PubMed Health⌕ Search

Biomedical subjects

J Ramalho

Publications and source records attributed to J Ramalho.

5 recordsLinked to original sources

Cholesterol oxides accumulate in human cataracts.

Human lens membranes contain the highest cholesterol content of any known biological membrane. Although cholesterol is prone to oxidation, the presence of its oxidation products in human cataract has not been shown before. This study was designed to investigate the presence of cholesterol oxides in human cataractous lenses. Human clear lenses (n = 48) were obtained from Coimbra University Hospital Eye Bank. Human cataracts (n = 54) were obtained by routine extracapsular surgery. Cholesterol oxides were isolated by solid-phase extraction on a C18 cartridge and quantified as TMS-ether derivatives by gas chromatography. The extraction procedure allows for an efficient recovery of the major cholesterol oxides, while retaining virtually all cholesterol. Exposure of membranes isolated from transparent human lenses to the free radical generator 2,2'-Azobis(2-amidinopropane) dihydrochloride (AAPH) produced 7 alpha-hydroxycholesterol (6%), 7 beta-hydroxycholesterol (19%), 5 alpha, 6 alpha-epoxycholestanol (1%) and 7-ketocholesterol (74%) as major oxidation products. Cataractous lenses contained quantifiable amounts of 7 beta-hydroxycholesterol (7.3 +/- 0.74 mmol mol-1 cholesterol), 7-ketocholesterol (4.2 +/- 0.32 mmol mol-1 cholesterol), 5 alpha, 6 alpha-epoxycholestanol (0.9 +/- 0.16 mmol mol-1 cholesterol), 20 alpha-hydroxycholesterol (0.6 +/- 0.13 mmol mol-1 cholesterol) and 25-hydroxycholesterol (0.1 +/- 0.02 mmol mol-1 cholesterol), whereas clear lenses contained no detectable amounts of cholesterol oxides. We have shown, for the first time, that oxysterols accumulate in human cataracts. Although the total amount of oxidized cholesterol in cataracts is not likely to be high it may account for much of the membrane damage associated with cataract formation.

Cataract↗

Crystallin composition of human cataractous lens may be modulated by protein glycation.

BACKGROUND: This study was designed to establish whether increased glycation of human crystallins could be related to an increased susceptibility to aggregation and insolubilization. The study was focused particularly on the glycation levels and composition of low-molecular-weight (LMW) peptides present in human cataractous lenses. METHODS: Lens crystallins from the water-soluble fraction were separated on a preparative scale by gel filtration. Each crystallin was purified and its glycation level evaluated as furosine content. The peptides were further purified by reverse-phase chromatography. The amino acid composition of each of these peptides was also determined by RP-HPLC using PITC pre-column derivatization. RESULTS: The high-molecular-weight (HMW), alpha L-crystallin and LMW crystallins from diabetic patients present high furosine content. LMW peptides were shown to constitute a heterogeneous population of three major peptides with a lysine content similar to that observed for native crystallins. These peptides were shown to present glycation levels ten times higher than those observed for the crystallins. Glycated proteins from insoluble fraction were found to be mostly urea soluble and were present at higher concentration in diabetic cataracts. CONCLUSIONS: LMW peptides are suggested to play a major role in protein aggregation and insolubilization, probably via a mechanism involving protein glycation. This process seems to be particularly relevant to diabetic cataract development.

Aged↗

Spectrophotometric analysis of sodium fluorescein aqueous solutions. Determination of molar absorption coefficient.

The usefulness of sodium fluorescein (SF) and related physical parameters were analysed. Two factors that may affect the molar absorption coefficient (epsilon) of this compound were the presence of impurities and the pH of the solution. As discrepant values can be found in the literature for that coefficient, a purification technique was used and SF quantification was performed according to sodium concentration determined by atomic absorption spectrophotometry. The molar absorption coefficient of the SF solution in phosphate buffer pH 7.4 was determined. To study the influence of pH on epsilon determination, absorption spectra at pH1, 3, 5, and 10 were also analysed.

Absorption↗