Conceived and designed the experiments: GP JR WH FM JD DD. Performed the experiments: JR WH Bv EV Tv. Analyzed the data: GP JR WH AA. Contributed reagents/materials/analysis tools: WS GP FM JD JS DD. Wrote the paper: GP JR WH.
Caveolin-1 (Cav-1) is a regulatory protein of the arterial wall, but its role in human atherosclerosis remains unknown. We have studied the relationships between Cav-1 abundance, atherosclerotic plaque characteristics and clinical manisfestations of atherosclerotic disease.We determined Cav-1 expression by western blotting in atherosclerotic plaques harvested from 378 subjects that underwent carotid endarterectomy. Cav-1 levels were significantly lower in carotid plaques than non-atherosclerotic vascular specimens. Low Cav-1 expression was associated with features of plaque instability such as large lipid core, thrombus formation, macrophage infiltration, high IL-6, IL-8 levels and elevated MMP-9 activity. Clinically, a down-regulation of Cav-1 was observed in plaques obtained from men, patients with a history of myocardial infarction and restenotic lesions. Cav-1 levels above the median were associated with absence of new vascular events within 30 days after surgery [0% vs. 4%] and a trend towards lower incidence of new cardiovascular events during longer follow-up. Consistent with these clinical data, Cav-1 null mice revealed elevated intimal hyperplasia response following arterial injury that was significantly attenuated after MMP inhibition. Recombinant peptides mimicking Cav-1 scaffolding domain (Cavtratin) reduced gelatinase activity in cultured porcine arteries and impaired MMP-9 activity and COX-2 in LPS-challenged macrophages. Administration of Cavtratin strongly impaired flow-induced expansive remodeling in mice.This is the first study that identifies Cav-1 as a novel potential stabilizing factor in human atherosclerosis. Our findings support the hypothesis that local down-regulation of Cav-1 in atherosclerotic lesions contributes to plaque formation and/or instability accelerating the occurrence of adverse clinical outcomes. Therefore, given the large number of patients studied, we believe that Cav-1 may be considered as a novel target in the prevention of human atherosclerotic disease and the loss of Cav-1 may be a novel biomarker of vulnerable plaque with prognostic value.
Atherosclerotic plaque formation, destabilization and rupture with subsequent thrombus formation give rise to acute coronary syndromes
Cav-1 is the main coat protein of caveolae and is expressed by different vascular cells
Therefore, we determined Cav-1 expression in carotid atherosclerotic plaques from a cohort of 378 patients undergoing carotid endarterectomy obtained from the ATHERO-EXPRESS study. We hypothesized that plaque levels of Cav-1 might be related to plaque morphology, inflammation and matrix metalloprotease (MMP) activity. We also investigated if local Cav-1 expression levels in the carotid plaque were related to clinical characteristics. In addition, the design of the bio-bank study allowed the execution of a follow up with the objective to study the predictive value of local Cav-1 expression for the future development of cardiovascular adverse events and thus might help identifying patients at risk. Additionally, we hypothesized that potential associations of Cav-1 expression with adverse outcomes could be explained by an inhibitory effect on MMP activity in the atherosclerotic lesion. In order to address this hypothesis we further analyzed the effect of Cav-1 on intimal hyperplasia in Cav-1 null mice and whether an increased intimal hyperplasia response could be attenuated by MMP blockade. In addition, we studied the impact of Cav-1 scaffolding domain (CSD) on gelatinase activity, COX-2 expression and expansive arterial remodeling in vitro and in mice.
This clinical and pre- clinical data provides evidence supporting an important role for Cav-1, and its related peptides, in vascular pathologies such as intimal hyperplasia, expansive remodeling and human atherosclerotic plaque destabilization and rupture.
Athero-Express is an ongoing vascular bio-bank project with the goal to investigate locally expressed plaque markers in relation to clinical presentation and clinical outcome
After carotid surgery, patients were followed yearly up to 3 years (mean: 23 months). The primary outcome was defined as vascular event: the composite of vascular death, non-fatal myocardial infarction, non-fatal stroke, non-fatal rupture of an abdominal aortic aneurysm, and vascular surgical intervention, whichever occurred first. Additional outcomes were: 1) myocardial infarction (fatal and non-fatal) and coronary revascularization and 2) ischemic stroke. Definitions and assessment procedures of the outcome events were described previously
Carotid endarterectomy was performed by an open, non-eversion technique with careful dissection of the atherosclerotic plaque. Following excision, the plaque was immediately transferred to the laboratory to undergo standardized processing. First, it was divided into 5mm cross-sectional segments. The culprit lesion, defined as the segment with greatest plaque burden, was fixated in 4% formalin for 7 days and then decalcified in EDTA and embedded in paraffin. The other segments were snap frozen in liquid nitrogen and stored at −80°C. Protein extraction was performed on the carotid segments adjacent to the culprit lesion by mechanical crushing followed by 1) protein isolation with TriPure reagent, according to the manufacturer's protocol (Boehringer Mannheim, Germany) and 2) by dissolving in 40 mM Tris-HCl (pH = 7.5) at 4°C. Segments of macroscopically non-atherosclerotic mammary arteries (n = 9) obtained during coronary artery bypass surgery served as a non-diseased control.
All plaques were characterized as described earlier
Interleukin-6 and -8 (IL-6 and IL-8) concentrations were determined with a multiplex suspension array system according to the manufacturer's protocol (Bio-Rad Laboratories, Hercules, CA). MMP-2 and MMP-9 activities and Extracellular Matrix Metalloproteinase Inducer (EMMPRIN) levels were measured in a randomly selected subgroup of 128 patients. MMP-2 and MMP-9 activity measurements were performed with Biotrak activity assays RPN 2631 and RPN 2634, respectively (Amersham Biosciences, Buckinghamshire, UK). EMMPRIN expression levels were determined by Western blotting as described previously
Serial cross-sections (5 µm) from carotid endarterectomy specimens and mammary arteries were deparaffinized and rehydrated, boiled in sodium citrate and blocked in 10% normal goat serum. The sections were incubated for 1 hour at room temperature with 0.2 µg/ml polyclonal rabbit-anti human-Cav-1 antibody (610059, BD biosciences, Franklin Lakes, NJ), as determined by titration, followed by biotinylated goat-anti-rabbit antibody (Vector, Burlingame, CA) and horseradish peroxidase (HRP) labeled streptavidin (Vector). Staining was developed with AEC substrate with Mayer's haemotoxylin as counterstaining. Negative controls were obtained avoiding the primary antibody. Double labeling for Cav-1 and alpha-actin SMC (Sigma,St Louis) and CD34 (Dako, Denmark) were also performed.
Animals were housed conformed to the Guide for the care and use of Laboratory Animals (NIH publication No.85-23, 1985) and all experiments were approved by the ethical committee on animal experiments of the University Medical Center, Utrecht. BALB/c mice, Cav-1 null mice (Cav-1tm1Mls) and appropriate Wild type (WT) genetic background controls were purchased by the Jackson laboratories (Bar Harbor, MA).
A group of Cav-1 null mice were treated daily with doxycycline (DOX), an orally available MMP inhibitor, in drinking water at the dose of 30 mg/kg/day as used earlier
Synthetic peptides corresponding to scaffolding domain of human Caveolin-1 (residues 82–101) (Cavtratin) and scrambled version were prepared as previously reported
Gelatin zymography was performed as described previously
Internal mammary arteries were surgically harvested from 2 adult male pigs and sliced in approximately 0.5 cm rings. After washing with PBS, arterial rings were immediately frozen (0 days) and the remaining fragments were incubated overnight in presence or absence of Cavtratin or scrambled peptides in a serum-free D-MEM (Gibco) and after extensive washing were cultured in 5% FBS D-MEM for 3 days. Thereafter, samples were processed for gelatin and
Equal amounts of total protein were denaturized and subjected to a SDS-PAGE in 10% or 12% polyacrylamide gels. Proteins were transferred onto nitrocellulose membranes (Schleier & Schuell, Dasel, Germany) and correct transfer was checked by Ponceau Red S staining. The membranes were incubated with either polyclonal rabbit-anti-human Cav-1 antibody (0.1 µg/mL, BD biosciences, Franklin Lakes, NJ), polyclonal goat anti EMMPRIN (0.4 µg/mL , G-19 Santa Cruz, Biotechnology) or polyclonal rabbit anti murine COX-2 (0.5 µg/mL, Cayman Chemicals, Ann Arbor, Mi) followed by incubation with appropriate HRP conjugated secondary antibodies. Signal detection was performed by enhanced chemiluminescence (Sigma, Saint Louis, MO). For western blotting in CEA samples, a pooled sample of mammary arteries (n = 6) was loaded on each gel as a positive control. Accordingly, in every gel, expression levels of Cav-1 in pooled mammary arteries were considered as 100. Cav-1 expression levels in non-atherosclerotic mammary arteries (n = 3) and CEA samples were standardized and calculated as percentages relative to standard positive control.
Raw-264.7 murine macrophages were obtained from ATCC (Manassas, VA) and grown and propagated accordingly to manufacture's recommendations.
Comparison of Cav-1 expression levels between different artery types and different patient groups was done by Mann Whitney U tests. The Mann Whitney U test was also used to test the association between Cav-1 measurements and semi-quantitatively measured plaque characteristics, comparing no and minor staining to moderate and heavy staining. For survival analysis, Cav-1 levels were dichotomized at the median. The group with low Cav-1 expression levels (<median) was compared with the group high Cav-1 measurements (> = median) by Kaplan-Meier survival analysis. Cox Proportional Hazard analysis was used to compute Hazard ratios (HR) with 95% confidence intervals [CI] and to adjust for sex, gender and plaque overall phenotype. Data from animal, ex vivo and cultured cells were analyzed by Mann-Whitney U and ANOVA tests. P-values <0.05 were considered statistically significant.
Baseline characteristics of the patient population are depicted in
| n (%) | |
| patient number | 378 |
| age, years (sd) | 67.4 (8.8) |
| male | 258 (68%) |
| hypertension | 247 (70%) |
| diabetes | 70 (20%) |
| smoking | 88 (26%) |
| body mass index, kg/m2 (sd) | 26.7 (4.5) |
| total cholesterol, mmol/l | 5.0 (1.1) |
| HDL cholesterol, mmol/l | 1.2 (0.37) |
| LDL cholesterol, mmol/l | 3.0 (1.0) |
| triglycerides, mmol/l | 2.1 (1.1) |
| hs-CRP, mg/l (IQR) | 3.4 (1.6–6.9) |
| prior ipsilateral CEA | 12 (3%) |
| prior vascular intervention | 139 (35%) |
| history of myocardial infarction | 72 (20%) |
| carotid stenosis grade | |
| 50–64% | 12 (3%) |
| 65–89% | 133 (35%) |
| 90–99% | 232 (62%) |
| symptoms | |
| asymptomatic | 87 (23%) |
| ocular symptoms | 51 (14%) |
| TIA | 130 (35%) |
| stroke | 102 (28%) |
Cav-1 antibody was able to detect two bands with a relative molecular weight of 24KD and 22 KD demonstrating the presence of the two known isoforms of Cav-1 (α and β); (
A: representative Western Blot. “C” denotes control (pooled sample), “M” denotes mammary arteries, “CEA” denotes carotid plaques. Detection of Cav-1 α and β isoforms (22 and 24 KD; above) and β-actin (42 KD; below) are shown. B: Quantification of Cav-1protein levels in carotid artery vs. control mammary arteries (mean and SE). * p = 0.001. Note that β−actin and Cav-1 expression patterns differ completely, indicating the specificity of Cav-1 down-regulation in CEA samples.
By immunohistochemistry, we found that both mammary arteries and human atherosclerotic lesions expressed Cav-1 (
A, C: Cav-1 staining on carotid plaques (red, 200x magnification). B: Endothelial staining (CD34, brown) on a consecutive section of A showing co-localization of Cav-1 and endothelium. D: Alpha-actin smooth muscle cell staining (brown) on a consecutive section of C, showing co-localization of Cav-1 and smooth muscle cells. E: Double-staining of Cav-1(red) and CD34 (blue),( 200X magnification). F: Double staining of Cav-1 (blue) and Alpha-actin smooth muscle cell sataining (red) ( 200X magnification). G: Cav-1 staining on a mammary artery, showing staining throughout the intima, media and adventitia. (100x magnification). H: Negative control of Cav-1 staining in a consecutive section of G, avoiding the primary antibody. Sections were counterstained with haemotoxylin except the double-stained sections (E and F) .
We further examined the relationships between Cav-1 expression levels and different plaque characteristics. Plaques with an atheromatous phenotype showed lower Cav-1 expression levels compared with fibrous plaques (p<0.001;
| Cav-1 levels | p-value | ||||
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26.2 (11.7–53.3) | 25.0 (7.7–56.0) | 13.3 (4.5–32.9) | <0.001 | |
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24.0 (5.7–54.4) | 23.0 (10.3–51.2) | 20.0 (5.7–47.4) | 14.5 (3.6–30.7) | 0.04 |
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5.7 (2.3–27.4) | 11.9 (3.5–25.4) | 19.6 (6.4–45.7) | 34.4 (18.2–71.2) | <0.001 |
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15.6 (3.7–33.8) | 20.4 (6.7–47.9) | 26.1 (12.0–49.9) | 0.02 | |
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23.5 (5.9–50.1) | 18.4 (4.9–35.7) | 15.9 (7.4–41.2) | 26.2 (7.7–55.7) | 0.57 |
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30.1 (13.0–53.3) | 17.4 (5.7–46.0) | 14.6 (3.5–33.1) | 10.7 (2.5–27) | 0.005 |
The values given are the median Cav-1 levels and interquartile range in the respective staining group. P-values were calculated comparing Cav-1 expression levels between no and minor staining vs. moderate and heavy staining, and in case of overall phenotype: fibrous vs. atheromatous.
Next, we investigated the relationships between Cav-1 expression levels, local MMP activity, expression of the MMP-inducer CD147/EMMPRIN and the levels of pro-inflammatory cytokines (
A, B, C, D: MMP-2, -9 and IL-6,-8 vs. Cav-1 protein expression levels. E: EMMPRIN 45/58KD ratio vs. Cav-1 protein expression levels. F, G: Analysis of association between MMP-9 and Cav-1 levels in plaques with no or minor smooth muscle cell (SMC) staining vs. plaques with moderate or heavy smooth muscle cell staining. H, I: Analysis of association between MMP-9 and Cav-1 levels in plaques with no or minor macrophage (MO) staining vs. plaques with moderate or heavy macrophage staining. Cav-1 levels are given as mean and standard error. P-values were calculated comparing quartiles 1 and 2 to quartiles 3 and 4 with the Mann-Whitney U test. * denotes p<0.05.
Having established the inverse association between local low levels of Cav-1 and the characteristics of a local vulnerable plaque phenotype, we investigated if local Cav-1 expression levels were related to clinical presentation at baseline and the occurrence of adverse events due to progression of atherosclerotic disease during follow up. Symptomatic patients presenting with transient ischemic attack or stroke had lower Cav-1 levels than asymptomatic patients but this difference did not reach statistical significance (
| Clinical characteristics | prevalence (%) | Cav-1 levels | p-value | |
| + | - | |||
| age>70 | 43% | 18.0 (5.5–44.0) | 20.5 (6.7–49.6) | 0.29 |
| male | 68% | 15.8 (4.7–36.6) | 36.1 (15.5–62.4) | <0.001 |
| hypertension | 70% | 19.5 (5.2–45.9) | 22.3 (7.3–48.2) | 0.42 |
| diabetes | 20% | 17.6 (7.7–49.6) | 19.6 (5.5–45.6) | 0.90 |
| smoking | 26% | 18.6 (6.2–48.3) | 19.9 (5.4–46.0) | 0.92 |
| BMI >30 kg/m2 | 14% | 25.3 (5.5–50.2) | 20.0 (6.7–47.1) | 0.98 |
| total cholesterol > 5.0 mmol/l | 47% | 22.9 (6.1–49.5) | 19.8 (4.7–47.5) | 0.55 |
| HDL <1.2 mmol/l | 38% | 22.1 (4.9–50.2) | 20.1 (5.7–41.1) | 0.58 |
| LDL > 3.0 mmol/l | 40% | 20.3 (6.6–55.9) | 22.2 (4.8–44.9) | 0.90 |
| triglycerides > 2.0 mmol/l | 39% | 24.6 (6.2–25.6) | 19.4 (5.2–44.1) | 0.36 |
| hs-CRP > 3.4 mg/l | 49% | 20.0 (5.3–49.6) | 22.3 (5.2–49.5) | 0.94 |
| Restenotic lesion | 3% | 6.1 (0.7–28.1) | 19.7 (6.9–48.0) | 0.04 |
| History of myocardial infarction | 20% | 13.3 (3.2–40.7) | 20.5 (7.4–48.4) | 0.04 |
| History of angina pectoris | 35% | 17.2 (3.9–44.7) | 20.5 (7.7–48.4) | 0.21 |
| Intermittent claudication | 46% | 18.1 (4.5–46.2) | 20.5 (6.8–46.2) | 0.46 |
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| statin | 64% | 18.0 (4.6–46.0) | 22.9 (8.0–46.2) | 0.27 |
| aspirin | 84% | 18.9 (5.4–48.6) | 23.0 (10.2–45.7) | 0.55 |
| NSAID | 6% | 19.6 (9.8–53.7) | 19.4 (5.7–46.0) | 0.75 |
| ACE inhibitor | 43% | 17.1 (4.8–45.3) | 20.8 (7.2–49.3) | 0.20 |
| beta blocker | 45% | 19.8 (5.7–46.0) | 18.3 (5.9–46.7) | 0.62 |
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0.13 |
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| asymptomatic | 23% | 23.6 (8.2–53.0) | ||
| ocular symptoms | 14% | 27.1 (10.2–45.9) | ||
| TIA | 35% | 15.3 (4.4–45.2) | ||
| stroke | 28% | 17.1 (7.7–48.2) | ||
Median Cav-1 levels and interquartile range are given for patients in whom a clinical characteristic is present (+) or absent (−); e.g. age>70 (+) denotes the patient group older than 70 years.
TIA and stroke compared with asymptomatic
Total follow-up included 625 patient years (mean 23 months) and 13 patients were lost to follow-up (3%). In total, 92 outcome events occurred (
A - Caveolin-1 expression levels in the plaque in relation the occurrence of an adverse vascular event within 30 days follow-up. *: p = 0.03. B - Cumulative hazard of vascular events during long-term follow-up. The solid line corresponds to patients with Cav-1 levels smaller than the median, and the dashed line corresponds to patients with Cav-1 levels larger than or equal to the median. Hazard ratio = 0.77 [0.48–1.23] (high vs. low Caveolin-1 expression)
| follow-up interval | ||
| 30 days | total | |
| person-years of follow-up |
31 | 625 |
| vascular death | 2 | 16 |
| non-fatal ischemic stroke | 2 | 11 |
| non-fatal cerebral bleeding | 1 | 1 |
| non-fatal myocardial infarction | 1 | 7 |
| non-fatal ruptured aortic aneurysm | 0 | 0 |
| coronary revascularization | 2 | 15 |
| peripheral vascular intervention | 0 | 42 |
years of follow-up until occurrence of primary outcome event or end of follow-up period
We further extended the study on the associations between Cav-1 and MMP expressions by analyzing the contribution of gelatinase activity to intimal hyperplasia in Cav-1 null mice upon femoral artery injury using peri-adventitial cuffs.
Morphometric analysis revealed a significant increase in intimal area in Cav-1 null mice (WT = 1325±1069 µm2 vs Cav-1 null = 3627±1121 µm2 p = 0.003,
Total intimal area (A), medial area (B) and intima-media ratio (C) were quantified by image analysis using 6 serial sections in each cuffed artery. WT (n = 11) values are represented by circles, Cav-1 null (n = 10) are shown as squares and Cav-1 null+DOX (n = 9) are indicate as triangles, ** p<0.001.
Treatment with the MMP inhibitor doxycycline (DOX), significantly corrected the increased intimal hyperplasia response in Cav-1 null mice (Cav-1 null+DOX = 1975±620, Cav-1 null-DOX = 3627±1121 µm2 p<0.001,
To study if Cav-1 via its scaffolding domain (CSD) is involved in MMP regulation and the expression of pro-inflammatory mediators, we next evaluated the effect of cell-permeable synthetic peptides derived from the human CSD known as Cavtratin on gelatinolytic activity and cycloxygenase-2 (COX-2) expression in cultured murine Raw-264.7 macrophages. Peptides were efficiently taken up by the cells after 6 hours incubation (data not shown). Raw-264.7 cells were treated with 10 µM of Cavtratin or scrambled peptides for 24 hours and culture media was subjected to gelatin zymography. Cavtratin treatment significantly reduced MMP-9 levels (p = 0.02) after 24 hours of incubation (
A- Top, representative zymogram of culture supernatant from Raw-264.7 macrophages. 1×106 cells were incubated in a serum-free medium with Cavtratin or scrambled peptides (10 µM) for a period of 24 hours. Thereafter, culture media was collected and centrifuged for 5 minutes at 2000 rpm at 4C and subjected to gelatin zymography. Little or undetectable signal was observed for MMP-2. Middle, EMMPRIN expression levels in total cell lysates obtained from Raw-264.7 cells and representative western blot for β-actin (bottom panel). B- Quantification of MMP-9 lytic activity in the culture supernatant. * P = 0.02. C- Quantification of EMMPRIN expression levels. Data presented were normalized by β−actin expression.
To test if Cavtratin might prevent the MMP-9 activation and the induction of COX-2, Raw-264.7 cells were challenged with
A- Top, MMP-9 activity in the culture supernatant from Raw-264.7 macrophages. 1×106 cells were pre-incubated in a serum-free medium with Cavtratin or scrambled peptides (10 µM) for a period of 8 hours. Thereafter, LPS (10ng/mL) was added and the culture media was collected after 20 hours of LPS addition and centrifuged for 5 minutes at 2000 rpm at 4C and subjected to gelatin zymography. Middle top, representative western blot showing EMMPRIN expression in total cell lysates obtained from LPS-stimulated Raw-264.7 cells. Middle bottom, representative western blot for COX-2 expression in total cell lysates obtained from LPS-stimulated Raw-264.7 cells. Bottom panel, representative western blot showing β-actin expression. B- Quantification of MMP-9 lytic activity in the culture supernatant. * P<0.001. C- Quantification of EMMPRIN expression levels. Data presented were normalized by β−actin expression. D- Quantification of COX-2 expression levels. Data presented were normalized by β−actin expression. * P<0.001
In parallel, this inhibitory effect of Cavtratin on gelatinolytic activity was also evaluated in arterial rings from porcine mammary artery that were cultured for 3 days with and without Cavtratin or scrambled peptide (10 µM). Gelatin zymography showed a significant down-regulation of the total lytic activity corresponding to MMP-2 (p = 0.02) and MMP-9 levels (p = 0.01) between Cavtratin and scrambled peptide treated or non-treated arteries (
A- Representative zymogram of tissue homogenates from porcine arterial rings at baseline (0 days) and after 3 days in culture in the presence and/or absence of scrambled and Cavtratin peptides (10 µµ). Data represent 5 independent arterial rings., A representative western blot showing β-actin expression, demonstrating equal protein loading (bottom panel). B- Quantification of total MMP-2 (Pro and active MMP-2) in porcine arterial rings after 3 days in culture in the presence and/or absence of Cavtratin and scrambled (10 µµ). Data represent 5 different arterial rings. * p = 0.02 compared to untreated rings. C- Quantification of total MMP-9 in porcine arteries after 3 days in culture in the presence or absence of Cavtratin and scrambled (10 µM). Data represent 5 different arterial rings. * p = 0.01 compared to untreated rings. D- In situ zymography obtained from cutured rings. Gelatinolytic activity is shown in green. Scale bar = 100 µm. L = Lumen.
Since compelling evidence is pointing to arterial expansive remodeling as a major determinant of plaque vulnerability
Increase in EEL area (µm2) of the left carotid arteries (contralateral arteries) after ligation of the right carotid artery in BALB/c (n = 14) (circles), BALB/c+scrambled (1.5 mg/kg/day) (n = 6) (squares) and BALB/c+Cavtratin (1.5 mg/kg/day) (n = 6) (triangles). *p = 0.02
The present study identifies Cav-1 as a potential stabilizing factor in human atherosclerosis. Cav-1 levels were lower in atherosclerotic plaques compared to unaffected arteries and low Cav-1 levels were strongly associated with features of plaque vulnerability. Consistently, neo-intima formation after femoral cuff placement was increased in Cav-1 null mice, which could be reversed by addition of a MMP-inhibitor. Over-expression of the active domain of Cav-1 impaired inflammation, MMP-activity and arterial expansive remodeling. In addition to our descriptive clinical data, we show that patients with high plaque Cav-1 expression seem to be protected from cardiovascular events within 30 days after surgery, making Cav-1 the first available plaque biomarker with a prognostic value. The concept on local plaque markers that are predictive for adverse cardiovascular events that originate elsewhere in the vascular system is currently explored.
Several processes such as elevated proteolytic activity, inflammation, and expansive remodeling are directly related to plaque rupture
The existence of a positive relationship between Cav-1 and MMP-9 and the negative association with MMP-2 in the human specimens is supporting previous observations in which MMP-9 but not MMP-2 is associated with a stable plaque phenotype
Intracellular delivery of peptides that mimic Cav-1 scaffolding domain (CSD) (Cavtratin) in mouse macrophages and arterial rings impaired gelatinase activity. These results are in agreement with recently published data showing that Cav-1 inhibits MMP-2 activity in the heart and MMP-2 activity can be blocked using purified CSD
MMP-9 activity plays a major role in expansive remodeling in animal models
We focused on protease activity as a mechanism by which Cav-1 exerts protective effects that would explain the observed outcomes in the clinical and animal studies. Although our results strongly suggest that a mechanistic link exists between Cav-1 and protease activity, we cannot rule out that Cav-1 has broader anti-inflammatory properties. The lower amount of IL-6 and IL-8 found in plaques with high Cav-1 content indeed suggests the importance of Cav-1 in the regulation of pro-inflammatory cascades associated with atherosclerosis. We also showed that incubation with Cavtratin reduced COX-2 expression in LPS-stimulated macrophages. Likewise, over-expression of Cav-1 full length in macrophages was capable of reducing inflammation via a MAPK-dependent mechanism
The factors that are driving Cav-1 down-regulation during atherogenesis need further investigation. The clinical descriptive data obtained in this study may be helpful to generate hypothesis to answer these questions. Interestingly, we have found that women showed significantly higher Cav-1 expression levels than men. It is known that Cav-1 expression levels are up-regulated upon estrogen treatment in vascular smooth muscle cells
Next to the descriptive clinical observations, we also found a relation between local Cav-1 expression and new peri-operative (30 days) vascular events. The ATHERO-EXPRESS is the first vascular bio-bank with a longitudinal design which allows studies on locally expressed biomarkers in the atherosclerotic plaque as surrogate marker to identify the so-called vulnerable patient
In summary, our findings demonstrate a strong reduction of Cav-1 levels in human carotid plaques in comparison to non-atherosclerotic arteries. Low Cav-1 levels were associated with signs of plaque vulnerability and conversely, plaque Cav-1 levels showed a positive correlation with plaque stabilizing elements. Clinical follow-up revealed that high Cav-1 levels were associated with absence of major adverse cardiovascular events within 30 days of surgery.
Previous reports have shown other
Although our data demonstrate that Cav-1 expression levels influence MMP activity within the plaques contributing to plaque instability, we can not rule out at this point other possibilities regarding how Cav-1 might influence plaque stability such as reduction in the total number of Caveolae and/or effects on plaque vascularisation.
Authors are grateful to Els Busser and Chaylendra Strijder for their technical support.