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Biomedical subjects

E Manzato

Publications and source records attributed to E Manzato.

At least 55 records · Page 3Linked to original sources

Atherogenic factors in diabetes: the role of lipoprotein metabolism.

In diabetes, altered lipoprotein metabolism is one of the factors which accelerates the process of atherogenesis. In NIDDM, plasma triglyceride levels are increased and HDL levels are, independently, decreased. In order to increase HDL levels, good metabolic control and prolonged, near perfect, control of lipoprotein metabolism are required. In NIDDM, there is a direct relationship between lipoprotein lipase activity and HDL levels. Optimal insulin therapy gives improved diabetic control, and in the long term will improve the lipoprotein profile in these diabetics. Factors affecting lipid metabolism are discussed, and the importance of improving the lipoprotein profile in diabetics is emphasized.

Arteriosclerosis↗

Lipoprotein modifications during dietary treatment in patients with primary type V hyperlipoproteinaemia.

Type V hyperlipoproteinaemia is a disorder of lipid transport characterized by the accumulation in serum of chylomicrons and very low density lipoproteins. The purpose of the study was the analysis of serum lipids and lipoproteins by ultracentrifugation in nine patients with primary type V hyperlipoproteinaemia before and during dietary treatment. After 30 days of balanced isocaloric diet mean serum triglycerides fell from 25.4 +/- 15.0 (mean +/- SD) to 2.8 +/- 1.7 mmol l-1. At the same time the chylomicrons and the very low density lipoproteins of flotation rate higher than 100 disappeared from the serum while the remaining very low density lipoproteins maintained unaltered their normal protein-lipid composition. After 30 days the low density lipoproteins increased significantly in concentration (from 1.6 +/- 0.8 to 4.1 +/- 1.1 mmol l-1 cholesterol) and their percentage content of cholesterol and triglyceride was increased and reduced, respectively. The highest concentration of intermediate density lipoprotein cholesterol was observed after 15 days of treatment (1.2 +/- 0.6 mmol l-1. The abnormally low concentrations and the physicochemical properties of the high density lipoproteins remained unchanged throughout the study (from 0.6 +/- 0.2 to 0.8 +/- 0.2 mmol l-1 cholesterol concentration) and no high density lipoproteins two (HDL2) were observed at any time. The effects of this treatment were an increase in low density and marginal change in high density lipoproteins which are considered, respectively, a positive and a negative risk factor for atherosclerosis.

Adult↗

Apolipoprotein C-II deficiency syndrome. Clinical features, lipoprotein characterization, lipase activity, and correction of hypertriglyceridemia after apolipoprotein C-II administration in two affected patients.

Two patients (brother and sister, 41 and 39 yr of age, respectively) have been shown to have marked elevation of plasma triglycerides and chylomicrons, decreased low density lipoproteins (LDL) and high density lipoproteins (HDL), a type I lipoprotein phenotype, and a deficiency of plasma apolipoprotein C-II (apo C-II). The male patient had a history of recurrent bouts of abdominal pain often accompanied by eruptive xanthomas. The female subject, identified by family screening, was asymptomatic. Hepatosplenomegaly was present in both subjects. Analytical and zonal ultracentrifugation revealed a marked increase in triglyceride-rich lipoproteins including chylomicrons and very low density lipoproteins, a reduction in LDL, and the presence of virtually only the HDL3 subfraction. LDL were heterogeneous with the major subfraction of a higher hydrated density than that observed in plasma lipoproteins of normal subjects. Apo C-II levels, quantitated by radioimmunoassay, were 0.13 mg/dl and 0.12 mg/dl, in the male and female proband, respectively. A variant of apo C-II (apo C-IIPadova) with lower apparent molecular weight and more acidic isoelectric point was identified in both probands by two-dimensional gel electrophoresis. The marked hypertriglyceridemia and elevation of triglyceride-rich lipoproteins were corrected by the infusion of normal plasma or the injection of a biologically active synthesized 44-79 amino acid residue peptide fragment of apo C-II. The reduction in plasma triglycerides after the injection of the synthetic apo C-II peptide persisted for 13-20 d. These results definitively established that the dyslipoproteinemia in this syndrome is due to a deficiency of normal apo C-II. A possible therapeutic role for replacement therapy of apo C-II by synthetic or recombinant apo C-II in those patients with severe hypertriglyceridemia and recurrent pancreatitis may be possible in the future.

Adult↗

Modifications of plasma lipoproteins after lipase activation in patients with chylomicronemia.

Lipoprotein lipase (LPL) and hepatic lipase (HL) are enzymatic activities involved in lipoprotein metabolism. The purpose of this study was to analyze the physicochemical modifications of plasma lipoproteins produced by LPL activation in two patients with apoC-II deficiency syndrome and by HL activation in two patients with LPL deficiency. LPL activation was achieved by the infusion of normal plasma containing apoC-II and HL was released by the injection of heparin. Lipoproteins were analyzed by ultracentrifugation in a zonal rotor under rate flotation conditions before and after lipase activation. The LPL activation resulted in: a reduction of plasma triglycerides; a reduction of fast-floating very low density lipoprotein (VLDL) concentration; an increase of intermediate density lipoprotein (IDL), which maintained unaltered flotation properties; an increase of low density lipoproteins (LDL) accompanied by modifications of their flotation rates and composition; no significant variations of high density lipoprotein (HDL) levels; and an increase of the HDL flotation rate. The HL activation resulted in: a slight reduction of plasma triglycerides; a reduction of the relative triglyceride content of slow-floating VLDL, IDL, LDL2, and HDL3 accompanied by an increase of phospholipid in VLDL and by an increase of cholesteryl ester in IDL; and a reduction of the HDL flotation rate. These experiments in chylomicronemic patients provide in vivo evidence that LPL and HL are responsible for plasma triglyceride hydrolysis of different lipoproteins, and that LPL is particularly involved in determining the levels and physicochemical properties of LDL. Moreover, in these patients, the LPL activation does not directly change the HDL levels, and LPL or HL does not produce a step-wise conversion of HDL3 to HDL2 (or vice versa) but rather modifies the flotation rates of all the HDL molecules present in plasma.

Adult↗

Abnormal low density lipoprotein metabolism in apolipoprotein E deficiency.

Apolipoprotein(apo) E deficiency is an inherited disease characterized by type III hyperlipoproteinemia and less than 1% normal plasma apoE concentration. The role of apoE in LDL metabolism was investigated by quantitating the metabolism of radiolabeled normal and apoE-deficient LDL in both normal and apoE-deficient subjects. ApoE deficiency resulted in an accumulation of plasma IDL, and a decreased synthesis of LDL consistent with a block in the conversion of IDL to LDL. The LDL isolated from the apoE-deficient patient was similar to normal LDL in hydrated density, size, and composition. However, the apoE-deficient LDL was kinetically abnormal with delayed catabolism in both normal subjects and the apoE-deficient patient. In addition, the catabolism of normal LDL in the apoE-deficient subject was increased. These results were interpreted as indicating that apoE is necessary for the conversion of IDL to LDL and the formation of kinetically normal LDL. The rapid catabolism of normal LDL in the apoE-deficient patient suggests an up-regulation of the hepatic LDL receptor pathway. Based on these results, apoE is proposed to play an important role in the conversion of IDL to LDL, the formation of kinetically normal LDL, and the regulation of LDL receptor function.

Adult↗

Characterization with zonal ultracentrifugation of low-density lipoproteins in type V hyperlipoproteinemia.

Low-density lipoproteins (density = 1.019-1.063 g/ml) were isolated in 10 subjects with type V hyperlipoproteinemia by ultracentrifugation in a zonal rotor under rate flotation conditions. Plasma LDL concentrations in these patients were extremely reduced, as well as being heterogeneous, and two different subclasses consisting of LDL2 (density = 1.019-1.045 g/ml) and LDL3 (density = 1.045-1.063 g/ml) were observed. LDL2 and LDL3 have similar electrophoretic mobilities in beta position in agarose gel, and their diameters, calculated from gel filtration studies, were inversely proportional to their densities. LDL2 and LDL3 have a mean hydrated density of 1.034 and 1.054 g/ml, respectively. In comparison with normal LDL2, the LDL2 and LDL3 of hypertriglyceridemic subjects are particularly rich in triacylglycerols and poor in cholesteryl esters and free cholesterol, while they have an increasing amount of proteins. The protein moiety is composed almost exclusively of apolipoprotein B-100 in IDL, LDL2 and LDL3 ; in addition, IDL also contain apolipoprotein C peptides. This characterization of LDL heterogeneity in type V hyperlipoproteinemia should be considered in interpreting kinetic data in human normal and pathological lipid metabolism and in evaluating the atherogenic risk of hypertriglyceridemia.

Adult↗

The plasma lipoproteins in familial chylomicronemia. Analysis by zonal ultracentrifugation.

Familial chylomicronemia is a rare genetic disorder attributable to the absence of lipoprotein lipase activity or the absence of apo-CII, i.e., the cofactor for the same enzyme. Plasma lipoproteins were analyzed by zonal ultracentrifugation under rate flotation conditions in four patients with lipoprotein lipase deficiency and two patients with apo-CII deficiency. Lipoproteins of density less than 1.006 gm/ml, and particularly lipoproteins with Sf greater than 100, were present in very high concentrations. Low levels of density greater than 1.006 gm/ml lipoproteins were observed. This fraction was composed of some different and discrete lipoprotein populations: intermediate-density lipoproteins (in three of six patients, density = 1.006 to 1.019 gm/ml); low-density lipoprotein LDL2 (in all patients, density = 1.019 to 1.045 gm/ml); low-density lipoprotein LDL3 (in all patients, density = 1.045 to 1.063 gm/ml); high-density lipoprotein HDL2 (in four of six patients); and high-density lipoproteins HDL3 (in all patients). LDL3 was never observed in normal participants by means of zonal ultracentrifugation; this subclass of low-density lipoproteins seems to correspond to LDL particles of very low Sf (2 to 5) previously identified by analytical ultracentrifugation in patients with severe hypertriglyceridemia. LDL3 was isolated by means of zonal ultracentrifugation as a single and discrete peak in all patients. Lipoproteins of density greater than 1.006 gm/ml were rich in triglycerides and poor in cholesterol in comparison with normal lipoproteins. The heterogeneity of low-density lipoproteins (particularly the appearance of LDL3), low levels of total high-density lipoproteins, and lower HDL3 flotation rate than normal are typical aspects of serum lipoproteins in these patients. No significant differences in the lipoprotein profiles of the patients with lipoprotein lipase deficiency in comparison with patients with apo-CII deficiency were found. In both groups of patients, the plasma lipoproteins profile and the altered lipoprotein composition could be related to the impaired catabolism of triglyceride-rich lipoproteins caused by the absence of lipoprotein lipase activity.

Apolipoprotein C-II↗

Mediastino-abdominal lipomatosis: deep accumulation of fat mimicking a respiratory disease and ascites. Clinical aspects and metabolic studies in vitro.

We report on clinical and metabolic studies of a newly delineated lipomatosis, characterised by an abnormal mediastinal and abdominal accumulation of fat, without obesity. The clinical features, which occurred in all the patients studied, are: Exertional dyspnoea due to a space-occupying mediastinal accumulation of fat, without evidence of cardiac or pulmonary disease. A pseudo-ascitic abdominal enlargement, due to intra- and retroperitoneal accumulation of fatty tissue. Insulin-independent diabetes mellitus. Type IV hyperlipidaemia and elevated levels of plasma uric acid were observed in four patients. Intra-abdominal lipomatous tissue, obtained during laparoscopy from four patients, demonstrated a reduced lipolytic response to beta-adrenergic stimulation. Thus, fat deposition in the abdominal and mediastinal areas could be causally related to defective lipid mobilization in lipomatocytes. Lipoprotein lipase activity in abdominal adipose tissue were normal in two patients (10.0 and 10.6 nmol/g/min) and markedly elevated in another two patients (37.3 and 49.9 nmol/g/min), as compared with controls (12.7 +/- 2.1 nmol/g/min). When expressed on per cell basis, LPL activity in lipomatous tissue was significantly higher than in control tissue (3.21 +/- 1.1 nmol/10(5) cell/min vs 0.92 +/- 0.16 nmol/10(5) cell/min). Lipoprotein fractionation did not demonstrate consistent modification of the serum lipoprotein pattern. HDL and HDL2 cholesterol values were reduced, even in patients with elevated LPL activity in adipose tissue.

Abdominal Neoplasms↗

Characterization of hyperlipidemia in two patients with analbuminemia.

The results of plasma lipid and lipoprotein analysis in two related patients, brother (R.U.) and sister (R.R.) with analbuminemia, and three first-degree relatives (parents and sister) are reported. Both patients showed a remarkable increase in cholesterol and phospholipid levels, and there was a corresponding increase in serum apo B and apo A-I. This hyperlipidemia is due to a selective increase in LDL and HDL concentrations. R.U. showed an increase in both HDL2- and HDL3-cholesterol, R.R. only in HDL3-cholesterol. VLDL concentration was reduced in R.U. and normal in R.R. The plasma lipoprotein electrophoretic pattern did not correspond to any of the phenotypes in Fredrickson's classification. Composition of the different lipoprotein fractions was normal in the patients and family members. Serum FFA level in R.R. was very low. An increase in the plasma protein fractions, particularly the transport fractions, was confirmed in both patients. The possible pathophysiology of the hypercholesterolemia in these patients is discussed. Unlike other reported cases, clinical signs of atherosclerotic complications were absent.

Adult↗

Relationship between triglyceride-rich lipoprotein (chylomicrons and VLDL) and HDL2 and HDL3 in the post-prandial phase in humans.

In order to evaluate the relationship between triglyceride-rich lipoproteins (chylomicrons and VLDL) and HDL during alimentary lipaemia, 12 healthy volunteers, 6 male and 6 female (aged 20--40 yrs), were studied. Cholesterol, phospholipid, triglyceride and protein were evaluated in whole serum, VLDL, LDL and HDL (successively subfractionated in HDL2 and HDL3). Blood samples were collected in a fasting state, 4.5 and 9 h after a 1500 calorie meal (20% protein, 40% carbohydrate, 40% fat). A striking increase in triglyceride-rich lipoproteins after 4.5 h was observed in both sexes, but was more pronounced in males. An increase in phospholipid and triglyceride as well as a slight reduction in cholesterol was evident in HDL after 4.5 h. At the same time both lipids and proteins were decreased in HDL3 and increased in HDL2. This phenomenon is more evident in females, who showed a significantly higher basal HDL2 level. These results suggest a possible metabolic relationship in the post-prandial phase between triglyceride-rich lipoproteins and HDL, and an inverse correlation between HDL2 and HDL3.

Adult↗

Lipoprotein-X and diagnosis of cholestasis: comparison with other biochemical parameters and liver biopsy.

The presence or absence of histological signs of cholestasis (on the basis of liver specimens obtained by means of liver biopsy) was compared with total bilirubin, alkaline phosphatase, gamma-glutamyl transpeptidase, ornithine carbamoyltransferase, serum glutamic oxaloacetic transaminase levels and LP-X test in 157 patients suffering from different liver diseases. The LP-X test was positive in 93% of the 59 cases in whom histological evidence of cholestasis was observed and negative 95% of the 98 cases in whom histological examination was negative. LP-X concurs more frequently with the histological picture than do total bilirubin and alkaline phosphatase. These data confirm that LP-X test is more specific than the tests traditionally used to demonstrate or exclude cholestasis. An increment in gamma-GT levels was observed in 97% of the patients with a positive LP-X test. These clinical results have been discussed in the light of recent data regarding the mechanism of lipoprotein-X formation and the possible relationships between LP-X and gamma-glutamyl transpeptidase.

Adolescent↗

Long-term trial with colestipol plus clofibrate in familial hypercholesterolemia.

Twenty subjects with familial hypercholesterolemia (12 Type IIa and 8 Type IIb), previously treated with Colestipol for 16 months, were subjected to therapy with Colestipol (15 g/day) + clofibrate (2 g/day) for 15 months. During the second treatment period these patients continued to follow the isocaloric hypocholesterolemic diet initiated during the original trial. In Type IIa patients, the association of these drugs enhanced the decrease in plasma cholesterol levels. The total mean decrease was -40 +/- 17 mg/dl (P less than 0.05). In Type IIb patients, on the other hand, the association of clofibrate with Colestipol induced an increase in plasma cholesterol levels. The total mean increase was +24 +/- 7 mg/dl (P less than 0.05). A markedly significant decrease in plasma triglyceride levels was observed in this group (- 107 +/- 30; P less than 0.01). These results seem to indicate that, in Type IIa, clofibrate increased the resin's hypocholesterolemic effect. In Type IIb, on the other hand, the association of these drugs did not seem to be indicated since a marked hypotriglyceridemic effect was accompanied by an increase in plasma cholesterol levels. These results are briefly discussed in the light of recent data obtained on the effects of Colestipol and clofibrate on lipoprotein metabolism.

Adult↗

Prevalence of coronary artery disease and peripheral artery disease in patients with different types of primary hyperlipidemia.

The prevalence of coronary artery disease (CAD) and peripheral artery disease (PAD) was studied in 280 (203 males, 77 females) patients with different types of primary hyperlipoproteinemia. In primary hyperbetalipoproteinemia the prevalence of CAD (45% for Type IIa and 47% for Type IIb) is significatly higher than that in the other types of hyperlipoproteinemia (38% for Type IV and 17% for Type V). On the other hand, PAD prevalence is much higher in hypertriglyceridemia (21% in Type IIb and 20% in Type V) than in hypercholesterolemia alone (9% in Type IIa). These results suggest ths atherosclerotic complications are concerned. Moreover, the high frequency of PAD found in hypertriglyceridemia can be related to the high occurrence of diabetes in these patients. The effects of other major risk factors of atherosclerosis (smoking and hypertension) were also evaluated. Our results indicate that the association of hypercholestolemia and hypertension is more dangerous than the co-occurence of hypercholesterolemia and smoking.

Adult↗

Formation of lipoprotein-X. Its relationship to bile compounds.

In this study we have demonstrated that in native bile, lipids are organized in the form of a lipoprotein (bile LP) carrying albumin as apoprotein. The lipid composition of bile LP is almost identical to lipoprotein-X (LP-X, the characteristic lipoprotein of cholestasis). However, it differs from LP-X inits protein/lipid ratio and immunological and electrophoretic characteristics. Bile lipoprotein can be converted into "LP-X-like" material in vitro by adding albumin or serum to native bile. The LP-X-like material formed in vitro has physicochemical and chemical characteristics similar or identical to LP-X isolated from serum. As bile lipoprotein can be converted into LP-X-like material by the addition of albumin to bile, LP-X can be converted into bile-LP-like particles by adding bile salts to a LP-X-positive serum. Furthermore, experimental connection of the common bile duct to the vena cava is followed after a few hours by the appearance of LP-X-like material in the plasma. These facts taken together strongly suggest that bile LP is a precursor lipoprotein for LP-X and that it refluxes into the plasma pool under cholestatic conditions.

Animals↗

Improvement of electroimmunoassay for apolipoproteins B and A-I. (Preliminary observations in postprandial phase).

A reliable method for determining serum apoprotein levels is an essential condition for investigating the role of apoproteins in atherogenesis. Electroimmunoassay according to Laurell has been studied and applied with some modifications for the determination of the two main apoproteins: Apo A-I and Apo B. Apo B immunoplates containing 0.4% v/v of rabbit anti-Apo B antiserum were processed for 4 h at 10 V/cm. Samples were incubated at 52 degrees C for 3 h, diluted and then 10 microliter were seeded in each well. Apo A-I immunoplates (8% v/v of sheep antiserum) were processed for 24 h at 2 V/cm. Agarose gel concentration, exsiccation procedure and staining were the same for both apoproteins. The method was standardized employing a secondary standard consisting of a serum pool obtained from normal subjects. Apo A-I and Apo B levels of the pool have been previously determined employing as primary standards the HDL3 (1.120-1.230 g/ml) and the LP-B (1.035-1.050 g/ml) fractions, respectively, which were isolated by preparative ultracentrifugation. Preliminary observations from a study on 20 healthy volunteers with normal lipid levels revealed different apoprotein levels in young men and women and significant differences between postmenopausal women and women in the fertile age.

Apolipoprotein A-I↗