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Published on: October 17, 2017
Glycocalyx Disruption Triggers Human Monocyte Activation in Acute Heart Failure Syndromes
Olga G Grushko1,2, Steven Cho1,2, Ashley M Tate1,2
1Division of Cardiovascular Medicine, Department of Internal Medicine, University of Michigan, Ann Arbor, MI, USA.
Insights
In acute heart failure (AHF), elevated heparan sulfate (HS) correlates with monocyte activation. Glycocalyx remodeling on monocytes amplifies inflammation, contributing to AHF pathogenesis.
Area of Science:
- Cardiovascular Biology
- Immunology
- Cellular Physiology
Background:
- Acute heart failure (AHF) is characterized by increased inflammation and vascular dysfunction.
- The glycocalyx (GAC), a cell-surface sugar layer, plays roles in vascular responses, but its regulation of immune cell function is less understood.
- Mechanisms integrating inflammation and vascular dysfunction in AHF are largely unknown.
Purpose of the Study:
- To investigate if GAC degradation products are elevated in AHF patients.
- To determine the relationship between GAC degradation products and inflammatory mediators.
- To examine if the monocyte GAC (mGAC) modulates monocyte activation.
Main Methods:
- ELISAs were used to profile inflammatory markers and GAC degradation products.
- Flow cytometry assessed the mGAC.
- RNA-sequencing (RNA-seq) elucidated the role of mGAC in inflammatory activation.
Main Results:
- Heparan sulfate (HS), a GAC degradation product, was elevated in AHF patients compared to controls.
- HS levels correlated significantly with soluble CD14, a marker of monocyte activation.
- Monocyte activation via Toll-like receptor (TLR) signaling led to mGAC remodeling and decreased mGAC levels.
- Enzymatic removal of HS and mGAC disruption triggered monocyte activation and amplified inflammatory responses, including increased IL6, CCL3, and tissue factor (F3) transcription.
Conclusions:
- The monocyte glycocalyx (mGAC) undergoes dynamic remodeling during monocyte activation.
- mGAC remodeling may contribute to the heightened inflammatory state observed in acute heart failure (AHF).
Purpose:
Acute heart failure (AHF) syndromes manifest increased inflammation and vascular dysfunction; however, mechanisms that integrate the two in AHF remain largely unknown. The glycocalyx (GAC) is a sugar-based shell that envelops all mammalian cells. Much GAC research has focused on its role in vascular responses, with comparatively little known about how the GAC regulates immune cell function.
Methods:
In this study, we sought to determine if GAC degradation products are elevated in AHF patients, how these degradation products relate to circulating inflammatory mediators, and whether the monocyte GAC (mGAC) itself modulates monocyte activation. Inflammatory markers and GAC degradation products were profiled using ELISAs. Flow cytometry was used to assess the mGAC and RNA-seq was employed to understand the role of the mGAC in regulating inflammatory activation programs.
Results:
In a cohort of hospitalized AHF patients (n = 17), we found that (1) the GAC degradation product heparan sulfate (HS) was elevated compared with age-matched controls (4396 and 2903 ng/mL; p = 0.01) and that (2) HS and soluble CD14 (a marker of monocyte activation) levels were closely related (Pearson's r = 0.65; p = 0.002). Mechanistically, Toll-like receptor (TLR) activation of human monocytes results in GAC remodeling and a decrease in the mGAC (71% compared with no treatment; p = 0.0007). Additionally, we found that ex vivo enzymatic removal of HS and disruption of the mGAC triggers human monocyte activation and amplifies monocyte inflammatory responses. Specifically, using RNA-seq, we found that enzymatic degradation of the mGAC increases transcription of inflammatory (IL6, CCL3) and vascular (tissue factor/F3) mediators.
Conclusion:
These studies indicate that the mGAC is dynamically remodeled during monocyte activation and that mGAC remodeling itself may contribute to the heightened inflammation associated with AHF.
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