Related Experiment Video
Updated: Dec 25, 2025

Screening Assays to Characterize Novel Endothelial Regulators Involved in the Inflammatory Response
Published on: September 15, 2017
Assessment of ICAM-1 N-glycoforms in mouse and human models of endothelial dysfunction
Kellie Regal-McDonald1,2, Maheshika Somarathna3, Timmy Lee3
1Department of Pathology, University of Alabama at Birmingham, Birmingham, Alabama, United States of America.
Insights
Hypoglycosylated intercellular adhesion molecule-1 (ICAM-1) N-glycoforms are present in vivo during vascular disease. These high mannose (HM)-ICAM-1 forms associate with increased macrophage burden and may play a role in disease progression.
Area of Science:
- Biochemistry
- Immunology
- Vascular Biology
Background:
- Endothelial dysfunction involves increased expression of adhesion molecules like intercellular adhesion molecule-1 (ICAM-1).
- ICAM-1 is N-glycosylated, with complex N-glycoforms typically assumed to be dominant on the cell surface.
- Recent studies suggest hypoglycosylated or high mannose (HM)-ICAM-1 N-glycoforms are also expressed and may have distinct functional roles in endothelial dysfunction.
Purpose of the Study:
- To investigate the in vivo expression of different ICAM-1 N-glycoforms during disease states.
- To determine the presence and relative abundance of high mannose, hybrid, and complex α-2,6-sialylated ICAM-1 N-glycoforms in atherosclerosis and hemodialysis patients.
Main Methods:
- Utilized proximity ligation assay to assess ICAM-1 N-glycoforms.
- Analyzed human and mouse models of atherosclerosis.
- Examined arteriovenous fistulas (AVFs) from hemodialysis patients with successful and failed maturation.
Main Results:
- ICAM-1 harboring high mannose (HM) or hybrid epitopes, and α-2,6-sialylated epitopes were detected in human and mouse atherosclerotic lesions.
- HM-ICAM-1 positively correlated with increased macrophage burden (CD68 staining) in lesions.
- Both HM- and α-2,6-sialylated ICAM-1 N-glycoforms were found in AVFs of hemodialysis patients, with presence in cases of AVF maturation failure.
Conclusions:
- This study provides evidence for the in vivo presence of HM-ICAM-1 N-glycoforms in vascular disease.
- HM-ICAM-1 N-glycoforms are expressed at levels comparable to complex α-2,6-sialylated ICAM-1.
- Further research is needed to elucidate the specific roles of HM-ICAM-1 N-glycoforms in modulating vascular inflammation.
Abstract:
Endothelial dysfunction is a critical event in vascular inflammation characterized, in part, by elevated surface expression of adhesion molecules such as intercellular adhesion molecule-1 (ICAM-1). ICAM-1 is heavily N-glycosylated, and like other surface proteins, it is largely presumed that fully processed, complex N-glycoforms are dominant. However, our recent studies suggest that hypoglycosylated or high mannose (HM)-ICAM-1 N-glycoforms are also expressed on the cell surface during endothelial dysfunction, and have higher affinity for monocyte adhesion and regulate outside-in endothelial signaling by different mechanisms. Whether different ICAM-1 N-glycoforms are expressed in vivo during disease is unknown. In this study, using the proximity ligation assay, we assessed the relative formation of high mannose, hybrid and complex α-2,6-sialyated N-glycoforms of ICAM-1 in human and mouse models of atherosclerosis, as well as in arteriovenous fistulas (AVF) of patients on hemodialysis. Our data demonstrates that ICAM-1 harboring HM or hybrid epitopes as well as ICAM-1 bearing α-2,6-sialylated epitopes are present in human and mouse atherosclerotic lesions. Further, HM-ICAM-1 positively associated with increased macrophage burden in lesions as assessed by CD68 staining, whereas α-2,6-sialylated ICAM-1 did not. Finally, both HM and α-2,6-sialylated ICAM-1 N-glycoforms were present in hemodialysis patients who had AVF maturation failure compared to successful AVF maturation. Collectively, these data provide evidence that HM- ICAM-1 N-glycoforms are present in vivo, and at levels similar to complex α-2,6-sialylated ICAM-1 underscoring the need to better understand their roles in modulating vascular inflammation.

