Search PubMed⌕ Search

Biomedical subjects

A Inazu

Publications and source records attributed to A Inazu.

50 records · Page 3Linked to original sources

Reduction of lipoprotein(a) by LDL-apheresis using a dextran sulfate cellulose column in patients with familial hypercholesterolemia.

Lipoprotein(a) (Lp(a)) was eliminated by LDL-apheresis using a dextran sulfate cellulose column in 3 homozygous and 10 heterozygous familial hypercholesterolemic patients. Immediately after LDL-apheresis by the LA-15 system (continuous LDL apheresis), there were significant reductions in Lp(a) concentrations (28.6 +/- 11.8 mg/dl (mean +/- S.E.) to 9.6 +/- 5.6 mg/dl (P < 0.01)), and in LDL-cholesterol concentrations (156 +/- 32 mg/dl to 48 +/- 18 mg/dl (P < 0.01)). Immediately following LDL-apheresis, Lp(a) and LDL-cholesterol were reduced by 67.4% +/- 11.6% and 68.3% +/- 11.8%, respectively. The removal of Lp(a) paralleled that of LDL-cholesterol. The reduced levels of Lp(a) nearly returned to baseline within 7 days. In 6 of the heterozygous FH patients the rates of recovery of LDL cholesterol and Lp(a) were calculated, according to Apstein's equation after discontinuing lipid altering drug treatment for 4 weeks. Mean constant k values of LDL cholesterol and Lp(a) were 0.354 (range: 0.136-0.752) and 0.427 (range 0.112-0.933), respectively. The average concentration during the 7 days following LDL-apheresis was calculated. Average reductions were 28% in LDL cholesterol and 18% in Lp(a). Pravastatin treatment, which continued for 4 weeks, significantly decreased LDL cholesterol (P < 0.01); however, before LDL-apheresis pravastatin treatment significantly increased Lp(a) levels (P < 0.05) in a small number (n = 6) of the FH patients, who had been regularly treated with LDL-apheresis. These results suggest that LDL-apheresis using the dextran sulfate cellulose column is an effective treatment to reduce levels of serum Lp(a) and LDL proportionally. This therapy may be of value in the prevention and regression of coronary artery disease in FH patients.

Adolescent↗

[New approach to pathogenesis of genetic hyperlipoproteinemias].

Genetic hyperlipoproteinemias are produced by defects or abnormalities of several enzymes, apolipoproteins and transfer proteins relating to lipoprotein metabolism. Abnormalities of the LDL receptor cause familial hypercholesterolemia (FH) and the deficiency of cholesteryl-ester transfer protein (CETP) causes familial hyperalphalipoproteinemia. Here, abnormalities of the LDL-receptor genes and CETP gene are described. More than 70 mutants of LDL-receptor gene have been reported, and we discovered 4 mutants in the Hokuriku district of Japan. Compared with FH-Tonami-1, FH-Tonami-2 showing a partial defect of the LDL-binding domain of the receptor, is a genetically determined mild type of FH. Only 10% of the LDL receptor abnormalities in FH have been clarified, and the causes of the remaining 90% are unknown at present. CETP catalyzes the transfer of cholesteryl ester from HDL to other lipoproteins. We found a familial hyperalphalipoproteinemia produced by the CETP deficiency. A point mutation in the splice donor site of intron 14 in the CETP gene was found in all Japanese patients with CETP deficiency. CETP deficiency produces an antiatherogenic lipoprotein profile in high HDL-cholesterol level and low IDL- and LDL-cholesterol levels. We developed a rapid screening method for the splicing defect of CETP gene, by means of primer-specific restriction map modification. The frequency of the mutated allele in the general population was estimated to be 0.81%, and the mutant was frequent in Japanese subjects with hyperalphalipoproteinemia. In summary, the detection of gene abnormalities is essential for understanding lipoprotein abnormalities and clinical manifestations in genetic hyperlipoproteinemias.

Adult↗

Alternative splicing of the mRNA encoding the human cholesteryl ester transfer protein.

The plasma cholesteryl ester transfer protein (CETP) is known to facilitate the transfer of lipids between plasma lipoproteins. The human CETP gene is a complex locus encompassing 16 exons. The CETP mRNA is found in liver and small intestine as well as in a variety of peripheral tissues. While the CETP cDNA from human adipose tissue was being cloned, a variant CETP cDNA was discovered which excluded the complete sequence encoded by exon 9, but which was otherwise identical to the full-length CETP cDNA, suggesting modification of the CETP gene transcript by an alternative RNA splicing mechanism. RNase protection analysis of tissue RNA confirmed the presence of exon 9 deleted transcripts and showed that they represented a variable proportion of the total CETP mRNA in various human tissues including adipose tissue (25%), liver (33%), and spleen (46%). Transient expression of the exon 9 deleted cDNA in COS cells or stable expression in CHO cells showed that the protein encoded by the alternatively spliced transcript was inactive in neutral lipid transfer, smaller, and poorly secreted compared to the protein derived from the full-length cDNA. Endo H digestion suggested that the inactive, cell-associated protein was present within the endoplasmic reticulum. The experiments show that the expression of the human CETP gene is modified by alternative splicing of the ninth exon, in a tissue-specific fashion. The function of alternative splicing is unknown but could serve to produce a protein with a function other than plasma neutral lipid transfer, or as an on-off switch to regulate the local concentration of biologically active protein.

Adipose Tissue↗

Enhanced cholesteryl ester transfer protein activities and abnormalities of high density lipoproteins in familial hypercholesterolemia.

Cholesteryl ester transfer protein may play a role in the cholesteryl ester metabolism between high density lipoproteins (HDL) and apolipoprotein B-containing lipoproteins. To investigate relationship between HDL and cholesteryl ester transfer protein (CETP) activity in the development of atherosclerosis, the present study has focused on CETP activity in the patients with familial hypercholesterolemia (GH). HDL-C and HDL-C/apo A-I mass ratio in heterozygous FH were lower than those in normolipidemic controls. There was a 2-fold increase in total CETP activity in incubated FH serum compared with normolipidemic controls. Assays for CETP activity in the lipoprotein deficient serum (d greater than 1.215 g/ml) were carried out by measuring the transfer of radioactive cholesteryl ester from HDL (1.125 less than d less than 1.21 g/ml) to LDL (1.019 less than d less than 1.060 g/ml). CETP activities in heterozygous FH (79 +/- 4 nmol/ml/h) was significantly higher than those in normolipidemic controls (54 +/- 6 nmol/ml/h). The increased total cholesteryl ester transfer mainly results from increased CETP activity in the d greater than 1.215 g/ml, possibly reflecting an increase in CETP mass in serum. Increased CETP activity in the d greater than 1.215 g/ml was correlated positively with IDL-cholesterol/triglyceride mass ratio (r = 0.496, p less than 0.01), and negatively with HDL-cholesterol/apo A-I mass ratio (r = -0.334, p less than 0.05). These results indicate that the enhanced CETP activities may contribute to increase risk for developing atherosclerosis in FH by changing the distribution of cholesteryl ester in serum lipoproteins.

Adult↗

Serum lipoprotein lipid concentration and composition in homozygous and heterozygous patients with cholesteryl ester transfer protein deficiency.

Six homozygous, 10 heterozygous and 8 unaffected subjects in a CETP deficient family confirmed by CETP gene analysis were studied to characterize serum lipoproteins separated by ultracentrifugation, and to examine the relations between CETP levels and lipoprotein lipid concentration and composition. The serum CETP levels were measured by radioimmunoassay using 125I-labeled monoclonal antibodies (TP2). The serum CETP levels in the homozygotes were undetectable and those in the heterozygotes were significantly lower than those in the unaffected subjects (1.5 +/- 0.1 vs. 2.2 +/- 0.5 microgram/ml, P less than 0.01). In the HDL fraction, esterified cholesterol (EC) levels in the homozygotes were significantly increased (P less than 0.01), and those in the heterozygotes were slightly increased (n.s.), in comparison with those in the unaffected and the normolipidemic controls. The EC levels in the IDL fractions were lower in the homozygotes than in the normolipidemic controls. The EC/triglyceride (TG) molar ratios in IDL, the fraction obtained from the homo- and heterozygotes, were lower than those from the unaffected subjects (P less than 0.01 and less than 0.01, respectively), and the EC/TG ratios in the HDL fraction obtained from the homo- and heterozygotes were higher than those from the unaffected subjects (P less than 0.01 and n.s., respectively). Linear regression analysis showed that positive correlates of the serum CETP levels in all subjects were: IDL-EC (r = 0.463), HDL-TG (r = 0.603) and VLDL- and IDL-EC/TG ratio (r = 0.698 and 0.843).(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Familial cholesteryl ester transfer protein deficiency is associated with triglyceride-rich low density lipoproteins containing cholesteryl esters of probable intracellular origin.

The net transfer of core lipids between lipoproteins is facilitated by cholesteryl ester transfer protein (CETP). We have recently documented CETP deficiency in a family with hyperalphalipoproteinemia, due to a CETP gene splicing defect. The purpose of the present study was to characterize the plasma lipoproteins within the low density lipoprotein (LDL) density range and also the cholesteryl ester fatty acid distribution amongst lipoproteins in CETP-deficient subjects. In CETP deficiency, the conventional LDL density range contained both an apoE-rich enlarged high density lipoprotein (HDL) (resembling HDLc), and also apoB-containing lipoproteins. Native gradient gel electrophoresis revealed clear speciation of LDL subclasses, including a distinct population larger in size than normal LDL. Anti-apoB affinity-purified LDL from the CETP-deficient subjects were shown to contain an elevated triglyceride to cholesteryl ester ratio, and also a high ratio of cholesteryl oleate to cholesteryl linoleate, compared to their own HDL or to LDL from normal subjects. Addition of purified CETP to CETP-deficient plasma results in equilibration of very low density lipoprotein (VLDL) cholesteryl esters with those of HDL. These data suggest that, in CETP-deficient humans, the cholesteryl esters of VLDL and its catabolic product, LDL, originate predominantly from intracellular acyl-CoA:cholesterol acyltransferase (ACAT). The CETP plays a role in the normal formation of LDL, removing triglyceride and transferring LCAT-derived cholesteryl esters into LDL precursors.

Animals↗

Increased high-density lipoprotein levels caused by a common cholesteryl-ester transfer protein gene mutation.

BACKGROUND AND METHODS: The plasma cholesteryl-ester transfer protein (CETP) catalyzes the transfer of cholesteryl esters from high-density lipoprotein (HDL) to other lipoproteins. We recently described a Japanese family with increased HDL levels and CETP deficiency due to a splicing defect of the CETP gene. To assess the frequency and phenotype of this condition, we screened 11 additional families with high HDL levels by means of a radioimmunoassay for CETP and DNA analysis. RESULTS: We found the same CETP gene mutation in four families from three different regions of Japan. Analysis of restriction-fragment-length polymorphisms of the mutant CETP allele showed that all probands were homozygous for the identical haplotype. Family members homozygous for CETP deficiency (n = 10) had moderate hypercholesterolemia (mean total cholesterol level [+/- SD], 7.01 +/- 0.83 mmol per liter), markedly increased levels of HDL cholesterol (4.24 +/- 1.01 mmol per liter) and apolipoprotein A-I, and decreased levels of low-density lipoprotein cholesterol (1.99 +/- 0.80 mmol per liter) and apolipoprotein B. Members heterozygous for the deficiency (n = 20), whose CETP levels were in the lower part of the normal range, had moderately increased levels of HDL cholesterol and apolipoprotein A-I and an increased ratio of HDL subclass 2 to HDL subclass 3, as compared with unaffected family members (1.5 +/- 0.8 vs. 0.7 +/- 0.4). CETP deficiency was not found in six unrelated subjects with elevated HDL cholesterol levels who were from different parts of the United States. CONCLUSIONS: CETP deficiency appears to be a frequent cause of increased HDL levels in the population of Japan, possibly because of a founder effect. The results that we observed in heterozygotes suggest that CETP normally plays a part in the regulation of levels of HDL subclass 2. There was no evidence of premature atherosclerosis in the families with CETP deficiency. In fact, the lipoprotein profile of persons with CETP deficiency is potentially antiatherogenic and may be associated with an increased life span.

Adolescent↗

Novel gene mutations at the low density lipoprotein receptor locus: FH-Kanazawa and FH-Okayama.

Gene mutations at the low density lipoprotein (LDL) receptor locus were screened in 210 alleles of Japanese patients with familial hypercholesterolaemia (FH). In the present study, two types of novel mutation were identified by genomic Southern blotting using human LDL receptor cDNA probes. An approximately 12 kb deletion including exons 2 and 3 (and possibly 4) was identified in a patient (M.I.). The patient with this mutant gene will be referred to as 'FH-Kanazawa'. Two patients born in Okayama Prefecture in Japan had another unique 13 kb partial deletion, from exons 7 to 14, in their LDL receptor genes (FH-Okayama). This mutant allele is the first reported case in which the central portion of the LDL receptor gene, the epidermal growth factor (EGF) precursor homology region, is eliminated.

Alleles↗

Molecular basis of lipid transfer protein deficiency in a family with increased high-density lipoproteins.

Plasma high density lipoproteins (HDL) are a negative risk factor for atherosclerosis. Increased HDL is sometimes clustered in families, but a genetic basis has never been clearly documented. The plasma cholesteryl ester transfer protein (CETP) catalyses the transfer of cholesteryl ester from HDL to other lipoproteins and therefore might influence HDL levels. Using monoclonal antibodies, we show that CETP is absent in two Japanese siblings who have markedly increased and enlarged HDL. Furthermore, they are homozygous for a point mutation in the 5'-splice donor site of intron 14 of the gene for CETP, a change that is incompatible with normal splicing of pre-messenger RNA. The results indicate that the family has an inherited deficiency of CETP due to a gene splicing defect, and illustrate the key role that CETP has in human HDL metabolism.

Adult↗

Removal of apolipoprotein E-enriched high density lipoprotein by LDL-apheresis in familial hypercholesterolaemia: a possible activation of the reverse cholesterol transport system.

The presence of apo E-containing HDL in familial hypercholesterolaemia was investigated and its removal by LDL-apheresis using a dextran sulphate cellulose column was demonstrated by measurement of the apo E/apo A-I molar ratio of serum and by nondenaturing polyacrylamide gel electrophoresis followed by immunoblotting. The molar ratios of apo E/apo A-I in the density greater than 1.063 kg/l fraction of serum obtained from two homozygous patients with familial hypercholesterolaemia were higher (0.021 and 0.030) than that from normal subjects (mean +/- SE 0.011 +/- 0.002) (P less than 0.05). Polyacrylamide gel electrophoresis and immunoblotting showed an increase in apo E-containing HDL similar to HDL2, in the plasma obtained from the homozygous patient with familial hypercholesterolaemia. The increased amounts of apo E-enriched HDL were removed from plasma by adsorption with a dextran-sulphate cellulose column. These results suggested that LDL-apheresis using the dextran-sulphate cellulose column, may cause an increase in the turnover rate of the apo E-containing HDL and thus facilitate cholesterol removal from the peripheral tissues.

Adolescent↗

A low prevalence of coronary heart disease among subjects with increased high-density lipoprotein cholesterol levels, including those with plasma cholesteryl ester transfer protein deficiency.

BACKGROUND: Use of genetic analysis may improve the predictive value of risk factors for disease. A high plasma level of high-density lipoprotein (HDL) cholesterol is a strong negative risk factor for coronary heart disease (CHD). Cholesteryl ester transfer protein (CETP) deficiency causes increased levels of HDL cholesterol. However, recent studies suggest that CETP deficiency is a risk factor for CHD despite elevated HDL cholesterol levels. METHODS: Plasma lipid levels, CHD prevalence, resting electrocardiograms, and common CETP gene mutations were analyzed cross-sectionally in a population of 19,044 male and 29,487 female Japanese subjects (ages 45-79 years). RESULTS: High HDL cholesterol levels (serum HDL cholesterol >/=80 mg/dl, >/=95th percentile) were found in 6 and 5% of Japanese men and women, respectively. In the group with HDL cholesterol >/=80 mg/dl, common CETP gene mutations were identified in 23-24% of men and 31-49% of women. The prevalence of CHD in the group with high HDL cholesterol (>/=80 mg/dl) was low among both men (1.0%) and women (1.3%). There was no difference in CHD prevalence between hyper-HDL-cholesterolemic subjects with and without CETP mutations. CONCLUSIONS: Subjects with very high HDL levels (HDL cholesterol >/=80 mg/dl) as well as mild-to-moderate HDL elevations (60-79 mg/dl) appear to be protected against CHD, whether or not they have CETP deficiency, a genetic cause of elevated HDL.

Adult↗