Altered linkage pattern of N-glycan sialic acids in pseudomyxoma peritonei

Pirjo Nummela1, Annamari Heiskanen2, Soili Kytölä3

  • 1Applied Tumor Genomics Research Program, Research Programs Unit, Faculty of Medicine, University of Helsinki, Haartmaninkatu 8, FI-00290, Helsinki, Finland.

Glycobiology
|February 4, 2021
PubMed

Insights

Glycosylation changes in pseudomyxoma peritonei (PMP) involve altered sialic acid linkages. Specifically, PMP shows increased alpha2,6-sialylation and decreased alpha2,3-sialylation, impacting disease progression.

Area of Science:

  • Biochemistry
  • Oncology
  • Glycomics

Background:

  • Pseudomyxoma peritonei (PMP) is a mucinous adenocarcinoma often originating from the appendix.
  • Altered glycosylation, including N-glycans, is a hallmark of malignancy.
  • Previous work showed increased fucosylation but not overall sialylation in PMP.

Purpose of the Study:

  • To investigate sialic acid linkage patterns (α2,3- vs. α2,6-) in normal appendices, low-grade appendiceal mucinous neoplasms (LAMN), and PMP (low-grade and high-grade).
  • To determine if specific sialylation patterns correlate with PMP progression from precursor lesions.

Main Methods:

  • Enzymatic release of acidic N-glycans from tissue specimens.
  • Treatment with ethyl esterification or α2,3-sialidase.
  • Analysis using MALDI-TOF mass spectrometry for linkage pattern determination.

Main Results:

  • PMP tumors exhibited a significant increase in α2,6-sialylated N-glycans and a decrease in α2,3-sialylated N-glycans compared to normal appendices.
  • Increased α2,6-sialylation and decreased α2,3-sialylation were observed in PMP, even when compared to the precursor lesion LAMN.
  • Specific alterations were noted in afucosylated, monofucosylated, and multifucosylated N-glycans.

Conclusions:

  • Sialic acid linkage alterations, particularly increased α2,6-sialylation, are characteristic of PMP and its precursor lesions.
  • These glycosylation changes create ligands for Siglecs and selectins, potentially driving peritoneal dissemination and disease progression.
  • The findings highlight specific glycosylation changes as key events in PMP pathogenesis.

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