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Published on: March 25, 2020
Cyclodextrin reduces cholesterol crystal uptake by circulating monocytes in patients undergoing coronary angiography
Nikola Lübbering1, Alexander Krogmann1, Felix Jansen1
1Medizinische Klinik und Poliklinik II, Herzzentrum, Universitätsklinikum Bonn, Bonn, Germany.
Insights
Cyclodextrin (CD) pretreatment significantly reduced cholesterol crystal (CC) uptake in human monocytes, suggesting a novel therapeutic approach for atherosclerosis. However, patient response to CD varied, particularly in those with higher systemic inflammation or coronary artery disease (CAD).
Area of Science:
- Cardiovascular Research
- Immunology
- Pharmacology
Background:
- Atherosclerosis is a chronic inflammatory disease involving endothelial dysfunction, cholesterol accumulation, and immune cell activation.
- Cholesterol crystals (CC) promote atherosclerosis by activating the NLRP3 inflammasome in monocytes.
- Cyclodextrin (CD) has demonstrated atheroprotective effects in preclinical models by enhancing cholesterol metabolism and reducing inflammation.
Purpose of the Study:
- To investigate the effect of CD pretreatment on CC-uptake in human monocytes.
- To explore the influence of patient-specific factors on CD's efficacy in modulating CC-uptake.
Main Methods:
- Human peripheral mononuclear cells were isolated from 76 patients undergoing coronary angiography.
- Cells were stimulated with 2-Hydroxypropyl-γ-Cyclodextrin (CD) and cholesterol crystals (CC).
- CC-uptake by monocytes was quantified using flow cytometry.
Main Results:
- CC-uptake by monocytes varied significantly among patients (8-37%) and was lower in patients with elevated leukocytes and diabetes.
- CD pretreatment markedly reduced CC-uptake (from 20.1% to 15.0%, p < 0.0001).
- Patient response to CD varied; individuals with coronary artery disease (CAD), higher leukocyte counts, or requiring percutaneous coronary intervention (PCI) showed a less pronounced reduction in CC-uptake, indicating attenuated CD efficacy in heightened systemic inflammation.
Conclusions:
- CD significantly inhibits CC-phagocytosis by human monocytes, supporting its potential atheroprotective role.
- Individual patient response to CD varies, with systemic inflammation and CAD influencing its efficacy.
- Findings suggest CD's utility in assessing cardiovascular risk and monitoring CD-based therapies in humans.
Background:
Atherosclerosis is a chronic inflammatory disease driven by endothelial dysfunction, cholesterol accumulation, and immune activation leading to thrombosis and vascular stenosis. While LDL-lowering therapies are firmly established, targeting the underlying inflammation is still an emerging strategy. Cholesterol crystals (CC) contribute to inflammation by activating the NLRP3 inflammasome in monocytes and promoting disease progression. Cyclodextrin (CD), an FDA-approved drug carrier, has shown atheroprotective effects by enhancing cholesterol metabolism and reducing inflammation in preclinical models. This study investigated whether CC-uptake in human monocytes, a prerequisite for inflammasome activation, is also influenced by CD pretreatment.
Methods:
Human peripheral mononuclear cells were isolated from whole blood samples provided by 76 patients undergoing coronary angiography at the University Hospital Bonn between November 2017 and February 2018. After separation, peripheral mononuclear cells were stimulated with 2-Hydroxypropyl-γ-Cyclodextrin and CC. CC-uptake by monocytes was analyzed using flow cytometry.
Results:
CC-uptake by monocytes varied greatly between patients (8-37%), with lower uptake observed in patients with elevated leukocytes (p = 0.0058) and diabetes mellitus (p = 0.0448). CD-pretreatment significantly reduced CC-uptake (20.1% ± 0.8% vs. 15.0% ± 0.6%, p < 0.0001). Interindividual variability in CD response (CCΔCD) was noted; 40 patients exhibited a significant reduction in CC-uptake, while nine showed an increase. Patients with coronary artery disease (CAD) (p = 0.0316), requirement for percutaneous coronary intervention (PCI) (p = 0.0030), and elevated leucocyte levels (p = 0.0135) had lower CCΔCD, suggesting a link between systemic inflammation and attenuated CD efficacy.
Conclusion:
We demonstrated that CD significantly reduced CC-uptake in patients undergoing coronary angiography, which supports its role in inhibiting CC-phagocytosis and promoting cholesterol efflux. Interestingly, patient response to CD varied, with those exhibiting greater systemic inflammation or CAD showing a less pronounced reduction in CC-uptake. Our findings provide insight into the atheroprotective mechanisms of CD and suggest its potential utility in evaluating individual cardiovascular risk and monitoring CD-based therapeutic interventions in humans.
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