essential cell surface polymer that protects bacterial integrity, also serves as the molecular pattern recognized by the host's innate immune system. Although the minimal motifs of bacterial peptidoglycan fragments (PGNs) that activate mammalian NOD1 and NOD2 sensors are well-known and often represented by small canonical ligands, the immunostimulatory effects of natural PGNs, which are structurally more complex and potentially can simultaneously activate both the NOD1 and NOD2 signaling pathways in hosts, have not been comprehensively investigated. In particular, many bacteria incorporate additional structural modifications in peptidoglycans to evade host immune surveillance, resulting in diverse structural variations among natural PGNs that may influence their biological effects in hosts. The focus of this study is on the amidation status of γ-d-glutamic acid and meso-diaminopimelic acid (mDAP) at the second and third positions of stem peptides in peptidoglycan, which represent key structural features that vary across different bacterial species. With four synthetic mDAP-containing disaccharide PGNs of different amidation states, we systematically investigated their structure-activity relationship in stimulating host innate immune responses in vitro. Our findings revealed that the amidation of disaccharide PGNs has distinct effects on NOD1 and NOD2 induction, along with their differential immunostimulatory activities in macrophage cells. Additionally, we found that, like the canonical NOD2 ligand, natural PGNs confer immune tolerance to LPS, and amidation states do not affect this outcome. Overall, our work highlights the potential immunological implications of these differentially amidated mDAP-type disaccharide PGNs in host-microbe crosstalk.
Insights
Structural variations in bacterial peptidoglycan fragments (PGNs) impact innate immune responses. Amidation states of PGNs differentially affect NOD1 and NOD2 activation, influencing host-microbe interactions.
Area of Science:
- Immunology
- Microbiology
- Structural Biology
Background:
- Bacterial peptidoglycan (PGN) is crucial for bacterial integrity and recognized by host innate immunity via NOD1 and NOD2 sensors.
- While canonical PGN fragments are known NOD1/NOD2 activators, the immunostimulatory effects of complex natural PGNs remain under-investigated.
- Bacterial structural modifications in PGNs can influence host immune responses and immune evasion strategies.
Purpose of the Study:
- To investigate the structure-activity relationship of synthetic peptidoglycan fragments (PGNs) with varying amidation states.
- To determine the differential effects of PGN amidation on NOD1 and NOD2 signaling pathways.
- To explore the impact of PGN amidation on macrophage immunostimulatory activities and immune tolerance.
Main Methods:
- Synthesis of four distinct disaccharide PGNs containing meso-diaminopimelic acid (mDAP) with varied amidation states.
- In vitro assessment of PGN structure-activity relationships in stimulating host innate immune responses.
- Evaluation of PGN-induced NOD1 and NOD2 activation and immunostimulatory effects in macrophage cells.
Main Results:
- The amidation status of disaccharide PGNs significantly influences NOD1 and NOD2 induction.
- Differential immunostimulatory activities were observed in macrophage cells based on PGN amidation.
- Natural PGNs, similar to canonical NOD2 ligands, induce immune tolerance to LPS, irrespective of amidation states.
Conclusions:
- Differentially amidated mDAP-type disaccharide PGNs exhibit distinct immunomodulatory effects.
- PGN amidation plays a critical role in modulating innate immune responses via NOD1 and NOD2 signaling.
- These findings underscore the immunological significance of PGN structural variations in host-microbe crosstalk.

