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Biomedical subjects

M Seed

Publications and source records attributed to M Seed.

At least 37 records · Page 2Linked to original sources

Factors influencing plasma lipid profiles including lipoprotein (a) concentrations in renal transplant recipients.

Fasting plasma cholesterol, triglycerides, high-density lipoprotein (HDL) and apoprotein (apo) B were elevated in 214 nondiabetic renal transplant recipients when compared to a reference group. Apo (a) was slightly but not significantly lower in transplant recipients (median 118 mg/dl, range 16-1680 vs 130 mg/dl, 10-1176) and this difference could be predicted from Lp (a) isoform analysis. Cholesterol, triglyceride, apo B and apo (a) concentrations correlated negatively with creatinine clearance but none of these parameters showed a significant association with proteinuria. Patients treated with steroids had higher plasma HDL concentrations than those receiving cyclosporin monotherapy (P < 0.01). The use of diuretics was associated with raised triglycerides (P < 0.001) and cholesterol (P < 0.01) and with reduced HDL (P < 0.01) whilst patients receiving beta-blockers had significantly higher triglycerides (P < 0.01) and lower HDL levels (P < 0.02). In multiple regression analysis, age (P < 0.01), creatinine clearance (P < 0.05) and diuretic therapy (P < 0.005) were independent risk factors for increased cholesterol whilst apo (a) levels correlated negatively with creatinine clearance (P < 0.005). These results suggest that impaired renal function, steroids and non-immunosuppressive drugs contribute to lipid abnormalites in renal transplant recipients.

Adrenergic beta-Antagonists↗

Lipid and carbohydrate metabolic risk markers for coronary heart disease and blood pressure in healthy non-obese premenopausal women of different racial origins in the United Kingdom.

Metabolic risk markers for coronary heart disease (CHD) were determined in apparently healthy females of differing racial origins residing in the United Kingdom. The females were of black (n=122), Oriental (n=144), South Asian (n=128), and white (n=271) origin, premenopausal, non-obese, and aged 16-45 years. In comparison to whites, South Asians had lower serum high-density lipoprotein (HDL) cholesterol and HDL2 cholesterol and higher fasting and oral glucose tolerance test plasma insulin responses. Black females had higher fasting plasma and oral glucose tolerance test insulin and lower serum triglyceride and glucose compared with white females. Orientals differed from whites in having higher fasting and oral glucose tolerance test insulin concentrations. Resting systolic or diastolic blood pressures, total serum cholesterol, HDL3 cholesterol, and low-density lipoprotein (LDL) cholesterol did not differ between groups. Whereas previous studies have demonstrated similar differences in representative samples from different ethnic communities, our results clearly demonstrate that differences also exist in young healthy females, individuals considered to have the least risk of CHD.

Adult↗

A common variant in the gene for lipoprotein lipase (Asp9-->Asn). Functional implications and prevalence in normal and hyperlipidemic subjects.

Subjects with combined hyperlipidemia (CHL) were screened for mutations in the lipoprotein lipase (LPL) gene by single-strand conformational polymorphism, and a previously reported G-->A DNA sequence change in exon 2, causing substitution of Asp by Asn at position 9, was identified in 2 individuals. Because this substitution destroys a recognition site for Taq I, pooling of DNA samples, amplification, and digest with Taq I allowed the rapid screening of 1563 healthy individuals and patients of Dutch, Swedish, English, and Scottish origin. In the general populations of all four countries, healthy carriers of the mutation were detected at a frequency of 1.6% to 4.4% (mean, 3.0%; 95% confidence interval, 2.0% to 4.0%). The frequency of carriers was roughly twice as high (range, 4.0% to 9.8%) in selected patients with CHL or type IV hyperlipoproteinemia or in subjects with angiographically assessed atherosclerosis; the frequency was consistently higher in each patient group compared with its matched control group. In 773 healthy men from two general practices in the United Kingdom, 25 carriers and 2 homozygotes for the mutation were identified. In these 27, plasma triglyceride but not plasma cholesterol levels were significantly higher than in noncarriers (2.25 versus 1.82 mmol/L, P < .02), and this difference was maintained in three subsequent annual measurements. Postheparin LPL activity data were available for some carriers and for 7 of 9 individuals from the patient groups, and 6 of 6 individuals from the control groups had LPL activity that was lower than the respective group mean. In vitro mutagenesis and transient expression in COS cells showed that compared with the LPL-Asp9 construct, LPL-Asn9 activity and mass were reduced by 20% to 30% in the culture media. Overall however, LPL-Asn9 had only slightly reduced specific activity (by 18%). Thus, although the precise mechanism of the effect is unclear, the data strongly suggest that the LPL-Asn9 variant is associated with and may play a direct role in predisposing carriers to develop hypertriglyceridemia.

Adult↗

Lipoprotein (a): a prothrombotic risk factor for coronary artery disease.

New data on the interactions between lipoprotein (a) [Lp(a)] and the coagulation-fibrinolytic system, which emphasize the importance of the activity of lysine-binding sites on apolipoprotein (a) [apo(a)], provide an increasingly strong basis for the role of Lp(a) in thrombosis. Further insights into the genetic control of Lp(a) levels show that inherited factors other than the size of the apo(a) gene are important. The clinical relationship between Lp(a) and coronary heart disease has been more firmly established by two further large prospective cohort studies. The consensus that the concentration of Lp(a) does not predict the outcome of thrombolytic therapy still holds, although Lp(a) does affect endogenous fibrinolysis after myocardial infarction. The effect of Lp(a) on mortality should soon be known.

Animals↗

Lipids and lipoprotein(a) as risk factors for vascular disease in patients on renal replacement therapy.

A large cohort of patients on renal replacement therapy were screened for the presence of symptomatic arterial disease affecting the coronary, cerebral or peripheral circulations. Ninety-two of 325 patients were found to have vascular disease. Those with vascular disease had significantly higher median lipoprotein(a) [Lp(a)] levels than those without (38.4 vs 14.2 mg/dl, P < 0.001), with a preponderance of Lp(a) levels greater than 30 mg/dl (58% vs 25% P < 0.001). Apolipoprotein(a) [apo(a)] isoform distribution was similar between the groups, but those with vascular disease had higher Lp(a) levels in the S2, S3/S4 and S4 isoform types. Comparison of 76 matched pairs of patients confirmed elevated Lp(a) levels in those with vascular disease. These patients also had significantly higher total cholesterol (6.66 vs 6.02 mmol/l) and low-density lipoprotein cholesterol (4.49 vs 3.86 mmol/l). Only Lp(a) was independently associated with vascular disease (P = 0.02). Elevated Lp(a) levels are significantly associated with the presence of vascular disease in patients on renal replacement therapy and may constitute another risk factor for the development of such disease in these patients.

Adult↗

Interaction of the lipoprotein lipase asparagine 291-->serine mutation with body mass index determines elevated plasma triacylglycerol concentrations: a study in hyperlipidemic subjects, myocardial infarction survivors, and healthy adults.

A mutation in the lipoprotein lipase (LPL) gene, resulting in the substitution of asparagine by serine at residue 291 (LPL-S291), was found to occur in young survivors of a myocardial infarction from Sweden, combined hyperlipidemic subjects from the United Kingdom, and type III hyperlipidemic subjects from Germany at allelic carrier frequencies no different from those found in companion healthy control subjects (3.63 vs. 3.37; 1.85 vs. 1.60; and 2.00 vs. 1.56%, respectively). In a group of 620 healthy middle-aged men from the United Kingdom with baseline and three subsequent annual lipid measurements, mean plasma triacylglycerol (TG), (but not plasma cholesterol) concentrations in carriers of the mutation were significantly elevated over non-carriers (1.95 vs. 1.61 mmol/l, P = 0.05, and 5.83 vs. 5.65 mmol/l, P = 0.29, respectively). When these healthy control subjects were divided according to tertiles of body mass index (BMI), as expected, non-carriers whose BMI was in the upper two tertiles (BMI > or = 25.0 kg/m2) had higher plasma TG concentrations than those in the lowest tertile (1.90 vs. 1.54 mmol/l), but this difference was much greater in LPL-S291 carriers (2.33 vs. 1.36 mmol/l, P = 0.01, BMI x genotype interaction, P = 0.02). To confirm this effect, a second group of 319 healthy subjects from the United Kingdom was screened for LPL-S291. The allelic frequency of the mutation was found to be 1.88% and the effect on plasma lipid concentrations was very similar to that observed in the first control group (plasma TG, 2.31 vs. 1.27 mmol/l, P < 0.001 for LPL-S291 carriers vs. non-carriers, respectively). As before, those carriers whose BMI was in the top two tertiles for this sample (BMI > or = 23.3 kg/m2) had higher plasma TG concentrations than non-carriers (2.31 vs. 1.42 mmol/l). Thus, the LPL-S291 variant may predispose individuals to elevated plasma TG concentrations under conditions such as increased BMI.

Adolescent↗

Lipoprotein lipase activity in patients with combined hyperlipidaemia.

The aetiology of familial combined hyperlipidaemia remains obscure, with both genetic and environmental factors contributing to the phenotype, which is frequently associated with premature coronary heart disease. We have studied lipoprotein lipase (LPL) activity and hepatic lipase (HL) activity in patients with coronary heart disease to determine whether variation in lipase activities contributes to this phenotype. Forty-one patients (mean age 50 years; 30 male) were selected on the basis of cholesterol levels above 6.5 mmol/l and triglyceride levels above 2.2 mmol/l, with apoprotein B values over the 90th percentile. There was a family history of premature coronary heart disease in 78% and a personal history in 64%, at mean age 44, the patient group therefore predominantly corresponded to the common definition of familial combined hyperlipidaemia, appropriate in the absence of molecular markers. None of the patients was diabetic; hypertension and smoking were not over represented. Blood samples were taken following intravenous administration of heparin (100 IU/kg body wt), and LPL and HL activities were measured. Mean post-heparin LPL was significantly lower in patients than controls 10 min after heparin administration (2.98 +/- 1.04 and 3.86 +/- 0.93 mumol ml-1 h-1, respectively, P = 0.001), and 37% patients had values below the 10th percentile of controls. Both male and female patients had significantly higher HL activities than their respective controls at 5, 10, 20 and 30 minutes post-heparin. As expected, both female patients and controls had lower HL activities than males, although this sex difference did not reach statistical significance in the patient group.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Apolipoprotein E phenotype and lipoprotein(a) in familial hypercholesterolaemia: implication for lipoprotein(a) metabolism.

The mechanisms regulating plasma levels of lipoprotein(a) [Lp(a)] are largely unknown. A two- to three-fold increase in Lp(a) levels in patients with familial hypercholesterolaemia (FH) has implied that LDL receptor activity may be an important factor in determining plasma Lp(a) levels, as it is in determining low-density lipoprotein (LDL) cholesterol concentration. Common apolipoprotein E (apoE) variants also affect plasma LDL cholesterol levels. We therefore examined the effect of the common apoE variants on plasma Lp(a) levels in 149 patients with heterozygous FH. Patients with the apoE2 allele (n = 11) had significantly higher plasma levels of LDL cholesterol compared to those with a apoE3E3 phenotype, while patients with the apoE4 isoform had similar levels. However, there was a significant effect of the apoE2 allele in lowering Lp(a) levels, compared to the apoE3E3 group. The median Lp(a) concentration in patients possessing an apoE2 isoform was 13.1 mg/dl below the median, while in those with an apoE4 allele the median Lp(a) levels were 4.13 mg/dl higher. There was a marked inverse correlation between plasma Lp(a) and LDL cholesterol concentration in the FH patients carrying the apoE2 allele. Our data imply that difference in Lp(a) levels observed between FH patients with different apoE isoforms does not result from altered clearance of Lp(a) via the LDL receptor pathway, and suggest that apoE mediated hepatic up-take, or conversion, of remnant particles may be determining Lp(a) production rate.

Adult↗

Post-menopausal hormone replacement therapy, coronary heart disease and plasma lipoproteins.

At least 20 million postmenopausal women worldwide now use some form of hormone replacement therapy. This figure is increasing because the resistance of the medical community to these therapies is diminishing and because of increasing acknowledgement of the benefits of such therapies on the cardiovascular system. This is a remarkable development for a medication originally used to relieve menopausal symptoms such as hot flushes and to prevent bone loss. Although several mechanisms are now accepted to be involved in this protection from cardiovascular disease, changes in plasma lipoproteins remain a major area of research interest. The main issue in this field, whether the addition of a progestogen to postmenopausal oestrogen ('combined therapy') will diminish the benefits on the cardiovascular system, remains unresolved, but combined therapies have now been formulated that minimize the potentially detrimental effects of progestogens on plasma lipoproteins. Recent findings of interest include the effects of these therapies on plasma lipoprotein (a) concentration and on LDL particle size. Studies of the mechanisms behind such changes are needed.

Animals↗

Postmenopausal hormone replacement therapy, coronary heart disease and plasma lipoproteins.

This review outlines the changes in serum lipoprotein (Lp) concentrations at the menopause. The effect of hormone replacement therapy with estrogen and a variety of progestogens is illustrated by a number of recent studies. Analysis of the effects of estrogen replacement in the primary prevention of coronary heart disease (CHD) is discussed. During the last 4 years, there have been 4 observational studies of the use of estrogen in postmenopausal women with CHD as assessed by coronary angiography. In all of these studies, estrogen has been associated with a reduction in CHD, most strikingly in a study of survival over 10 years. However, there is an overwhelming need for a randomised controlled trial of estrogen for secondary prevention. The role of estrogen in the treatment of type II hyperlipoproteinaemia has been recognised, and a study describing its effect is discussed. Again, there is need for data from well controlled clinical trials to clearly establish the benefits of estrogen therapy. A further aspect for investigation is a study of the non-lipoprotein-mediated effects of estrogen, particularly those on vasomotion. Finally, the intriguing effects of both androgenic and estrogenic steroids on Lp(a) are discussed.

Adult↗

Risk factors for cardiovascular disease in IDDM. A study of identical twins.

Patients with insulin-dependent diabetes mellitus (IDDM) have an excess mortality, predominantly attributable to cardiovascular disease. To determine the effect of IDDM on potential risk factors for cardiovascular mortality, we studied subjects from the British Diabetic Twin Study Group. Forty-five identical twin pairs discordant for IDDM were recruited in addition to 45 matched nondiabetic singleton control subjects. All were selected to be normotensive and to have normal albumin excretion rates. Four variables differed significantly between the diabetic twins and their nondiabetic identical co-twins: diabetic twins had higher systolic blood pressure (sBP) ([mean +/- SD] 127 +/- 17 vs. 123 +/- 18 mmHg, P < 0.05), high-density lipoprotein (HDL) cholesterol (1.36 +/- 0.31 vs. 1.25 +/- 0.29 mM, P < 0.05) and fibrinogen (3.23 +/- 0.81 vs. 2.98 +/- 0.71 mg/ml, P < 0.05) but lower factor VII (114 +/- 34 vs. 122 +/- 31%, P < 0.05). All four of these risk factors were significantly correlated (P < 0.001) within the identical twin pairs, as were the other risk factors. These significant correlations within twins for the risk factors studied reflects the impact of shared genetic and environmental influences. IDDM affects sBP, HDL cholesterol, fibrinogen, and factor VII, but only sBP and fibrinogen are affected adversely.

Adult↗

Does cyclosporin increase lipoprotein(a) concentrations in renal transplant recipients?

Cyclosporin, the immunosuppressant of choice for renal transplant recipients, has been implicated as the cause of abnormalities in serum lipid concentrations in these patients. We have measured serum lipoprotein(a) concentrations and analysed the distribution of apoprotein(a) isoforms in 90 renal transplant recipients receiving cyclosporin and prednisolone (with or without azathioprine), 59 patients receiving azathioprine and prednisolone alone, and 146 non-hyperlipidaemic controls. Cyclosporin-treated patients had significantly higher lipoprotein(a) concentrations (median 170 [interquartile range 55-382] mg/L) than those receiving azathioprine and prednisolone (64 [10-204] mg/L, p = 0.001) or the healthy controls (94 [18-280] mg/L, p = 0.008). The difference between the azathioprine and prednisolone group and the controls was not significant. Although the time since transplantation was significantly shorter for the cyclosporin-treated group, there was no correlation between lipoprotein(a) concentration and time since transplantation (r = -0.13, p = 0.18). Apoprotein(a) phenotyping showed no significant differences in the distribution of apoprotein(a) isoforms between the treatment groups or between patient and control groups. Lipoprotein(a) concentrations are higher in renal transplant recipients treated with cyclosporin than in those maintained on azathioprine and prednisolone. The mechanisms underlying this abnormality remain to be elucidated.

Adult↗

The effect of nicotinic acid and acipimox on lipoprotein(a) concentration and turnover.

This study examines the effect of nicotinic acid (1 g t.d.s.) on serum Lp(a) concentration in a group of patients with type II hyperlipidaemia selected on the basis of a plasma Lp(a) concentration greater than 30 mg/dl. Reductions in total cholesterol, triglyceride, LDL-cholesterol and Lp(a) were 16.3%, 25.5%, 23.7% and 36.4%, respectively, with an increase in HDL cholesterol of 37.3%. The reduction in Lp(a) concentration did not correlate with any other lipoprotein changes. In order to establish the mechanism of the fall in Lp(a) concentration, in vivo turnover of autologous Lp(a) was studied in three subjects before and whilst taking nicotinic acid. The fractional catabolic rate in Lp(a) was unaltered in the subjects on therapy, indicating that nicotinic acid did not increase catabolism of Lp(a) but decreased the synthetic rate. Since nicotinic acid was poorly tolerated we examined the effect of acipimox, an analogue of nicotinic acid on lipoproteins using a placebo controlled double-blind crossover design in a group of hyperlipidaemic patients again selected with plasma Lp(a) concentration greater than 30 mg/dl. Acipimox was better tolerated than nicotinic acid but the percentage changes in lipoprotein concentrations were smaller.

Adult↗

Effect of insulin-dependent diabetes mellitus on lipids and lipoproteins: a study of identical twins.

1. Forty-five identical twin pairs, discordant for insulin-dependent diabetes mellitus, were studied with respect to their serum lipid (high-density lipoprotein, low-density lipoprotein, total cholesterol and triacyl-glycerol) and apoprotein [apoprotein A-I, apoprotein B and lipoprotein (a)] concentrations and apoprotein (a) phenotypes. The twins were compared with an age- and sex-matched non-diabetic control group. 2. A significantly higher value was found only for high-density lipoprotein cholesterol in the diabetic twins of the female twin pairs. 3. Highly significant correlations existed between the twin pairs for all lipids and lipoproteins measured, particularly lipoprotein (a), for which identical apoprotein (a) isoforms were also found. 4. Correlations existed between the non-diabetic twins and the control subjects for high-density lipoprotein cholesterol and apoprotein A-I, probably due to the rigorous matching of control subjects. 5. The similarity between values for lipids and lipoproteins in the non-diabetic twins and control subjects suggested no effect of a genetic susceptibility to insulin-dependent diabetes mellitus. The differences in lipoproteins we describe for the identical twins discordant for insulin-dependent diabetes mellitus, in whom there was no evidence of a raised urinary albumin excretion rate, does not appear to explain the excess mortality from cardiovascular disease reported in patients with this disease.

Adult↗

Six DNA polymorphisms in the low density lipoprotein receptor gene: their genetic relationship and an example of their use for identifying affected relatives of patients with familial hypercholesterolaemia.

We have determined the relative allele frequency and estimated linkage disequilibrium between six DNA polymorphisms of the low density lipoprotein (LDL) receptor gene. Polymorphisms were detected using the enzymes SfaNI, TaqI, StuI, HincII, AvaII, and NcoI after DNA amplification by the polymerase chain reaction. Strong linkage disequilibrium was detected between many of the pair wise comparisons in a sample of 60 patients heterozygous for familial hypercholesterolaemia (FH). Using the enzymes HincII, NcoI, and SfaNI, 85% of patients were heterozygous for at least one polymorphism and thus potentially informative for cosegregation studies. The polymorphisms were used to follow the inheritance of the defective allele of the LDL receptor gene in the relatives of a patient with FH. Assays of LDL receptor activity on lymphoblastoid cell lines from two members of the family was used to confirm that the proband, but not the hypercholesterolaemic brother, had a defect in the LDL receptor. In the family, none of the children had inherited the allele of the LDL receptor gene inferred to be defective. The problems associated with this cosegregation approach to identify relatives of patients with a clinical diagnosis of FH are discussed.

Alleles↗

Identification of recurrent and novel mutations in exon 4 of the LDL receptor gene in patients with familial hypercholesterolemia in the United Kingdom.

A group of 200 patients with familial hypercholesterolemia (FH) who were attending lipid clinics in the London area have been screened for four known point mutations and a microdeletion in exon 4 of the low density lipoprotein receptor gene by polymerase chain reaction (PCR) amplification of genomic DNA and either enzyme digestion of the product or hybridization with allele-specific oligonucleotides. A point mutation of Ser156-->Leu that was initially described in a Puerto Rican family was found in one patient of Polish origin on a different haplotype from that described originally and thus is likely to have occurred independently. A 3-bp deletion that causes deletion of amino acid Gly197 was found in six of the patients, who were all of Jewish origin and who shared the same haplotype for the mutant allele. A mutation of Asp206-->Glu that has been described in the Afrikaner population was found in three patients, two of UK origin and one a recent immigrant from South Africa. In all cases the haplotype of the mutant allele was compatible with that described in the original patient. The mutations at Asp154 reported in South African patients and at Glu207 reported in French Canadian patients were not detected in this sample. However, two additional mutations have been identified in this sample: the first, a 2-bp deletion in codon 206 that was found in five patients, all of British ancestry, and the second, a point mutation in a single patient of Irish origin that creates a stop codon at residue Cys210.(ABSTRACT TRUNCATED AT 250 WORDS)

Alleles↗

Lipoprotein (a) in patients on maintenance haemodialysis and continuous ambulatory peritoneal dialysis.

Lipoprotein (a) concentrations and apoprotein (a) isoforms were measured in 99 haemodialysis and 79 peritoneal dialysis patients and compared with a normal population. Peritoneal dialysis patients demonstrated a threefold and haemodialysis a twofold increase in median Lp(a) values compared to controls (P < or = 0.001). The peritoneal dialysis group had significantly more patients with Lp(a) values greater than 30 mg/dl compared to controls, (53% versus 22% P < or = 0.001). In addition both patient groups demonstrated significant hypertriglyceridaemia (P < or = 0.001), reduction in HDL (P < or = 0.001) and elevation of the cholesterol/HDL ratio (P < or = 0.001) compared with controls. Peritoneal dialysis patients also demonstrated significant hypercholesterolaemia (P < or = 0.003). Lipoprotein (a) concentrations are considerably elevated in patients on maintenance dialysis and this occurs in addition to the typical lipoprotein disturbances. This elevation may increase vascular risk, particularly in the peritoneal dialysis group who also have hypercholesterolaemia and reduced HDL.

Arteriosclerosis↗