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Biomedical subjects

J Jimenez

Publications and source records attributed to J Jimenez.

At least 91 records · Page 5Linked to original sources

Changes in chlorpromazine induced CNS effects when associated with other neuroleptics and anxiolytics.

A set of test (General behavior, traction, chimney, rotarod, conditioned reflexes, curiosity and potentiation of barbiturate sleep) were given in addition to studying the hypothermia of associations of chlorpromazine with various neuroleptic and one anxiolytic (Perphenazine, clothiapine, haloperidol and diazepam), which demonstrated an evident enhancement of the depressant effects of chlorpromazine when combined with clothiapine and haloperidol.

Animals↗

Comparative study of different essential oils of Bupleurum gibraltaricum Lamarck.

A comparative study was performed of the essential oil extracted from the fruiting apex of Bupleurum gibraltaricum Lamarck (Umbelliferae) collected in different areas within the province of Granada, including the Cázulas mountains, the Balcón de Canales and the Quéntar Reservoir. All three essential oils were very similar in chemical composition, consisting mainly of monoterpenic hydrocarbons (delta 3-carene and alpha-pinene). When anti-inflammatory activity against both acute (carrageenin-induced plantar edema) and subchronic inflammation (granuloma technique) was assayed, quantitative differences came to light: the essential oil of the Cázulas Mountains population was most active against acute inflammation owing to its high delta 3-carene content, whereas the Quéntar Reservoir essential oil of B. gibraltaricum was most effective against granuloma induced inflammation.

Anti-Inflammatory Agents, Non-Steroidal↗

Fatty and mycolic acids of Mycobacterium malmoense.

The fatty acids and mycolic acids of 16 clinical isolates of Mycobacterium malmoense were studied by gas chromatography and thin-layer chromatography. All strains contained 2-methyleicosanoic and 2,4,6-trimethyltetracosanoic acids and alpha-, alpha'-, and keto-mycolic acids. The reported findings suggest that lipid analysis is a very useful approach in the species identification of M. malmoense.

Chromatography, Gas↗

Selective uptake of HDL cholesterol ester by human fat cells.

In humans, high-density lipoprotein (HDL)-cholesterol ester turnover exceeds that of HDL apoproteins by severalfold or more, suggesting an independent catabolic fate of these constituents. The present study investigated the cellular uptake and dissociation of HDL labeled in its apoproteins with 125I and in its cholesterol ester with [3H]cholesteryl palmityl ether, a nonhydrolyzable cholesterol ester analogue. Approximately 50% of cell-associated 125I-HDL2 and 125I-HDL3 was released from prelabeled adipose cells by incubating the latter in the presence or absence of unlabeled lipoproteins for 2 h. The uptake of HDL-cholesterol ester by human fat cells as reflected by [3H]cholesteryl palmityl ether was 5-18 times greater than that predicted from the uptake of 125I-HDL2 and 125I-HDL3 and was irreversible. Analysis of dissociated 125I-HDL3 demonstrated changes to both higher and lower density fractions compared with the starting material. There was a high correlation between the cellular uptake of HDL3-cholesterol ester and HDL3-apoprotein uptakes (r = 0.90, P less than 0.01), suggesting that HDL-cholesterol ester uptake requires a specific apoprotein interaction or binding step. The selective uptake and retention of HDL-cholesterol ester by isolated adipocytes implies that human fat tissue may play a role in regulating the lipid composition of plasma HDL.

Adipose Tissue↗

The role of apolipoprotein A-I and apolipoprotein A-II in high-density lipoprotein binding to human adipocyte plasma membranes.

Adipocyte plasma membranes purified from omental fat tissue biopsies of massively obese subjects possess specific binding sites for high-density lipoprotein (HDL3). This binding was independent of apolipoprotein E as HDL3 isolated from plasma of an apolipoprotein E-deficient individual was bound to a level comparable to that of normal HDL3. To examine the importance of apolipoprotein A-I, the major HDL3 apolipoprotein, in the specific binding of HDL3 to human adipocytes, HDL3 modified to contain varying proportions of apolipoproteins A-I and A-II was prepared by incubating normal HDL3 particles with different amounts of purified apolipoprotein A-II. As the apolipoproteins A-I-to-A-II ratio in HDL3 decreased, the binding of these particles to adipocyte plasma membranes was reduced. Compared to control HDL3, a 92 +/- 3.1% reduction (mean +/- S.E., n = 3) in maximum binding capacity was observed along with an increased binding affinity for HDL3 particles in which almost all of the apolipoprotein A-I had been replaced by A-II. The uptake of HDL cholesteryl ester by intact adipocytes as monitored by [3H]cholesteryl ether labeled HDL3, was also significantly reduced (about 35% reduction, P less than 0.005) by substituting apolipoprotein A-II for A-I in HDL3. These data suggest that HDL binding to human adipocyte membranes is mediated primarily by apolipoprotein A-I and that optimal delivery of cholesteryl ester from HDL to human adipocytes is also dependent on apolipoprotein A-I.

Adipose Tissue↗

Ultrasensitive analysis of microbial fatty acids using gas chromatography with electron capture detection.

Pentafluorobenzyl and pentafluoropropionyl/pentafluorobenzyl esters of bacterial fatty acids were analysed by capillary gas chromatography using both flame ionization and electron capture detection. No differences between the relative peak areas of the various fatty acids were observed as regards the two detectors used except that response of the electron capture dectector to the hydroxy acid derivatives exceeded that to the non-hydroxy acid derivatives by 20%. Use of the described derivatives in combination with electron capture detection yields chromatograms comparable with those obtained by analysis of methyl esters using flame ionization detection but with superior sensitivity.

Bacteria↗

Metabolic antagonism between insulin action and activators of adenylate cyclase in rat fat cells.

1. Short-term effects of lipolytic agents in the absence or in the presence of insulin on fatty acid biosynthesis have been examined, in terms of the control rate of [1-14C]acetate incorporation into labeled fatty acids in the presence of glucose, as stimulator of lipogenesis by generating NADPH for the process. 2. The relationship between lipogenesis and lipolysis in the absence or in the presence of insulin was compared with a variety of adenylate cyclase activators. 3. The data obtained reveal that a reciprocal relationship exists between lipogenesis and lipolysis. 4. The changes in the activity of hexose monophosphate shunt produced by activation or inhibition of lipogenic process has been studied. 5. The regulation of the hexose monophosphate shunt activity mainly by the intracellular fatty acyl-CoA concentration and NADPH/NADP ratio is discussed.

1-Methyl-3-isobutylxanthine↗

1H NMR spectral simplification with achiral and chiral lanthanide shift reagents--IV. Thiopental and barbiturate analogues.

The 60 MHz (1)H NMR spectra of racemic thiopental, 1, have been studied with the achiral shift reagent, tris(6,6,7,7,8,8,8-heptafluoro-2,2-dimethyl-3,5-octanedionato) europium(III), 2, and the chiral tris[3-(trifluoromethylhydroxymethylene)-d-camphorato] europium(III), 3, and tris[3-(heptafluoropropylhydroxymethylene)-d-camphorato] europium(III), 4. Enantiomeric shift differences, DeltaDeltadelta, were clearly observed for all three methyl signals of 1 with 3 or 4, with larger values obtained using the former reagent. Thus, a 0.216 molal solution of 1 in CDCl(3) at 28 degrees C with a 3:1 molar ratio of 0.359 displayed DeltaDeltadelta values of about 17 Hz for the proximal methyl of the methylbutyl group (at the chiral centre), 13 Hz for the CH(3) of the ethyl group, and 6 Hz for the distal CH(3) of the methylbutyl group. Results are compared for those obtained with 2 and 3 using secobarbital, talbutal, butabarbital and pentobarbital.

Journal Article↗

Biochemical characteristics and fatty acid compositions of some armadillo-derived mycobacteria and their relation to Mycobacterium gordonae.

The long-chain components of 75 strains of mycobacteria, cultivated from Mycobacterium leprae-infected or non-infected armadillos, and of eight clinical and 15 environmental isolates of M. gordonae, were compared. Four major groups could be distinguished based on the presence of 10-methyloctadecanoic (tuberculostearic) and 2-methyl 3-hydroxyeicosanoic acids and secondary alcohols (2-octadecanol and 2-eicosanol). Some heterogeneity was found in strains assigned to M. gordonae: the characteristic absence of tuberculostearic acid and secondary alcohols and the presence of the branched C14 and the hydroxylated C20 acids were seen in only 34 of the 49 strains studied. Three strains were identified as M. malmoense, one as M. kansasii, ten as belonging to the M. avium-M. intracellulare-M. scrofulaceum complex and eight as belonging to new groups of armadillo-derived mycobacteria (ADM 1, ADM 2 and ADM 3) by conventional bacteriological tests and fatty acid compositions, though M. malmoense was heterogeneous in its fatty acids composition. Four strains, identified as M. avium by conventional tests, differed from this species by their fatty acid compositions. Thirteen strains showed some similarity to M. simiae and ten strains differed from all other known mycobacteria.

Animals↗

Regional variation in high-density lipoprotein binding to human adipocyte plasma membranes of massively obese subjects.

Obesity is associated with significant changes in cholesterol and lipoprotein metabolism. High density lipoprotein (HDL) cholesterol is often reduced and adipose tissue cholesterol stores are increased in obese individuals. This prompted a study on the binding of HLD fractions (HDL2 and HDL3) to adipocyte plasma membranes obtained from massively obese subjects (BMI greater than 37 kg m-2) undergoing gastroplasty. Regional variation in HDL binding to these adipocyte plasma membranes was demonstrated. Membranes derived from the abdominal subcutaneous depot exhibited similar binding affinity (Kd) but higher binding capacity (Bmax) for HDL2 and HDL3 than that from the omental depot. There was significant inter-individual variation in Bmax but the amount of HDL2 or HDL3 bound to the two depots of the same individual was positively correlated (HDL2, r = 0.66, P less than 0.05; HDL3, r = 0.88, P less than 0.01). While HDL2 binding showed a higher affinity (lower Kd) than HDL3, a significant positive correlation existed between HDL2 and HDL3 binding to the same adipocyte membranes (r = 0.89, P less than 0.01). A significant inverse correlation (P less than 0.05) was also observed between HDL2 and HDL3 binding to adipocyte membranes and plasma HDL-cholesterol concentration. These results suggest that adipose tissue is an important site of HDL metabolism and the subcutaneous fat depot may play a proportionally more significant role due to its higher HDL binding capacity. It is further suggested that increased HDL binding and metabolism by the expanded adipose tissue mass may contribute to reduced plasma HDL-cholesterol levels frequently associated with obesity.

Abdomen↗

Regional variation in HDL metabolism in human fat cells: effect of cell size.

Abdominal obesity is related to reduced plasma high-density lipoprotein (HDL) cholesterol, and both are associated with cardiovascular disease risk. We have observed that plasma membranes from abdominal subcutaneous adipocytes have a greater HDL binding capacity than omental fat cell plasma membranes. The present study examined whether these binding characteristics could be due to differences in fat cell size or cholesterol concentration between the two adipose depots. Abdominal subcutaneous and deep omental fat were obtained from massively obese patients at surgery. Subcutaneous abdominal fat cells were significantly larger and their cellular cholesterol content greater than omental adipocytes. The uptake of HDL by collagenase-isolated fat cells was studied by incubating the cells for 2 h at 37 degrees C with 10 micrograms/ml 125I-HDL2 or 125I-HDL3. In both depots, the cellular uptake of 125I-HDL2 and 125I-HDL3 was specifically inhibited by addition of 25-fold excess unlabeled HDL and a close correlation was observed between the cellular uptake of 125I-HDL2 and 125I-HDL3. In obese patients, the uptake of 125I-HDL was higher in subcutaneous cells than in omental cells [5.85 +/- 0.53 vs. 2.74 +/- 0.30 pmol X 2 h-1. (10(6) cells)-1]. The cellular 125I-HDL uptake was significantly correlated with adipocyte size and fat cell cholesterol content but not with adipocyte cholesterol concentration. These results suggest that the higher HDL uptake observed in subcutaneous cells compared with omental cells in obesity is the result of differences in adipocyte size rather than differences in the cholesterol concentration (cholesterol-to-triglyceride ratio).(ABSTRACT TRUNCATED AT 250 WORDS)

Adipose Tissue↗

Effects of weight loss in massive obesity on insulin and C-peptide dynamics: sequential changes in insulin production, clearance, and sensitivity.

In massively obese patients hyperinsulinemia and insulin insensitivity usually improve with weight loss. To clarify the mechanism of these reversible abnormalities eight nondiabetic massively obese patients were studied before and at intervals (3 months and 1 yr) after weight loss following gastroplasty. Insulin dynamics were studied during the hyperglycemic clamp (change in glucose, 7 mmol L-1 for 2 h) by measuring the area under the insulin and C-peptide response curves, representing, respectively, systemic insulin response and insulin production. Compared to lean age-matched normal subjects the massively obese patients had the expected fasting hyperinsulinemia and an exaggerated insulin response (P less than 0.05). Within 3 months and after an approximately 20% weight loss, they had a marked reduction in the systemic insulin response but no change in the C-peptide response. Therefore, the reduction in insulin response was due to enhanced hepatic insulin clearance rather than reduced insulin production. Thus, the liver serves a gate-keeping role in regulating the systemic insulin response to a glucose challenge. With additional weight loss of 14% and then weight maintenance, insulin clearance was further increased, and a reduction in insulin production became evident, since the C-peptide response was reduced. Exogenous insulin clearance was measured using the euglycemic clamp technique before and after weight loss. Insulin clearance was initially lower in the massively obese patients compared to that in the normal subjects (P less than 0.05) and increased toward normal with weight loss (P less than 0.05). Similarly, insulin sensitivity, as measured by the ratio of glucose metabolised per U endogenous insulin, normalized with weight loss and weight maintenance. Thus, after significant weight loss followed by weight maintenance at a reduced, but not ideal, level, insulin clearance, production, and sensitivity all reverted to normal. These findings suggest that adipose mass per se may not be exclusively responsible for altered insulin and glucose dynamics in obesity and that additional factors associated with obesity, such as nutrient load, adipose distribution, fat cell size, or fatty acid flux, play a contributing role.

Adult↗

Some comments on the variance of heterozygosity in finite populations.

A new and more accurate formula for the variance of heterozygosity under genetic drift has been obtained. The variance can be partitioned into two components; the first comes from the dispersion of the allelic frequencies among populations, and the second from the dispersion of the actual heterozygosity, h, around their expected values, 2pq. A certain generation exists where the variance reaches a maximum; thus, the genetic drift can be split into two phases by this single maximum.

Biological Evolution↗