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[Inhibitory effect of Panax notoginseng on the VSMC proliferation induced by hyperlipidemia serum].

OBJECTIVE: To investigate the effect of P. notoginseng on vascular smooth muscle cell (VSMC) proliferation induced by hyperlipidemia serum. METHOD: MTT method was used to investigate the effect of hyperlipidemia serum and hyperlipidemia plus P. notoginseng on VSMC proliferation. RESULT: Hyperlipidemia serum could promote VSMC proliferation significantly as compared with the control group (P < 0.05), while hyperlipidemia plus P. notoginseng could weaken this effect significantly (P < 0.05). CONCLUSION: P. notoginseng can significantly inhibit the VSMC proliferation induced by hyperlipidemia serum.

Animals↗

[Hyperlipidemia and erectile dysfunction].

Hyperlipidemia is one of the risk factors leading to erectile dysfunction (ED), a common disorder in men, especially in old men. Epidemiological studies have found that the decrease in high density lipoprotein (HDL) and elevation of total cholesterol/high density lipoprotein (TC/HDL) are correlated with ED. Studies have also shown that arterial stenosis and occlusion caused by hyperlipidemia could be attributed to the advanced-stage mechanism of ED induced by hyperlipidemia. Hyperlipidemia may damage man's erectile function at an early stage by affecting the endothelial cells and smooth muscles of the penis and the peripheral nerves for penile erection. Apart from dietary therapy and drug therapy aiming at hyperlipidemia, the traditional Chinese medicine therapy and gene therapy are two promising approaches to the treatment of ED caused by hyperlipidemia.

Aged↗

Hyperlipidemia after organ transplantation.

Hyperlipidemia, long recognized as a difficult and common problem following organ transplantation, may be the underlying cause of the accelerated atherosclerosis observed in heart transplant recipients and children with renal transplants. In addition, hyperlipidemia may play a role in late renal graft loss. The cause of post-transplant hyperlipidemia is unclear. In patients treated with azathioprine and prednisone, hypertriglyceridemia is the commonest finding and probably results from an increased consumption of calories from carbohydrate and fat following resolution of uremia, in conjunction with glucose intolerance secondary to steroid administration. In patients treated with cyclosporine, hypercholesterolemia is the most common form of hyperlipidemia. Cyclosporine is a lipophilic drug that is transported in the plasma, largely in association with lipoproteins, and may require the low-density lipoprotein (LDL) receptor for internalization into cells. Hypercholesterolemia may result from interference with the basic cholesterol feedback mechanism via the LDL receptor. In addition, cyclosporine affects bile acid synthesis and worsens glucose tolerance, both factors that may promote hyperlipidemia. The first therapeutic approach to hyperlipidemia in the transplant recipient is dietary calorie-fat restriction and supplementation with soluble fiber. Ongoing clinical trials of the available pharmacologic lipid-lowering agents are addressing the safety and efficacy of these agents in the setting of immunosuppression; until that time, they should be used cautiously and in low doses.

Azathioprine↗

Proteinuria, hyperlipidemia, and the kidney.

Hyperlipidemia in the nephrotic syndrome is the result of abnormalities in both synthesis and catabolism of lipids and lipoproteins. The etiology of nephrotic hyperlipidemia has not been established, but both abnormal glomerular permeability to plasma proteins and reduced serum oncotic pressure may contribute. Although standard hypolipemic drugs are effective in nephrotic patients, therapies such as dietary protein restriction and angiotensin-converting enzyme inhibitors which reduce proteinuria and increase serum oncotic pressure ameliorate hyperlipidemia as well. Hyperlipidemia may also induce proteinuric renal disease in normal animals and worsen renal injury in a variety of animal models of kidney disease. Conversely, treatment of hyperlipidemia prevents renal injury and lessens proteinuria. Potential mechanisms by which hyperlipidemia may cause renal injury include inflammatory and immunologically mediated injury and alteration of glomerular paracrine function.

Animals↗

[A case of Kennedy-Alter-Sung syndrome with type IIa hyperlipidemia--study on sex hormone receptor and lipid metabolism].

A 57-year-old man of Kennedy-Alter-Sung syndrome (K-A-S) with type IIa hyperlipidemia was reported with studies of several sex hormone receptors. He noticed tremulous movements of hands on gripping at age 40 and gynecomastia at age 46. He had been pointed out to waddle since 52 years old, and also noticed difficulty in going up stairs and standing up at age 54. He was admitted to our Neurology Service on June 5, 1989. On general physical examinations, gynecomastia, eyelids xanthomas and hypertrophy of Achilles tendons were found. Neurologic examination revealed clear consciousness and slight dysarthric speech with nasal voice. Cranial nerves showed mild bilateral facial weakness, poor uvula and soft palatal movements, atrophy and weakness of bilateral sternocleidomastoid muscles, and atrophy of tongue with fasciculation. The four extremities were hypotonic, and proximal muscular atrophy and weakness of four extremities were seen. Deep tendon reflexes were absent in four extremities and fasciculation on both thighs was noted on contraction. Sensory and cerebellar functions were intact. Waddling gait and Gowers' sign were present. In K-A-S syndrome, abnormal lipid metabolism such as a family of type IIa hyperlipidemia, or familial and sporadic cases of type IV hyperlipidemia has been documented. In the family of our cases, his elder sister was found to have type IIa hyperlipidemia, while his son had type IV hyperlipidemia. The coexistence of these two types of hyperlipidemia in the same family of K-A-S syndrome has not been reported so far to our knowledge.(ABSTRACT TRUNCATED AT 250 WORDS)

Achilles Tendon↗

A head-to-head comparison of the cost effectiveness of HMG-CoA reductase inhibitors and fibrates in different types of primary hyperlipidemia.

The objective of this study was to compare the lifetime cost-effectiveness of HMG-CoA reductase inhibitors and fibrates for the treatment of hyperlipidemia. Estimates of lipid modification achieved due to drug therapy were based on published head-to-head comparisons of specific HMG-CoA reductase inhibitors and fibrates in randomized, double-blind studies. We used a validated coronary heart disease (CHD) prevention computer model to estimate the costs and benefits of lifelong lipid modification. The patients were middle-aged men and women who were free of CHD, with either primary type IIa or IIb hyperlipidemia. The intervention used were specific HMG-CoA reductase inhibitors and fibrates at several dosages, which reduced total cholesterol 11-34% and increased high-density lipoprotein cholesterol 1-29%. The main outcome measure was the cost per year of life saved after discounting benefits and costs by 5% annually. The lifetime cost effectiveness of HMG-CoA reductase inhibitors (fluvastatin, lovastatin, pravastatin, simvastatin) and fibrates (bezafibrate, fenofibrate, gemfibrozil) for the treatment of primary hyperlipidemia varied according to patient population, the effectiveness of each drug in modifying lipid levels, and the price of each drug. The estimates of cost per year of life saved for HMG-CoA reductase inhibitors range from $19,886 to $73,632, and $16,955 to $59,488 for fibrates according to gender and type of primary hyperlipidemia. Fluvastatin 20 mg/day was significantly more cost effective than gemfibrozil 1200 mg/day for male patients with type IIa hyperlipidemia. Simvastatin 17.3 mg/day or 20 mg/day yielded similar cost-effectiveness ratios compared with fibrates among type II hyperlipidemic patients. However, micronized fenofibrate was more cost effective than simvastatin 20 mg/day among type IIb patients. The cost effectiveness of lipid therapy varies widely and can be maximized by selecting specific drugs for specific lipid abnormalities.

Bezafibrate↗

Plasma, apolipoprotein, A-I and A-II levels in hyperlipidemia.

Some of the component moieties of high density lipoproteins (HDL) were analyzed in normal subjects and in patients with hyperlipidemia. Apoproteins A-I and A-II were quantified by radioimmunoassay, HDL cholesterol and triglycerides were assessed on heparin-MnCl2 supernates of fasting plasmas. We found that HDL is enriched in triglycerides in all forms of hyperlipidemia, while the proportion of ApoA-II is unaltered and the proportion of ApoA-I is decreased. Thus, the composition of HDL is altered in hupertirglyceridemia. The molecular associations of ApoA-I and ApoA-II in plasma were also examined by assaying the apoprotein contents of plasma fractions prepared by ultracentrifugation and by gel filtration column chromatograpy. The ApoA-I contents of d smaller than 1.063 fraction increased in hyperlipidemia from smaller than 0.5% to approximately 2%, but the ApoA-I contents of the d greater than 1.21 fraction remained at less than 12% of total plasmas with triglyceride levels smaller than 1500 mg/dl. d greater than 1.21 ApoA-I rose to 23% in one plasma with a triglyceride level of greater than 1700 mg/dl. On column chromatography, ApoA-I eluted with the lipoproteins and also in a fraction whose molecular weight (MW) appeared to be approximately 50,000 daltons. The proportion of plasma ApoA-I which eluted in the 50,000 MW peak was positively correlated with plasma triglyceride levels, but at triglyceride levels of less than 1500 mg/dl, less than 20% of ApoA-I was in the 50,000 MW peak. Between levels of approximately 2000 and 12,000 mg/dl, the percentage "50,000 M.W. ApoA-1" was 20-25%. The ApoA-II contents of d smaller than 1.063 fractions were also increased in hyperlipidemia, but greater than 95% of ApoA-II was found in the HDL fractions in both normal and hyperlipidemic plasma both by column chromatography and ultracentrifugation. Thus, the molecular association of ApoA-I appears to be altered in hyperlipidemia.

Apolipoproteins↗

Hyperlipidemia in acute pancreatitis. Cause or epiphenomenon?

Whether hyperlipidemia is a pre-existing metabolic disorder or a consequence of acute pancreatitis is still debated. Mild to moderate elevation of serum triglyceride levels are likely to be an epiphenomenon of the pancreatic disease. A marked hyperchylomicronemia and hypertrygliceridemia would be needed to trigger acute pancreatitis; a relevant defect in the lipid catabolism and clearance should therefore pre-exist. The aim of the present study was to investigate whether patients with acute pancreatitis and marked hyperlipidemia have an impaired clearance capacity of exogenous lipids, which would define the hyperlipidemia as a preexistent abnormality and therefore a potential cause of the pancreatic disease. With this aim, the kinetics of the removal of exogenous triglycerides from the circulation have been analyzed. Twenty patients with acute pancreatitis have been studied. Ten of them suffered from an episode of acute pancreatitis with marked hyperlipidemia (serum triglyceride levels > 20 mmol/L). Four to six months after recovery from the pancreatitis, a two-stage infusion of Intralipid 20% was carried out and the fractional removal rate (K2) and the maximal clearance capacity (K1) of exogenous triglycerides were calculated. At low infusion rates a first order kinetics for removal was observed, whereas at high infusion rates a zero order kinetics was operating. All patients with a previous attack of normolipidemic acute pancreatitis had normal K2 and K1 values. Five patients with previous hyperlipidemic acute pancreatitis had an abnormally low clearance capacity of exogenous triglycerides, whereas the remaining five had normal removal values. The present study provides new information in the association between hyperlipidemia and acute pancreatitis by showing that even a marked elevation of serum lipid levels should not be invariably considered as the etiological factor of the pancreatic disease, even if other potential causes are not evident.

Acute Disease↗

Frequency and role of apo E phenotype in familial hypercholesterolemia and non-familial hyperlipidemia in the Japanese.

The frequencies of the major apolipoprotein E(apo E) phenotypes in 65 normal, 426 hyperlipidemics, and 92 familial hypercholesterolemic Japanese subjects (FH) were studied, and features of hyperlipidemia compared between non-FH hyperlipidemia and FH. The frequencies of apo E phenotypes 3/3, 4/3, 3/2, 4/4 were almost the same in normal, non-FH hyperlipidemic, and FH subjects. The incidence of apo E7 was about 0.5% of total subjects. In type IV and V hyperlipidemias, incidence of E4/3 was higher than in any other hyperlipidemia. Incidence of E3/2 was also high in types III and V. In type II non-FH hyperlipidemia, incidence of E3/2 in type IIb was higher than in type IIa. VLDL-triglyceride, VLDL-cholesterol, apo C-II, apo C-III, and apo E levels were higher in E3/2 than in E3/3. But, in type IIa FH and type IIb FH, the incidence of E3/2 was the same, and lipid and apolipoprotein levels between 3/2 and 3/3 in FH were the same. These results indicate that allele epsilon 2 may be involved in the retention of VLDL or IDL, but not in FH.

Apolipoproteins E↗

Effectiveness and tolerability of simvastatin plus fenofibrate for combined hyperlipidemia (the SAFARI trial).

Patients with combined hyperlipidemia (elevated triglyceride [TG] levels, elevated low-density lipoprotein [LDL] cholesterol, and multiple lipoprotein abnormalities) are at increased risk for coronary heart disease. We conducted a multicenter (in the United States), randomized, double-blind, active-controlled, 18-week study to determine if combination therapy with simvastatin plus fenofibrate is more effective in reducing elevated TG levels, thus improving the lipoprotein pattern in patients with combined hyperlipidemia compared with simvastatin monotherapy, and to evaluate safety and tolerability. Patients (aged 21 to 68 years) with a diagnosis of combined hyperlipidemia (fasting TG levels >/=150 and </=500 mg/dl, and LDL cholesterol >130 mg/dl) received simvastatin monotherapy (20 mg/day, n = 207) or simvastatin 20 mg plus fenofibrate (160 mg/day) combination therapy (n = 411) for 12 weeks following a 6-week diet and placebo run-in period. From baseline to week 12, median TG levels decreased 43.0% (combination therapy) and 20.1% (simvastatin monotherapy [treatment difference -23.6%, p <0.001]). Mean LDL cholesterol levels decreased 31.2% and 25.8% (treatment difference -5.4%, p <0.001), and high-density lipoprotein cholesterol levels increased 18.6% and 9.7% (treatment difference 8.8%, p <0.001) in the combination therapy versus monotherapy groups, respectively. No drug-related serious adverse experiences were observed. No patient experienced clinical myopathy or severe abnormalities in liver function. Combination therapy with simvastatin 20 mg and fenofibrate 160 mg in patients with combined hyperlipidemia resulted in additional improvement in all lipoprotein parameters measured compared with simvastatin 20 mg monotherapy and was well tolerated. Thus, this combination therapy is a beneficial therapeutic option for managing combined hyperlipidemia.

Adult↗

Prothrombotic markers in familial combined hyperlipidemia: evidence of endothelial cell activation and relation to metabolic syndrome.

BACKGROUND: Familial combined hyperlipidemia (FCHL) is characterized by a varied expression of hypertriglyceridemia and hypercholesterolemia within a family, and a high risk of premature coronary artery disease. The present study evaluated a number of potential prothrombotic markers in familial combined hyperlipidemia, and studied their relationship to the hypercholesterolemic (Fredrickson type IIa) and hypertriglyceridemic (IIb and IV) phenotypes. METHODS AND RESULTS: Selected prothrombotic markers were studied in 68 subjects: 34 hyperlipidemic subjects with familial combined hyperlipidemia and 34 controls. FCHL patients exhibited significantly higher Thrombin-Antithrombin complex (TAT), activated coagulation factor XII (F XIIa), von Willebrand Factor (vWF), Plasminogen Activator Inhibitor-1 (PAI-1) and tissue derived Plasminogen Activator (t-PA) values in comparison to controls. Within the subgroup of familial combined hyperlipidemia subjects, elevated PAI-1 activity and soluble Thrombomodulin levels were particularly associated with features of the metabolic syndrome, including hyperinsulinemia, hypertriglyceridemia and predominance of small dense low density lipoprotein (LDL). CONCLUSIONS: A general pattern of activated blood coagulation and endothelial activation is present in all hyperlipidemic subjects studied, independent of metabolic phenotype. In those familial combined hyperlipidemia subjects with features of the metabolic syndrome, impaired fibrinolysis can provide an additional cardiovascular risk factor.

Adult↗

Effect of macrophage-derived apolipoprotein E on hyperlipidemia and atherosclerosis of LDLR-deficient mice.

LDL receptor-deficient (LDLR(-/-)) mice fed a Western diet exhibit severe hyperlipidemia and develop significant atherosclerosis. Apolipoprotein E (apoE) is a multifunctional protein synthesized by hepatocytes and macrophages. We sought to determine effect of macrophage apoE deficiency on severe hyperlipidemia and atherosclerosis. Female LDLR(-/-) mice were lethally irradiated and reconstituted with bone marrow from either apoE(-/-) or apoE(+/+) mice. Four weeks after transplantation, recipient mice were fed a Western diet for 8 weeks. Reconstitution of LDLR(-/-) mice with apoE(-/-) bone marrow resulted in a slight reduction in plasma apoE levels and a dramatic reduction in accumulation of apoE and apoB in the aortic wall. Plasma lipid levels were unaffected when mice had mild hyperlipidemia on a chow diet, whereas IDL/LDL cholesterol levels were significantly reduced when mice developed severe hyperlipidemia on the Western diet. The hepatic VLDL production rate of mice on the Western diet was decreased by 46% as determined by injection of Triton WR1339 to block VLDL clearance. Atherosclerotic lesions in the proximal aorta were significantly reduced, partially due to reduction in plasma total cholesterol levels (r=0.56; P<0.0001). Thus, macrophage apoE-deficiency alleviates severe hyperlipidemia by slowing hepatic VLDL production and consequently reduces atherosclerosis in LDLR(-/-) mice.

Animals↗

Hyperlipidemia is a major determinant of neointimal formation in LDL receptor-deficient mice.

LDL receptor-deficient (LDLR(-/-)) mice exhibit mild hyperlipidemia on a chow diet but develop severe hyperlipidemia on a high fat diet. In this study, we investigated neointimal formation after removal of the endothelium when LDLR(-/-) mice were fed chow or a Western diet containing 42% fat, 0.15% cholesterol, and 19.5% casein. At 10 weeks of age, female mice underwent endothelial denudation of the left common carotid artery. Two weeks after injury, neointimal formation was barely detectable in the injured vessel when mice developed mild hyperlipidemia on the chow diet. In contrast, neointimal lesions were obvious when mice developed severe hyperlipidemia on the Western diet. Immunohistochemical and histological analyses demonstrated the presence of macrophage foam cells and smooth muscle cells in neointimal lesions. The injured artery also exhibited a significant increase in medial area on the Western diet. Plasma levels of MCP-1 and soluble VCAM-1 were significantly elevated by feeding of the Western diet. These data indicate that hyperlipidemia aggravates neointimal growth in LDLR(-/-) mice by promoting foam cell formation and inflammation.

Animal Feed↗

Plasma triglycerides and type III hyperlipidemia are independently associated with premature familial coronary artery disease.

OBJECTIVES: This study was designed to explore contributions of plasma total triglycerides (TGs) and type III hyperlipidemia to the risk of premature familial coronary artery disease (CAD). BACKGROUND: Although plasma TGs are recognized as a risk factor for CAD, the independence of this association from related risk factors remains controversial. Also, the degree of CAD risk conferred by excess remnants of TG-rich lipoproteins in type III hyperlipidemia remains unclear. METHODS: We analyzed lipids by ultracentrifugation in a series of 653 cases with premature familial CAD (myocardial infarction or revascularization by age 55 years in men or age 65 years in women, with similar onset in at least one other first-degree relative) and in 1,029 control subjects. The relationship of CAD risk to various strata of plasma TGs, high-density lipoprotein (HDL) cholesterol, and type III hyperlipidemia, and interactions among these variables were examined by multiple logistic regression, adjusting for other CAD risk factors. RESULTS: The odds ratio for CAD with elevated plasma TG rose progressively to 11.4 in those with TGs 500 to 799 mg/dl (95% confidence interval 3.4 to 38.0, p < 0.0001) compared with <100 mg/dl, even after correction for HDL cholesterol, other elements of the metabolic syndrome, and other CAD risk factors. Risk of CAD associated with type III hyperlipidemia (found in 3.4% of cases) was also markedly increased independent of other risk factors (odds ratios of 5 to 10 depending on the model, all with p < 0.002). CONCLUSIONS: The association between the plasma TG level and premature familial CAD is strong, graded, and independent. Risk of CAD is also strikingly elevated with type III hyperlipidemia.

Aged↗

Impact of fluvastatin on hyperlipidemia after renal transplantation.

BACKGROUND: Renal transplant recipients are at increased risk of atherosclerotic vascular disease with hyperlipidemia. Many recipients have preexisting cardiovascular disease at the time of transplantation, and immunosuppressive therapy may aggravate existing risk factors or promote development of new risk factors, notably hyperlipidemia and hypertension. Fluvastatin is one of the statins, an HMG-CoA reductase inhibitor, which has been shown to be effective in lowering cholesterol levels. We treated hyperlipidemia after renal transplantation with Fluvastatin for more than 6 months. We attempted to clarify the efficacy of fluvastatin on hyperlipidemia in renal transplant recipients. MATERIALS: Forty-five renal transplant recipients with hyperlipidemia were enrolled in this study. The mean age was 44.2 years, with 23 men and 22 women. Thirty-seven transplantations were from a living related donors and eight from cadaveric donors. Thirty-three recipients were ABO-compatible, seven recipients had minor mismatches, and five recipients were ABO-incompatible. The dose of fluvastatin was 20 mg per day. Levels of total cholesterol (TC), triglyceride (TG), HDL cholesterol (HDL-C), LDL cholesterol (LDL-C), serum creatinine (s-Cr), ALT, ALP, uric acid (UA), hematocrit (Ht), CPK, and blood pressure were examined in all recipients before treatment as well as 1, 3, and 6 months after Fluvastatin administration. RESULTS: The mean levels of TC and TG were significantly reduced from 256, to 224 and 215 mg/dL, and from 188 to 170 and 147 mg/dL at 1 and 6 months after treatment, respectively. The mean levels of HDL-C were 72 mg/dL before treatment, 81 mg/dL at 1 month, and 80 mg/dL at 6 months after treatment. The mean levels of LDL-C were 153 mg/dL before treatment, 145 mg/dL at 1 month, and 145 mg/dL at 6 months after treatment. Fluvastatin significantly produced a reduction rate in TC of 16%, TG of 22%, and LDL-C of 5% after 6 months of treatment, respectively. The mean levels of HDL-C of were increased 10% after 6 months of treatment. The serum creatinine and CPK were not significantly different. There were no clinically significant differences in other factors. No significant adverse effects were observed. CONCLUSIONS: Fluvastatin seemed to be safe and highly effective to control TC, TG, LDL-C, and HDL-C in renal transplant recipients.

Adult↗

Effects of pravastatin on left ventricular mass in patients with hyperlipidemia and essential hypertension.

Left ventricular (LV) mass is a powerful predictor for future cardiovascular events. Epidemiologic studies have shown that hyperlipidemia is associated with higher LV mass. The effects of statin therapy for hyperlipidemia on LV mass have not been studied. To determine the effects of statin therapy on LV mass, we prospectively studied 3 groups of age and body surface area-matched patients: group 1 (n = 20), patients with systemic hypertension and hyperlipidemia treated with pravastatin plus anti-hypertensive drugs; group 2 (n = 20), patients with hypertension and hyperlipidemia treated with hypertensive agents and diet control alone; and group 3 (n = 20), hypertensive patients with normolipidemia treated with antihypertensive agents. A group of controls without hypertension or hyperlipidemia was used for comparison. Echocardiograms were recorded at baseline and after 6-month therapy. All hypertensive groups showed significant decreases in LV mass index after treatment. Group 1 had the greatest decrease in LV mass and it was significantly higher than in groups 2 and 3. Multivariate analysis revealed that regression of LV mass was significantly correlated only with the use of statins and sex (p = 0.005 and 0.01, respectively, R(2) = 0.47). Linear regression analysis in group 1 showed a significant correlation between changes in arterial compliance and LV mass regression (r = 0.57, p = 0.01). Thus, the addition of a statin may have an additional effect on reducing LV mass, independent of lipid-lowering effects.

Echocardiography↗

A means to an end: an overview of a hyperlipidemia outcomes management program.

Quality management and improvement are increasingly important to managed care organizations (MCOs) as competition increases. One key area on which quality improvement programs can focus is MCO activity in helping patients remain healthy. Screening for and treatment of hyperlipidemia are important components of the preventive care of patients who are at risk for coronary heart disease (CHD). This article summarizes the methodology of a three-phase hyperlipidemia outcomes management program being implemented by 27 US health plans. Phase 1 identifies inefficiencies in the clinical management of hyperlipidemia by assessing patients' attainment rates of low-density lipoprotein cholesterol (LDL-C) targets. This information is then used to develop a multifactorial intervention program for CHD prevention in phase 2. The interventions for physicians include provision of treatment algorithms for patients with varying degrees of hyperlipidemia, education programs encouraging appropriate treatment of hyperlipidemia, and academic detailing summarizing phase 1 results and providing applicable literature. In phase 3, patient records are reassessed at least 6 months after the educational intervention. This three-phase program has the potential to improve patient care, reduce unnecessary treatment costs, provide a means of quality improvement, and increase plan value to potential purchasers.

Cholesterol, LDL↗

Secondary causes of hyperlipidemia.

Secondary causes of hyperlipidemia are important to recognize. In fact, hyperlipidemia may be a clue to the presence of an underlying systemic disorder. It may greatly heighten the risk of atherosclerosis with a raised LDL-c, triglyceride-rich lipoprotein excess, and increased lipoprotein(a) as well as lowered HDL-c. The search for secondary causes may provide a clue as to why patients with primary lipid disorders suddenly develop worsening lipid profiles. The point is a crucial one because some acquired causes of hyperlipidemia, such as alcohol, estrogens, steroids, or pregnancy, when superimposed on a primary familial form of hypertriglyceridemia can result in a saturated removal system and a buildup of chylomicrons, which can lead to life-threatening pancreatitis. A convenient way to remember secondary causes is to think of the four D's of diet, drugs, disorders of metabolism, and diseases. Although diets rich in saturated fats and cholesterol are a common cause of the mild hypercholesterolemia seen in our society, alcohol excess and weight gain can explain much of the tendency toward hypertriglyceridemia. Interestingly anorexia nervosa has long been associated with severe but reversible hypercholesterolemia. Several classes of drugs need to be considered as common causes of altered lipid profiles. Glucocorticoids and estrogens elevate triglycerides and raise levels of HDL-c. Anabolic steroids taken orally markedly reduce levels of HDL-c in contrast to injectable testosterone, which does not adversely affect the LDL-to-HDL ratio. Oral contraceptives affect atherosclerotic risk depending on the kind and doses of progestin/estrogen. In those with an underlying primary hypertriglyceridemia and associated obesity, estrogenic medications can depress triglyceride removal mechanisms, leading to the chylomicronemia syndrome and pancreatitis. Antihypertensives have variable effects on lipids and lipoproteins. Although short-term thiazide usage raises cholesterol, triglycerides, and LDL-c, long-term usage is not necessarily associated with significant alterations in lipid levels. Alpha blockers may cause an increase in HDL-c, whereas beta blockers raise triglycerides and lower HDL-c. Sympatholytics, angiotensin converting enzyme inhibitors, and calcium channel blockers are essentially lipid neutral. Retinoids can be associated with increased LDL-to-HDL ratios and occasionally striking elevations in triglycerides. Cyclosporine raises LDL-c and lipoprotein(a). Classes of drugs that may raise HDL-c include cimetidine, antiepileptic drugs, and tamoxifen, but the effect may be seen primarily in women. Hypothyroidism is the most common secondary cause of hyperlipidemia after dietary causes are considered. A thyroxine and TSH level should be obtained on all new cases of clinically important hyperlipidemia.(ABSTRACT TRUNCATED AT 400 WORDS)

Humans↗