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J L de Gennes

Publications and source records attributed to J L de Gennes.

At least 19 recordsLinked to original sources

Classical LCAT deficiency resulting from a novel homozygous dinucleotide deletion in exon 4 of the human lecithin: cholesterol acyltransferase gene causing a frameshift and stop codon at residue 144.

Lecithin: cholesterolacyltransferase (LCAT) transacylates the fatty acid at the sn-2 position of lecithin to the 3beta-OH group of cholesterol forming lysolecithin and the majority of cholesteryl ester found in plasma. LCAT participates in the reverse cholesterol transport pathway in man where it esterifies tissue-derived cholesterol following efflux from peripheral cells into HDL. Only 38 unique mutations in the human LCAT gene have been reported worldwide. Our French female proband presented with corneal opacity and no detectable plasma LCAT activity using either endogenous or exogenous assays. Her total plasma cholesterol and HDL cholesterol were low (2.34 mmol/l and 0.184 mmol/l, respectively) with a very high cholesterol/cholesteryl ester molar ratio (10.9:1). Plasma triglycerides were 0.470 mmol/l with low apo B (40.5 mg/dl), apo A-I (14.7 mg/dl), apo A-II (6.8 mg/dl) and apo E (2.1 mg/dl) levels. Plasma lipoprotein analysis by ultracentrifugation showed very low HDL concentrations and a characteristic shift of the lipoprotein profile towards larger, less dense particles. No proteinuria, renal dysfunction or signs of atherosclerosis were noted at age 45. Sequence analysis of her LCAT gene showed a novel homozygous TG-deletion at residues 138-139 that resulted in a frameshift causing the generation of a stop codon and premature termination of the LCAT protein at amino acid residue 144. Western blotting of the patient's plasma using a polyclonal IgY primary antibody against human LCAT failed to demonstrate the presence of a truncated LCAT protein. A 53 bp mismatched PCR primer was designed to generate an Fsp 1 restriction site in the wild type sequence of exon 4 where the mutation occurred. The 155 bp PCR product from the wild type allele produced a 103 bp and 52 bp fragment with Fsp 1 and no cleavage products with the mutant allele thus permitting rapid screening for this novel mutation.

Adolescent↗

Phenotypic expression in double heterozygotes for familial hypercholesterolemia and familial defective apolipoprotein B-100.

Variability in the expression of monogenic lipid disorders may be observed in patients carrying the same DNA mutation, suggesting possible genetic or environmental interactions. Our objective was to investigate the genotype-phenotype relationships in two unrelated French patients with an aggravated expression of a dominantly inherited hypercholesterolemia. In probands, segregation analysis complemented by DNA sequencing identified heterozygous defective alleles and mutations on two nonallelic loci for two monogenic lipid disorders: familial hypercholesterolemia at the low density lipoprotein (LDL) receptor locus and familial defective apolipoprotein B-100 at the locus encoding its ligand, apolipoprotein B-100. The LDL-receptor missense mutations had been reported in French Canadians. The apolipoprotein B mutation was the Arg3500Gln founder mutation in Northern Europe. Probands had an unusual phenotype of aggravated hypercholesterolemia that was complicated with premature coronary arterial disease, although remaining responsive to lipid-lowering drugs. This phenotype was distinct from that observed in their heterozygous relatives and distinct from those observed in FH or FDB homozygotes. These cases refer to a new class of patients with digenic lipid disorders, defined by specific clinical features that result from the combined effects of two independent loci. Moreover, the observed phenotype of aggravated hypercholesterolemia gives further evidence that receptor and ligand play distinct roles in regulating LDL metabolism. Although uncommon, these cases give insight into the molecular mechanisms that underly the clinical variability of inherited hypercholesterolemia.

Adult↗

[Metastatic pulmonary carcinoma, revealed by Cushing syndrome, initially considered to have a pituitary origin. Course over 25 years].

It is often difficult to differentiate between Cushing's syndrome and ectopic ACTH hypersecretion which, in rare cases, may result from a carcinoid tumour. Several years may be required before development of patent Cushing's syndrome. We report the 25-year clinical course in a patient with a pulmonary carcinoid tumour. Initially, the hormone results led to the diagnosis of Cushing's syndrome and the patient was treated accordingly. Bilateral adrenectomy was performed in 1969 followed by radiotherapy of the pituitary gland in 1975 for suspected Nelson's syndrome. Actually, the carcinoid tumour, located retrocardially, had gone unnoticed until 1989. Diagnosis was suspected during a hospitalization in our unit and the patient underwent tumour exeresis and left inferior lobectomy. Despite tumour removal and demonstration of tumoural ACTH secretion, the levels of ACTH and beta-lipotrope hormone remained high suggesting lymph node and/or pulmonary metastasis. This observation emphasizes the long clinical course of carcinoid tumours despite their malignancy and the unusual response to the dexamethasone test.

Adrenocorticotropic Hormone↗

Blood antioxidants (vitamin E and beta-carotene) in long-term low density lipoprotein apheresis.

We measured vitamin E and beta-carotene in the serum and in circulating lipoproteins in a large population of 15 patients with familial hypercholesterolaemia who were undergoing long-term treatment by low density lipoprotein (LDL) apheresis. The technique used for apheresis was dextran sulphate cellulose adsorption. The results showed that before LDL apheresis, patients had high vitamin E and normal beta-carotene levels in the serum and in the VLDL+LDL fraction. There were no relationships between serum levels of vitamin E and beta-carotene and the duration of LDL-apheresis. Low vitamin E and beta-carotene levels in the HDL fraction could be related to the low HDL concentrations in these patients. Vitamin E/cholesterol ratios were similar to those of the normolipaemic controls whereas beta-carotene/cholesterol ratios were lower. After LDL-apheresis treatment, the ratios in the HDL fraction fell whereas the ratios in the serum and in the VLDL and LDL fraction did not change. This study shows that these patients exhibited no deficiency in either serum of VLDL-LDL of vitamin E or beta-carotene after long-term treatment by LDL-apheresis and that the status of these antioxidants in serum was independent of the duration of treatment.

Adolescent↗

Homozygous deletion of exon 9 causes lipoprotein lipase deficiency: possible intron-Alu recombination.

We studied a homozygous deletion in the lipoprotein lipase gene at the molecular level. Comprising the end of intron 8, the whole of exon 9, and about two-thirds of intron 9, this 2.136-kb deletion caused complete lipoprotein lipase deficiency and severe hypertriglyceridemia (type I hyperlipoproteinemia). Intron 9 of a normal control subject was also sequenced in order to define the exact borders of the deletion. Up to now, only the first 0.721 kb of intron 9 had been sequenced. Thus the complete sequence of intron 9 (3.090 kb) is now available. Three Alu sequences were characterized in the normal intron 9, while the proband had only the third complete Alu sequence. The first Alu sequence was located in the deleted region, and only the left arm of the second was present, as the deletion began near its center. A stem-loop structure involving a 14-nt region towards the end of intron 8 and an Alu sequence in intron 9 might have led to the deletion. Sequence analysis showed that the three Alu sequences belonged to the 40-million-year-old Alu-Sa subclass.

Adult↗

[Elevation of lipoprotein(a) levels in patients following transplantation for ischemic cardiopathy].

OBJECTIVES: Increased levels of serum lipoprotein (a) in heart transplant patients has been recently shown to be related to early recurrence of coronary artery disease. In order to evaluate the effect of the ischaemic origin of the heart disease we compared lipoprotein (a) levels observed in heart transplant patients who underwent transplantation due to ischaemic heart disease and non-obstructive cardiomyopathy with those in healthy control subjects. METHODS: Serum levels lipoprotein (a) were measured in 62 cardiac transplantation recipients who had a hyperlipidemia. The results were compared with those of 212 control subjects matched for age and who were referred for hyperlipidemia. RESULTS: In the whole population 40 patients had been operated on for coronary heart disease and 22 for idiopathic cardiomyopathy. The two populations did not differ with regard to their cardiovascular risk factors except for the smoking status. The mean Lp(a) values were significantly higher in the subjects with coronary heart disease as compared with those with idiopathic cardiomyopathy (0.33 +/- 0.24 and 0.21 +/- 0.17 mg/dl respectively; p < 0.05). The latter were not different from the control group (0.22 +/- 0.19 mg/ml). We did not find any difference between the two populations concerning the drugs taken by the patients (especially cyclosporine), LDL-cholesterol, creatinine, fasting blood glucose and TSH. CONCLUSION: Our data confirm the relation between coronary atherosclerosis and high lipoprotein (a) levels.

Adult↗

[Frameworks of recognition and classification of primary hyperlipidemia].

A both useful and simple classification of primary hyperlipidemias must be at the disposal of all medical doctors, namely general practitioners and cardiologists. The practical classification we have proposed and published since 1971, fulfills this aim. Three main frames of hyperlipidemias are individualized: 1) pure or essential hypercholesterolemia 2) mixed or combined hyperlipidemias 3) major hyperglyceridemia: either exogenous or endogenous. In each of these frames, some clinical specific features, as well as some very simple biologic characteristics allow sometimes an immediate orientation towards some definite varieties of primary hyperlipidemias, now perfectly identified at the level of molecular genetic (tendinosum xanthoma with or without planar xanthomas, palm creases syndrome, tuberous or tubero eruptive xanthomas, etc...). Similarly, occurrence of cardiovascular complications, chiefly coronary, in a rather early age, and with a striking repetition in other members of family, as well of attacks of acute or subacute pancreatitis in other forms, helps considerably for orientation of the diagnosis. For all these reasons, systematic reconstitution of genetic tree on, at least, three generations in absolutely necessary. Prevalence, in various populations, of the genetic origin of these various primary disorders of lipid metabolism is round one out of 500 at the heterozygote state. Even if all the genes candidates are not yet finished to be identified, much of them are now perfectly known, in their localisation on DNA and in their multiple mutations. Possibility of combination of different gene defects can be also met; and more and more are described. This extraordinary and explosive knowledge in this field is now to be described.

Genes, Dominant↗

[Molecular genetics in pure primary hypercholesterolemia].

Pure primary hypercholesterolemia include a set of lipid disorders related to the metabolism of Low Density Lipoproteins (LDL), which are now recognised as causes of atherosclerosis. Although many genetic and environmental factors contribute to their pathogenesis, two major genes influence LDL metabolism: the LDL receptor and its natural ligand, apolipoprotein B. These genes have been characterised and localised on human chromosomes, and can be studied at the molecular level. The many gene defects observed on both these loci as causes of primary hypercholesterolemia, have demonstrated the genetic heterogeneity of these disorders (one phenotype related to different predisposing loci). The candidate gene approach, is a method that can overcome the difficulties of this genetic heterogeneity. Using simplified molecular techniques it can be used in predictive diagnosis, pointing the predisposing locus, leading to the identification of causative mutations and guiding therapeutic strategies. Hence, new inborn errors of metabolism for which the molecular basis is well defined are now recognised, delineating the remaining defects to be characterised that also underlie primary hypercholesterolemia. These disorders account for the most frequent monogenic disorders in the French population. A better knowledge of their influence among other predisposing causes of atherosclerosis, will help define new preventive strategies based on the genetic component to its predisposition.

Chromosome Mapping↗

[Molecular genetics and lipoprotein lipase deficiency].

Lipoprotein lipase (LPL) deficiency is the main cause of familial chylomicronemia, a disease characterised by high fasting plasma triglyceride levels, that can be complicated with acute pancreatitis. This autosomal recessive disorder is rare (1/10(6) in the general population). Classically this disorder is non atherogenic, and the heterozygotes are asymptomatic. To date, 35 gene mutations have been described throughout the world. We have studied 12 families in which the molecular basis for LPL deficiency had been established (direct sequencing of PCR products) by the presence of mutations on the LPL gene, in the 18 homozygous probands. We have found 13 mutations: 7 missense mutations in exons 5 and 6, 3 deletions of few bases in exons 3 and 4, 1 insertion one base in exon 2, one large deletion of exon 9, and one partial duplication of exon 6. PCR and enzymatic restriction of the LPL gene were used as methods for screening mutations or analysing polymorphic markers. This allowed a discrimination between heterozygote carriers (C, n = 35) and non carriers (NC, n = 26). Both groups were comparable for age, sex ratio, body mass index, life style habits, and other risk factors for atherosclerosis. Comparison (U-test Mann Whitney) of plasma lipid values revealed a lower HDL cholesterol level (C: 0,47 +/- 0,11 g/l vs NC: 0,58 +/- 0,18 g/l, p < 0.05) and a higher triglyceride level (C: 1,15 +/- 0,73 g/l vs NC: 0,77 +/- 0,43 g/l, p < 0.05) in heterozygotes. Conversely to the homozygous state, heterozygous LPL deficiency predisposes to a lipid profile that may be atherogenic evenly frequent (approximately 1/500) in the general population.

Heterozygote↗

[Pathology of the human apolipoprotein E gene].

Apolipoprotein E (apo E) is a polymorphic glycoprotein that plays an essential part in the binding to receptors for the uptake of chylomicrons and VLDL remnants and of LDL. The three major isoforms are E3 (Cys112/Arg158), E4 (Arg112/Arg158) and E2 (Cys112/Cys158). The apo E genetic variation has a great impact. In most of type III familial hyperlipoproteinemias (HLP), E2 is implicated at the homozygote status. In other cases, rare alleles are directly responsible for dominant type III HLP. Apo E polymorphism is an essential determinant in the interindividual variations of lipids in healthy subjects in various populations. Its influence can be significant on the efficacy of nutritional or therapeutic interventions. The allele epsilon 4 appears to be associated with an increased risk of premature atherosclerosis. Recently, epsilon 4 was demonstrated to be associated with an early Alzheimer's disease onset. Apo E polymorphism contributes to the lipid disorders in diabetes and obesity. The analysis of apo E polymorphism can be carried out with two conceptually different approaches. The first one is based on the separation of plasma isoforms of the protein by isoelectric focusing or bidimensional electrophoresis. The other one consists in the application of molecular biology techniques (PCR and endonuclease restriction profiles) for a detection of the common alleles and of several rare alleles, avoiding the possible errors of the phenotyping technique of the apo E protein. The application of genetic engineering allows a better understanding of the role played by apo E towards its receptors and in other molecular interactions which are not well known up to now.

Amino Acid Sequence↗

[Justification and imperatives of the campaign against excess cholesterol and prevention of atherosclerosis].

Recently, violent attacks have been orchestrated, by various media and the press against medical action, via diet or drug therapy, on excess cholesterol, in order to improve primary or secondary cardiovascular prevention. The amplitude of this campaign implies a dangerous risk of a deleterious effects both on the public and on medical guidelines. The opportunity for open discussion of this question, and of a clear reply, appears to be highly desirable for all concerned. Although it is quite true that total blood cholesterol levels in excess of 200 mg/dl (5.2 mmol/l) are not automatically dangerous, they nonetheless require complete profiling of cholesterol distribution among the different fractions and, if possible, a complementary study of ApoB, ApoA1 and Lpa fractions. It must be recalled that even modest rises in total cholesterol (250 +/- 30 mgs/dl) can be atherogenic, and particularly, when present in the non-HDL fractions, and involving a low HDL Cholesterol level (< 36 mg/dl or 0.9 mmol/l). In all these cases, the associated determination of triglyceride levels is absolutely necessary. Moreover these modest rises in cholesterol have to take into account the possible association of other risk factors, such as hypertension, cigarette smoking, diabetes, obesity and ... hyperfibrinogemia. The claims of the natural protection of French people against atherosclerosis and of the irrelevance of precocious cholesterol screening, then finally of non-demonstrated benefits of such prevention, with respect to other risks due to diet or drug treatment of cholesterol disorders must be precisely rediscussed and clarified. The crucial importance of the maintenance of our present efforts in cardiovascular prevention for clinicians, concerned patients, and the general public, must be especially stressed.

Arteriosclerosis↗

Screening for new mutations in the LDL receptor gene in seven French familial hypercholesterolemia families by the single strand conformation polymorphism method.

To investigate the molecular basis of familial hypercholesterolemia (FH) in France, we applied the single strand conformation polymorphism (SSCP) method to the promoter region and the 18 exons of the low density lipoprotein receptor (LDLR) gene. Seven probands, 4 heterozygotes, 2 compound heterozygotes, and 1 homozygote, belonging to FH families were tested. In all cases, previous genetic analysis and/or LDL receptor fibroblast assay had shown that the disease was due to defects in the LDLR gene. Out of the nine mutations expected, one nonsense mutation in exon 2 and six missense mutations were identified in exons 3, 6, 8, 11, and 15. Two of the latter were found in exon 6. In each family, cosegregation of the base substitution and the disease was observed. Ninety-five control subjects were screened for the presence of the six missense mutations. None was detected, implying that the mutations identified are deleterious. Our results indicate that the SSCP analysis of amplified genomic DNA fragments can be successfully used to rapidly screen mutation containing exons in large genes. Furthermore, all these mutations are newly described and demonstrate heterogeneity of LDLR gene mutations responsible for FH in the French population, as in other reported Caucasian populations.

Amino Acid Sequence↗

Relationship between smoking status and serum lipids in a hyperlipidemic population and analysis of possible confounding factors.

The aim of our study was to estimate the potential relationship between smoking behavior and other coronary heart disease risk factors in 250 hyperlipidemic patients. We present data obtained through self-reporting of the number of cigarettes smoked per day, measurements of three tobacco markers, and data on dietary habits and lipid variables. We measured cotinine (by HPLC) and thiocyanate and used a recent colorimetric assay for the indirect evaluation of the nicotine metabolites in a single urine specimen. Mean values of nicotine metabolites, expressed as cotinine equivalents, were 6.7, 39.9, and 79.4 mumol/L, respectively, for nonsmokers, light smokers (7.7 cigarettes per day), and heavy smokers (25.8 cigarettes per day). We found that light smokers have higher concentrations of cotinine and nicotine metabolites in proportion to the number of cigarettes smoked per day than do heavy smokers. Thus, the simple colorimetric assay can accurately evaluate smoking status. Hyperlipidemia and smoking are linked by an intricate network of multiple relations. The concentration of high-density lipoprotein (HDL) cholesterol is lower in heavy smokers, and the concentrations of triglycerides and cholesterol are higher. The 0.11 mmol/L difference in HDL cholesterol between light and heavy smokers is close to the results of previous papers; however, when gender, dietary habits (including alcohol intake), and data on body mass index are included in a multiple regression analysis, there is no longer an association between HDL cholesterol concentrations and smoking status. Therefore, these different dietary habits may be confounding factors that partly explain the pattern of lipid variables.

Chromatography, High Pressure Liquid↗

Lp(a) levels in different types of dyslipidemia in the French population.

The serum lipoprotein Lp(a) concentration was measured in 1065 individuals in order to assess whether there was a relation between the type of dyslipidemia and the level of Lp(a). Males and females, aged between 2 and 83 years old, were included in the study. Quantification was performed by an immunonephelometric technique. The whole population was divided into normolipidemic (NL), type IIa without xanthoma (type IIa), type IIa with xanthoma (FH), type IIb and type IV phenotypes. Lp(a) level was arbitrarily divided into 5 subclasses in each group of dyslipidemia and in the normolipidemic group. In addition each group was divided according to sex and whether or not they were under treatment. We observed a significant difference between the median Lp(a) level of the normolipidemic group (NL) and of the dyslipidemic group as a whole. Median Lp(a) levels in the 4 dyslipidemic groups did not differ significantly. Sex, age and treatment did not influence the distribution of Lp(a) values distribution. Only weak correlations (Spearman's rank test) were observed between Lp(a) and other lipid parameters (total cholesterol, LDL, apo B, HDL, triglycerides): the highest correlation (r' = 0.15) was between Lp(a) and apo B. We conclude that Lp(a) level is not influenced by the type of dyslipidemia, sex or hypolipidemic drugs.

Adolescent↗