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Updated: Jun 23, 2026

Proteomic Analysis of Human Macrophage Polarization Under a Low Oxygen Environment
Published on: January 7, 2019
Hypoxia increases macrophage motility, possibly by decreasing the heparan sulfate proteoglycan biosynthesis
Annika Asplund1, Gunnel Ostergren-Lundén, Germán Camejo
1Wallenberg Laboratory for Cardiovascular Research, Sahlgrenska Academy at Göteborg University, Göteborg, Sweden.
Abstract:
Macrophages are recruited and retained in hypoxic sites in atherosclerotic lesions and tumors. Furthermore, macrophages are suggested to be a major source of HSPG synthesis in atherosclerotic lesions. HSPG are, among other things, known to regulate cell motility, cell adhesion, and receptor interaction. The aim of this study was to investigate the effect of hypoxia on HSPG expression and macrophage motility. We also explored the potential regulation of HSPG by the transcription factor HIF-1alpha. The nondirected cell motility was increased in HMDM after 24 h exposure to hypoxia (0.5% O(2)) compared with normal cell culture condition (21% O(2)). Enzymatic degradation of HS GAG further increased the motility of the HMDM in hypoxia, indicating a role of reduced cell-associated HSPG in the increased HMDM motility. HMDM exposed to 24 h of hypoxia had lower mRNA expressions of syndecan-1 and -4 compared with cells exposed to normal cell culture conditions. Protein levels of syndecan-1 were also decreased significantly in response to hypoxia, and cells subjected to hypoxia had lower mRNA expression for key enzymes involved in HS biosynthesis. In addition, hypoxia was found to reduce the relative content of HS GAG. Transfecting THP-1 cells with siHIF-1alpha indicated that this transcription factor was not involved in the hypoxia-induced modifications of HSPG expression. Given the documented multiple functions of HSPG in macrophage behavior, the hypoxia-induced modifications of HSPG may be of relevance for the development of atherosclerotic lesions and tumor progression.
Insights
Hypoxia increases macrophage motility by reducing cell-associated heparan sulfate proteoglycans (HSPG). This study found hypoxia alters HSPG expression, impacting macrophage behavior in diseases like atherosclerosis and cancer.
Area of Science:
- Cell Biology
- Biochemistry
- Pathophysiology
Background:
- Macrophages accumulate in hypoxic environments within atherosclerotic lesions and tumors.
- Macrophages are a significant source of heparan sulfate proteoglycans (HSPG) in atherosclerosis.
- HSPG play crucial roles in regulating cell motility, adhesion, and receptor interactions.
Purpose of the Study:
- To investigate the impact of hypoxia on HSPG expression and macrophage motility.
- To explore the potential regulation of HSPG by the transcription factor HIF-1alpha.
Main Methods:
- Human monocyte-derived macrophages (HMDM) were exposed to hypoxic conditions (0.5% O2) for 24 hours.
- Enzymatic degradation of HS GAG was performed to assess its role in motility.
- mRNA and protein levels of syndecans and enzymes involved in HS biosynthesis were analyzed.
- THP-1 cells were transfected with siHIF-1alpha to evaluate HIF-1alpha's role.
Main Results:
- Hypoxia significantly increased nondirected motility of HMDM.
- Degradation of HS GAG further enhanced motility in hypoxic conditions, suggesting reduced HSPG.
- Hypoxia led to decreased mRNA expression of syndecan-1 and -4, and reduced protein levels of syndecan-1.
- Hypoxia lowered mRNA expression for key HS biosynthesis enzymes and reduced overall HS GAG content.
- HIF-1alpha was not involved in hypoxia-induced HSPG modifications.
Conclusions:
- Hypoxia alters HSPG expression and enhances macrophage motility, potentially through reduced cell-associated HSPG.
- These hypoxia-induced changes in macrophage HSPG may influence the progression of atherosclerotic lesions and tumors.
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