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Vascular calcification: mechanisms and clinical ramifications.

Vascular calcification, long thought to result from passive degeneration, involves a complex, regulated process of biomineralization resembling osteogenesis. Evidence indicates that proteins controlling bone mineralization are also involved in the regulation of vascular calcification. Artery wall cells grown in culture are induced to become osteogenic by inflammatory and atherogenic stimuli. Furthermore, osteoclast-like cells are found in calcified atherosclerotic plaques, and active resorption of ectopic vascular calcification has been demonstrated. In general, soft tissue calcification arises in areas of chronic inflammation, possibly functioning as a barrier limiting the spread of the inflammatory stimulus. Atherosclerotic calcification may be one example of this process, in which oxidized lipids are the inflammatory stimulus. Calcification is widely used as a clinical indicator of atherosclerosis. It progresses nonlinearly with time, following a sigmoid-shaped curve. The relationship between calcification and clinical events likely relates to mechanical instability introduced by calcified plaque at its interface with softer, noncalcified plaque. In general, as calcification proceeds, interface surface area increases initially, but eventually decreases as plaques coalesce. This phenomenon may account for reports of less calcification in unstable plaque. Vascular calcification is exacerbated in certain clinical entities, including diabetes, menopause, and osteoporosis. Mechanisms linking them must be considered in clinical decisions. For example, treatments for osteoporosis may have unanticipated effects on vascular calcification; the converse also applies. Further understanding of processes governing vascular calcification may yield new therapeutic options for vascular disease.

Animals↗

Osteoprotegerin inhibits artery calcification induced by warfarin and by vitamin D.

The present experiments were carried out to test the hypothesis that arterial calcification is linked to bone resorption by determining whether the selective inhibition of bone resorption with osteoprotegerin will inhibit arterial calcification. In the first test, arterial calcification was induced by treating 22-day-old male rats with warfarin, a procedure that inhibits the gamma-carboxylation of matrix Gla protein and causes extensive calcification of the arterial media. Compared with rats treated for 1 week with warfarin alone, rats treated with warfarin plus osteoprotegerin at a dose of 1 mg/kg per day had dramatically reduced alizarin red staining for calcification in the aorta and in the carotid, hepatic, mesenteric, renal, and femoral arteries, and they had 90% lower levels of calcium and phosphate in the abdominal aorta (P<0.001) and in tracheal ring cartilage (P<0.01). More rapid arterial calcification was induced by treating 49-day-old male rats with toxic doses of vitamin D. Treatment for 96 hours with vitamin D caused widespread alizarin red staining for calcification in the aorta and the femoral, mesenteric, hepatic, renal, and carotid arteries, and osteoprotegerin completely prevented calcification in each of these arteries and reduced the levels of calcium and phosphate in the abdominal aorta to control levels (P<0.001). Treatment with vitamin D also caused extensive calcification in the lungs, trachea, kidneys, stomach, and small intestine, and treatment with osteoprotegerin reduced or prevented calcification in each of these sites. Measurement of serum levels of cross-linked N-teleopeptides showed that osteoprotegerin dramatically reduced bone resorption activity in each of these experiments (P<0.001). Therefore, we conclude that doses of osteoprotegerin that inhibit bone resorption are able to potently inhibit the calcification of arteries that is induced by warfarin treatment and by vitamin D treatment. These results support the hypothesis that arterial calcification is linked to bone resorption.

Animals↗

Calcification of the trochlear apparatus of the orbit: CT appearance and association with diabetes and age.

OBJECTIVE: Calcification can sometimes be observed on CT scans in the region of the trochlear apparatus of the orbit, the cartilaginous structure through which the superior oblique tendon and its sheath pass. We evaluated associations of trochlear calcifications with age and diabetes. MATERIALS AND METHODS: We retrospectively reviewed CT scans of the orbit in 159 patients to identify the presence of trochlear calcifications. The presence or absence of diabetes, duration of diabetes, type of therapy, and presence or absence of neuropathy were determined from medical charts of 139 patients. We calculated the odds ratio of detecting a trochlear calcification and used logistic regression to evaluate the associations of age, sex, and diabetes with trochlear calcification. RESULTS: Trochlear calcifications were present in seven of the 24 diabetic patients and in 10 of the 115 nondiabetic patients. The odds ratio for detecting trochlear calcifications in diabetic vs nondiabetic patients was 4.3 (p < .01). Logistic regression showed univariate associations with trochlear calcification for both increasing age (p < .001) and diabetes mellitus (p < .01). The effect of diabetes on the prevalence of trochlear calcifications was seen predominantly in those less than 40 years old (odds ratio = 24.0, p = .014). Sex, duration of diabetes, insulin dependence, and neuropathy were not significantly associated with an increase in trochlear calcifications. CONCLUSION: The results show that a trochlear calcification seen on CT is a benign condition that may serve as a marker for diabetes in young patients. Trochlear calcifications are observed frequently (25-30%) in persons more than 50 years old. When it is present in patients younger than 40 years, it is strongly associated with diabetes.

Adolescent↗

Computer-aided detection of amorphous calcifications.

OBJECTIVE: Computer-aided detection (CAD) systems have been used successfully to detect malignant calcifications on mammography, with sensitivities ranging from 86% to 99%. Amorphous calcifications are a subset of small indistinct calcifications of intermediate concern that have a 20% likelihood of being malignant and that are frequently overlooked on mammography. The purpose of our study was to determine the sensitivity of one commercially available CAD system for detecting amorphous calcifications. MATERIALS AND METHODS: A commercially available CAD system evaluated mammograms of 82 patients with 85 mammographically detected and histologically sampled groups of amorphous calcifications (21 malignant, 14 high risk, and 50 benign). The sensitivity of the system for detecting the calcifications on at least one image of the two-view mammographic examination (case sensitivity) and on each individual mammographic image (image sensitivity) was determined. Findings were correlated with results from large core needle biopsy or surgical excision in each case. RESULTS: The CAD system detected amorphous calcifications in 43 of 85 cases (case sensitivity, 51%) and in 59 of 146 mammographic images (image sensitivity, 40%). The case sensitivities by histologic outcome were 57% for malignant calcifications, 29% for high-risk calcifications, and 54% for benign calcifications. An average of 2.0 false-positive marks were displayed per case. CONCLUSION: The CAD sensitivity for malignant amorphous calcifications is markedly lower than previously reported for all malignant calcifications. Breast imaging radiologists who use CAD systems should continue to search diligently for these difficult-to-detect lesions.

Adult↗

Relationship between aortic calcification and atherosclerotic disease in patients with abdominal aortic aneurysm.

BACKGROUND: Calcification of the aortic wall has been used as an index of the degree of complicated atherosclerotic plaque formation. Atherosclerosis in the abdominal aorta in patients with abdominal aortic aneurysm (AAA) was studied by measuring aortic calcification via computerised tomography. METHODS DESIGN: retrospective study. PATIENTS: preoperative computer tomography (CT) in 129 male patients with a mean age of 68.6 years (range: 42 to 82) undergoing elective aneurysmectomy. MEASUREMENTS: a conventional CT scanner was used. Aortic calcification was assessed at four levels: (A) the origin of the coeliac artery, (B) the left renal vein, (C) the maximum diameter of the aneurysm, and (D) the aortic bifurcation. Calcification was graded as: (0) no calcification, (1) calcification less than 40% of the aortic circumference, or (2) calcification more than 40% of the aortic circumference. The relationships between aortic calcification at each level and various factors related to atherosclerosis were analysed. RESULTS: Maximum calcification was seen at level D, followed by levels C, B and A, in that order. Calcification was less common in patients younger than 50 years old. Hypertension, coronary artery disease, and peripheral vascular occlusive disease correlated with the incidence of aortic calcification. CONCLUSIONS: A correlation between aortic calcification and atherosclerotic disease was demonstrated in patients with abdominal aortic aneurysm.

Adult↗

Influence of species, environmental factors, and tissue cellularity on calcification of porcine aortic wall tissue.

Valve tissue calcification has complex host, implant, and mechanical determinants. We studied the influence of species (rat v sheep), environmental factors (presence v absence of blood contact and arterial stress), and tissue cellularity (normal v acellularized tissue) on porcine aortic wall mineralization. Porcine aortic wall samples underwent standard glutaraldehyde-fixation or combined enzyme-detergent acellularization. Samples were implanted subcutaneously in rats (n = 8) and in juvenile sheep (n = 8). Furthermore, in juvenile sheep, similar samples were implanted into the jugular vein (blood contact) and into the carotid artery (blood contact and arterial stress). After 8 and 12 weeks, tissue was explanted and evaluated by X-ray, light- and electron-microscopy, and calcium content measurement (atomic absorption spectrometry). On the Von Kossa staining, auto-fluorescence of elastic fibers was used to identify the relation between calcific deposits and elastin. Subcutaneously implanted, glutaraldehyde-fixed tissue calcified severely in rat, but much less in sheep (calcium content: 56.2 +/- 13.6 v 9.9 +/- 9.0 microg/mg, respectively; P <.001). In sheep, the presence of blood contact (venous implants) increased wall calcification significantly (36.9 +/- 15.8; P <.001), but hemodynamic stress (arterial implants) had no additional mineralizing effect on the aortic wall (P >.05 v venous implants). Calcification of glutaraldehyde-fixed tissue occurred predominantly at the level of cells and cellular remnants, as confirmed by electron- and fluorescence-microscopy, locating calcific deposits in between elastic fibers. Acellularized tissue calcified significantly less, but an inflammatory response towards the tissue led to fragmentation, lysis, and subsequent calcification of elastic fibers. Results from subcutaneous implantations show large inconsistencies in calcification between the species. In sheep, blood contact increases aortic wall calcification significantly, while arterial stress has no additional effect. The sheep-jugular implantation model can be used as a simplified model for further study of aortic wall calcification and new antimineralization treatments. Calcification of glutaraldehyde-fixed aortic wall tissue is initiated at the level of cellular remnants, with little or no contribution from elastic fibers. Acellularization can avoid this cell-mediated calcification, but an additional treatment (glutaraldehyde, cryopreservation, photo-fixation,.) will be necessary to avoid the inflammation leading to elastolysis and consequent calcification of elastic fibers.

Animals↗

In vitro calcification of bioprosthetic heart valves: report of a novel method and review of the biochemical factors involved.

The lifetime of bioprosthetic heart valves is limited by primary tissue failure and calcification of the valve leaflets. There are indications that synthetic elastomeric materials may also be subject to this problem. The mechanism of calcification is not known, but it is of interest that calcification can be induced in tissue even in the absence of cellular mechanisms, outside the body. Many hypotheses relate to inhibitory or promotory factors rather than primary instigators of calcification and none has led to a satisfactory solution of the problem. The study of calcification in replacement valves generally utilises in vivo test methods i.e. complex biologic systems. This creates difficulty in defining the primary factors involved. The use of in vitro test methods, including a novel fatigue tester method, has been reviewed. Various test media have been used, including simple salt solutions (allowing definition and controlled modification of the calcification medium) and bovine plasma. Comparison of static and dynamic in vitro methods with the rat subcutaneous implant model indicated a lower degree of calcification in vitro: the calcification achieved was, however, significantly greater than similar material not subject to calcification processes. Dynamic in vitro tests produced greater calcification than static in vitro tests. Porcine aortic valve material, in static tests, behaved similarly to bovine pericardium. In vitro calcification testing has a useful role to play in the economic screening of new materials or modifications of existing materials prior to in vivo testing. It may also aid the definition of the mechanism of calcification and hence the development of solutions to the problem.

Animals↗

Role of mechanical stress in calcification of aortic bioprosthetic valves.

Calcification of bioprostheses used for heart valve replacement is a serious problem, since it causes bioprosthetic dysfunction. In vivo, bioprostheses are subjected to large mechanical stresses during each cardiac cycle. We investigated whether stresses play a major role in calcification of bioprostheses. Previous studies of Carpentier-Edwards porcine, Hancock porcine, and Ionescu-Shiley pericardial bioprostheses indicated that the highest stresses occurred in the areas of greatest flexion of the leaflet. In porcine bioprostheses, stresses were greater in the commissural region than at the base, and were compressive on the aortic surface of the leaflet. The pericardial tissue showed shear deformation in the zone of flexion. In the present study, the three types of bioprostheses were implanted in the aortic position in calves to investigate the development, location, and distribution of calcification. Visual, radiographic, and histologic techniques were used. All bioprostheses showed calcification which began in the area of leaflet flexion. In porcine bioprostheses, calcification occurred earlier in the commissural region than at the base. The earliest calcific deposits were localized within collagen cords on the aortic surface of the leaflets. In pericardial bioprostheses, calcification occurred at multiple foci along the zone of leaflet flexion and was located between and within layers of collagen along planes parallel to the leaflet surface. Hence calcification in all bioprostheses began in the areas of greatest stress. In porcine bioprostheses, calcification was present where collagen fibers are likely to have been damaged by compressive stresses. In pericardial bioprostheses, calcification was found along the planes of shear where structural integrity is likely to have been disrupted by the sliding of individual layers of collagen over each other. It is concluded that mechanical stresses initiate calcification by damaging the structural integrity of the leaflet tissue. Therefore, calcification of bioprostheses can be inhibited by reducing functional stresses through the modification of design and tissue properties to duplicate those of the natural aortic valve.

Animals↗

Holographic interferometry and in vitro calcification: comparing pericardial versus porcine bioprostheses.

BACKGROUND AND AIMS OF THE STUDY: Structural valve deterioration of bioprostheses is mainly caused by progressive calcification. It has not yet been convincingly demonstrated whether pericardial or porcine bioprostheses are more prone to calcification. METHODS: A previously described in vitro test protocol consisting of non-destructive holographic interferometry, which permits quantitative deformation analysis of heart valves and accelerated dynamic calcification in vitro was used to evaluate five stented pericardial bioprostheses of different sizes and design (three or two leaflets) from one manufacturer. The extent of calcification was assessed after up to 20 x 10(6) cycles in the valve tester by microradiography, and areas of calcification were compared by holographic interferometry using computerized image processing. Calcification was confirmed by EDX-analysis and Von Kossa staining. Results were compared with in vitro testing of 25 porcine bioprostheses from different manufacturers. RESULTS: The tested pericardial bioprostheses had an individual distribution of mechanical stresses detectable by holographic interferometry, which resulted in different calcification of valve leaflets. A strong correlation between calcification and stress distribution was found (correspondence of affected areas: 82.3 +/- 10.1%, r = 0.97). Variability in calcification and stress distribution, respectively, of pericardial valves compared well with our findings for porcine prostheses. Overall, the extent of leaflet calcification was not statistically different for pericardial and porcine bioprostheses (p = 0.21). CONCLUSIONS: The biological material of bioprostheses (pericardial versus porcine) does not seem to be the crucial factor in the calcification process. Mechanical stresses detectable by holographic interferometry have a more pronounced impact and predict calcification of individual prostheses, at least in the in vitro setting.

Animals↗

Inhibition of CEM calcification by the sequential pretreatment with ethanol and EDTA.

The major object of the present study is to optimize the anticalcification activity of ethanol on bioprosthetic heart valve (BHV) calcification. We hypothesize that the chelating agent, in combination with ethanol, will synergistically prevent aortic wall calcification. Collagen-elastin matrix (CEM) was developed as a calcifiable matrix for simulating the calcification process of implantable biomaterials. The efficacy of the combination effects of ethanol and EDTA on the calcification process of CEMs was investigated by implanting them after pretreatment with various conditions of ethanol and EDTA in the rat subdermal model. The relationship between calcium concentrations and pretreatment conditions (a series vs. simultaneous, i.e., first ethanol and then EDTA in water solution, the reverse, or EDTA in ethanol) was established and the optimal condition for prevention of BHV calcification was determined. The mechanistic studies on anticalcification effects exerted by particular pretreatment sequences were also conducted using FTIR and differential scanning calorimetry (DSC). The sequential pretreatment of CEM first with ethanol and then EDTA in water solution significantly decreased the calcification rate of CEM compared the control. The percentage of prevention of calcification by the serial treatment of ethanol (80% v/v) and then EDTA in water solutions decreased, as the concentration of elastin in the CEM increased. The percentage of preventing calcification was 42%, 28.6%, and 22.9% for CEM containing collagen and elastin ratios of 90:10, 50:50, 20:80, respectively. These results indicate that elastin is the major regulatory component of BHV calcification, and preventive effects on calcification increased only when CEM were pretreated with first ethanol and then EDTA in water solution. Moreover, the sequential effect is more apparent in the matrix of less elastin content, which is close to the physiological range. The sequential inhibitory effects of ethanol and EDTA could occur due to the distinct separate actions of each agent, thereby achieving a relatively greater inhibition of calcification.

Animals↗

Expression of mineralisation-regulating proteins in association with human vascular calcification.

OBJECTIVES: These studies aim to investigate the expression and function of mineralisation-regulating proteins in association with human vascular calcification focussing on the similarities and differences between the two major calcification pathologies in man: atherosclerotic, intimal calcification and Monckeberg's sclerotic medial calcification. BACKGROUND: A number of studies have documented expression of mineralisation-regulating proteins in association with human atherosclerotic calcification leading to the suggestion that human vascular calcification may be a regulated process with similarities to developmental osteogenesis. METHODS: In situ hybridisation, immunohistochemistry and semi-quantitative RT-PCR analysis were used to determine the temporal and spatial expression patterns of mineralisation-regulating proteins within human calcified vascular lesions. Additionally, the expression and regulation of bone-associated proteins was analysed during spontaneous calcification of human VSMCs in vitro. RESULTS: In association with both medial and intimal calcification, the temporal changes in expression of mineralisation-regulating proteins are similar. Some constitutively expressed bone-associated proteins, including matrix Gla protein (MGP), are down-regulated in association with calcification while expression of a number of bone-associated proteins, not normally expressed in the vessel wall, are induced including alkaline phosphatase (ALK), bone sialoprotein (BSP) and bone Gla protein (BGP). In medial calcification the source of expression of these mineralisation-regulating proteins is VSMCs while in intimal lesions both VSMCs and macrophages express them. Furthermore, these bone-associated proteins are spontaneously expressed by VSMCs in vitro suggesting that human VSMCs are capable of simultaneously exhibiting smooth muscle and osteogenic-like properties. CONCLUSIONS: These studies imply that both medial and intimal vascular calcification are regulated processes; however the aetiology of each pathology differs.

Alkaline Phosphatase↗

Medial arterial calcification and its association with mortality and complications of diabetes.

Medical arterial calcification was studied among 4,553 subjects in a 20-year, longitudinal study of Pima Indians. The prevalence and incidence of medial arterial calcification were highest among men, the elderly, and patients with Type 2 (non-insulin-dependent) diabetes mellitus. Medial arterial calcification was most commonly observed in the feet and appeared to progress proximally. Proportional hazards analysis was used to evaluate risk factors for medial arterial calcification in the feet and to evaluate medial arterial calcification as a risk factor for death and for complications of diabetes. Among diabetic patients, risk factors for medial arterial calcification were impaired vibration perception, long duration of diabetes, and high plasma glucose concentration (p less than 0.01 for each). Among nondiabetic subjects, age, male gender (p less than 0.01 for each), and high serum cholesterol concentration (p = 0.02) were risk factors for medial arterial calcification. Nondiabetic subjects with medial arterial calcification did not have higher mortality rates than subjects without medial arterial calcification (rate ratio = 0.95, 95% confidence interval = 0.7-1.3). Diabetic patients with medial arterial calcification, compared with diabetic patients without medial arterial calcification, had 1.5-fold the mortality rate (95% confidence interval = 1.0-2.1), 5.5-fold the rate of amputations (95% confidence interval = 2.1-14.1), 2.4-fold the rate of proteinuria (95% confidence interval = 1.3-4.5), 1.7-fold the rate of retinopathy (95% confidence interval = 0.98-2.8), and 1.6-fold the rate of coronary artery disease (95% confidence interval = 0.48-5.4).

Adolescent↗

Biology of calcification in vascular cells: intima versus media.

BACKGROUND: Vascular calcification occurs at two distinct sites within the vessel wall: the intima and the media. Intimal calcification occurs in the context of atherosclerosis, associated with lipid, macrophages and vascular smooth muscle cells, whereas medial calcification can exist independently of atherosclerosis and is associated with elastin and vascular smooth muscle cells. PATHOGENESIS: In this review we compare intimal and medial calcification, particularly discussing the mechanisms which may be responsible for each type of calcification. Similar mechanisms probably initiate and regulate both forms of calcification including the generation of matrix vesicles/apoptotic bodies and local expression of mineralization-regulating proteins. However, since different modifying agents such as lipids in the intima and elastin in the media are present at the sites of calcification and are associated with particular diseases, this implies that the etiologies of these processes differ. For example, intimal calcification is associated with atherosclerosis while medial calcification occurs commonly in the diabetic neuropathic leg. CLINICAL IMPORTANCE: Since both types of calcification correlate with significant morbidity and mortality, we discuss the different types of calcification in terms of their clinical importance.

Adult↗

Pathogenesis of vascular calcification in dialysis patients.

Soft-tissue and vascular calcification are highly prevalent in end-stage renal disease (ESRD). Vascular calcifications manifest as both medial and intimal calcification of arteries and are a hallmark of the accelerated atherosclerosis observed in uremia. The nature of vascular calcification is progressive, and is associated with arterial stiffness and increased cardiovascular mortality. Age, duration of dialysis, and diabetes mellitus are clear determinants of the severity of vascular calcification; however, more recently novel insights into the pathomechanisms of unwanted calcification processes have been gained. Disturbances of mineral metabolism such as hyperphosphatemia and hypercalcemia appear to contribute to progressive calcification, not only by passive precipitation but by actively inducing changes in vascular smooth muscle cell behavior toward an osteoblast-like phenotype. Specific calcium-regulatory proteins may act locally or systemically as calcification inhibitors. Dysregulations of calcification inhibitors, including fetuin-A, matrix Gla protein, osteoprotegerin, and pyrophosphates may also be pathophysiologically relevant factors in the context of uremic extraosseous calcification. In this context, low serum fetuin-A levels were recently found to be associated with increased mortality in cohorts of dialysis patients. This overview intends to summarize current knowledge of the scientific concepts involved in the pathogenesis of extraosseous calcification in ESRD.

Animals↗

Noninvasive prediction of coronary atherosclerosis by quantification of coronary artery calcification using electron beam computed tomography: comparison with electrocardiographic and thallium exercise stress test results.

OBJECTIVES: This study was designed to compare the usefulness of electron beam computed tomography for prediction of coronary stenosis with that of electrocardiographic (ECG) and thallium exercise tests. BACKGROUND: Electron beam computed tomography can quantify coronary calcifications; however, its clinical value has yet to be established. METHODS: Using the volume mode of electron beam computed tomography, we studied 251 consecutive patients who underwent elective coronary angiography because of suspected coronary artery disease and compared the results with those of ECG and thallium exercise tests. The total coronary calcification score was calculated by multiplying the area ( > or = 2 pixels) of calcification (peak density > or = 130 Hounsfield units) by an arbitrarily weighted density score (0 to 4) based on its peak density. The mean of two scans was log transformed. RESULTS: Calcification was first noted in women in the 4th decade of life, approximately 10 years later than its occurrence in men. Among patients with advanced atherosclerosis (two- and three-vessel disease), calcification scores were uniformly high in women but ranged widely in men. Nine percent of patients with significant stenoses ( > or = 75% by densitometry) had no calcification. The calcification scores of patients with significant stenosis in at least one vessel were significantly higher than those of patients without significant stenosis in the study group as a whole and in most patient subgroups classified according to age and gender. A cutoff calcification score for prediction of significant stenosis, determined by receiver operating characteristic curve analysis, showed high sensitivity (0.77) and specificity (0.86) in all study patients; sensitivity was similarly high even in older patients ( > or = 70 years) and was enhanced in middle-aged patients (40 to < or = 60 years). The difference in specificity between calcification scores and ECG exercise test results had borderline significance (p = 0.058) and that between calcification scores and thallium test results was significant (p = 0.001). The latter difference became small but remained significant (p = 0.01) even after the reevaluation of thallium test results in light of each subject's clinical data. CONCLUSIONS: Quantification of coronary artery calcification with electron beam computed tomography noninvasively predicted angiographically confirmed coronary stenosis. Results obtained with this method were at least as useful and potentially better in some patient groups than those obtained with thallium and ECG exercise testing.

Adolescent↗

Arterial calcification in mice after freeze-thaw injury.

Vascular calcification is highly correlated with atherosclerosis and cardiovascular disease and is a significant predictor of cardiovascular morbidity and mortality. Studies in mice indicate a genetic contribution to this dystrophic extra osseous calcification. We sought to elaborate a method to induce dystrophic arterial calcification in mice and further examine the pathogenetical mechanisms involved in the phenotype. We established a method of freeze-thaw injury of the infrarenal aorta producing a limited tissue necrosis and histologically investigated the occurrence of dystrophic calcification within the aortic wall 1, 3 and 7 days after injury in C57BL/6 (a mouse strain shown to be resistant to dystrophic cardiac calcification after injury) and C3H/He (susceptible to dystrophic cardiac calcification). C57BL/6 mice exhibited no dystrophic calcification at all within the vessel wall upon injury of the infrarenal aorta (0/5 mice 1 day after injury and 0/10 animals 7 days after injury). By contrast C3H/He mice displayed a remarkable extent of calcification mainly present within the media of the infrarenal aorta which was evident as early as 24 h (three out of five animals 1 day after injury) and reached its maximum extent 7 days after injury (10 out of 10 animals at the seventh postoperative day, p<0.001 compared to C57BL/6 mice). Upon immuno-histological analysis calcification was accompanied by the occurrence of certain bone-matrix associated proteins. Osteopontin and Bone Morphogenetic Protein 2/4 expression was detected co-localized with the calcified lesions. Our results demonstrate that freeze-thaw injury of the infrarenal aorta is a sufficient method to induce dystrophic arterial calcification in mice. We present evidence that the occurrence of arterial calcification in C3H/He mice seems to be actively regulated by certain bone-matrix associated proteins.

Animals↗

Calcification of elastic fibers in human atherosclerotic plaque.

The present study was undertaken to systematically investigate whether calcification of elastic fibers occurs in human atherosclerotic plaques. Fourteen carotid artery segments obtained by endarterectomy were examined by a combination of electron microscopy and cytochemistry. The analysis demonstrated that calcification of elastic fibers occurred in all 14 specimens. Two distinct types of calcification of elastic fibers were identified. In type I calcification, elastin itself was observed to undergo calcification and no visible structural alterations preceded the calcification. In type II of calcification, structural alteration of elastin preceded calcification of elastic fibers and included vacuolization of elastin accompanied by the accumulation of neutral lipids and unesterified cholesterol within altered elastic fibers. In type II calcification, calcified deposits were found to form in an association with unesterified cholesterol. Type II calcification was widespread throughout the plaque matrix while type I calcification occurred only in the deep portions of plaques.

Aged↗

Association between calcification in the coronary arteries, aortic arch and carotid arteries: the Rotterdam study.

OBJECTIVE: The present study was performed to examine the prevalence of and associations between calcification in the coronary arteries, aortic arch and carotid arteries, assessed by multislice computed tomography (MSCT), in an elderly population. METHODS AND RESULTS: This study was part of the population-based Rotterdam study. From October 2003 until July 2004, subjects underwent a 16-slice MSCT scan. Calcification was quantified by calculating the Agatston, volume and mass score. Current analyses were performed in 600 subjects (mean age 74 years). The prevalences of calcification in the coronary and carotid arteries were higher in men compared to women. However, aortic arch calcification was more prevalent among women. In men, correlation coefficients based on the Agatston score ranged from 0.40 (between coronary and aortic arch calcification) to 0.54 (between aortic arch and carotid calcification) (p<0.001). Correlation coefficients for women ranged from 0.30 (between coronary and aortic arch calcification) to 0.40 (between coronary and carotid calcification) (p<0.001). CONCLUSIONS: While the prevalences of calcification in the coronary and the carotid arteries were higher in men compared to women, aortic arch calcification was more prevalent among women. Moderate to strong correlations between calcification in different vessel beds were found.

Aged↗