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Biomedical subjects

R Valdes

Publications and source records attributed to R Valdes.

98 records · Page 6Linked to original sources

Genetic mechanisms for variability in drug response and toxicity.

It is now well established that many proteins involved in the metabolism or pharmacodynamic action of drugs and foreign compounds exhibit structural polymorphism and variation in their level of expression. This variation leads to dramatic phenotypic differences in response to medicines or susceptibility to carcinogenesis. Some of the changes in the phenotypic expression of proteins are secondary to variation in the nucleic acid sequence of their respective genes. The science of pharmacogenetics links differences in gene structure (polymorphism) with pharmacologic differences in drug action and disposition of foreign compounds. Through discussion of four examples, we will emphasize the variety of genetic mechanisms that can potentially influence the phenotypic response to xenobiotic challenge and pharmacotherapy. The first example illustrates how structural variation in the coding region of drug metabolizing enzymes influences risk of drug toxicity. A second example demonstrates how genetic variation can influence gene transcriptional regulation and how the resulting dysregulation may be linked to increased susceptibility to exposure-linked cancer. The third example illustrates how genetic polymorphism can selectively influence the pharmacodynamic response to medication, and the final example of warfarin response illustrates how genetic variation in more than one gene can account for broad extremes in phenotypic response.

Dose-Response Relationship, Drug↗

Fundamentals and applications of pharmacogenetics for the clinical laboratory.

Metabolism and disposition of foreign compounds, including pharmaceuticals, is dependent upon a host of factors. However, a genetic basis for individuality in drug metabolism has long been recognized and more recently has been confirmed. It is now well understood that a finite number of inherited sequence variants (alleles) of genes encoding drug-metabolizing enzymes give rise to discrete drug metabolism phenotypes. This primer in pharmacogenetics will introduce the clinical laboratorian to the mechanistic basis underlying the influence of genetics on pharmacology. We begin with an overview of pharmacology and introduce the importance of protein structure in maintaining steady-state drug concentrations. After review of fundamental concepts related to drug-metabolizing enzymes and genetics, we then give examples of how discrete genetic variations (polymorphism) alter the response (phenotype) to certain therapeutics in select individuals. We conclude with several analytical and interpretive considerations which must be considered by laboratories offering pharmacogenetic services.

Clinical Laboratory Techniques↗

[Retinal detachment following posterior capsulotomy using a YAG laser].

This work analyzes 9 cases of retinal detachment occurred after posterior capsulotomy with Yag laser. No relationship has been found between the timing of the Yag capsulotomy after cataract extraction, and seriousness or precocity of the retinal detachment. The size of the capsulotomy does not seem to play a main part either. The study shows the part of the posterior capsule and the importance of associated risks (myopia, peripheral degenerative lesions, previous retinal detachment in the fellow eye). The role of the Yag laser treatment seems doubtful.

Cataract Extraction↗

A physician's office-based digoxin assay (Seralyzer) evaluated for interference by endogenous digoxin-like immunoreactive factors.

A digoxin test for a physician's office based-chemistry analyzer (Ames Seralyzer) was evaluated for possible interference by digoxin-like immunoreactive factors (DLIF). Sera from patients likely to have high concentrations of DLIF (renal and hepatic patients, pregnant women, and neonates) as well as from normal patients and umbilical cord blood were analysed by the Seralyzer digoxin immunoassay and by a fluorescence polarization digoxin immunoassay (Abbott TDx) known to detect DLIF. For all patients who were not taking digoxin (n = 85) only four patients (4.7 percent) measured apparent digoxin values greater than 0.2 ng per mL by the Seralyzer compared to 64 (75 percent) by the TDx analyzer. Measurements of DLIF from adrenal extracts demonstrated a 17-fold greater potency for detection of DLIF by the TDx (2.9 ng per mL) compared to the Seralyzer technique (0.18 ng per mL). However, recovery data suggest that the presence of digoxin reduces the potency of DLIF interference as a function of increasing digoxin concentrations especially for the TDx assay. This diminished DLIF crossreactivity in the presence of digoxin is one explanation for the comparable correlation observed for both non-renal and renal failure patients taking digoxin when measured by these two immunoassays.

Adrenal Glands↗

New kinetic procedure for the measurement of conjugated bilirubin with a centrifugal analyzer.

A procedure has been developed for the automated measurement of conjugated bilirubin in serum with a centrifugal analyzer. The conjugated bilirubin is measured by a fixed time kinetic method which monitors the reaction between conjugated bilirubin and diazotized sulfanilic acid at 550 nm. Results are calculated based on a comparison of the reagent blank-corrected absorbance changes between 15 seconds and 75 seconds for sample vs changes in an empirical standard. The standard used is N-(1-naphthyl) ethylene diamine dihydrochloride (NEDC) which reacts with diazotized sulfanilic acid at a rate comparable to conjugated bilirubin. The standard is calibrated by comparison with a modified Jendrassik and Grof procedure using a serum blank-corrected centrifugal analyzer reference method. The method is linear to 150 mg per 1 with a sensitivity of 3.0 milliabsorbance units per 1.0 mg per 1 of conjugated bilirubin using a 35 mul sample volume. Within-run precision is 1 percent for elevated concentrations of bilirubin. Hemolysis introduces a negative interference, the nature of which is discussed.

Bilirubin↗

Characterization of an automated radioimmunoassay for T4, T3, T3 U, and FTI.

The performance characteristics of assays is reported for thyroxine (T4), triiodothyronine (T3), and T3-uptake (T3U) using the GAMMAFLOTM Automated Assay System. A comparison of calculated free thyroxine index (FTI) values is also presented. This automated radioimmunoassay (RIA) system utilizes a combination of continuous-flow methodology and chromatographic separation techniques. The T4 assay studied had a standard curve range of 1.5 to 24.0 microgram per dl. The intra- and inter-assay precisions were 4.3 and 5.3 percent CV, respectively, for a T4 concentration of 10.0 microgram per dl. The T3 assay had a standard curve range of 50 to 1000 ng per dl, the corresponding precisions were 7.3 and 7.1 percent CV, respectively, for a concentration of 213 ng per dl. The automated serum T4 and T3 results correlated (r = 0.966 and 0.864) with a manual radioimmunoassay procedure. Intra-assay and inter-assay precisions for a mid-range normal 30.1 percent T3U value were 6.2 percent and 4.9 percent CV, respectively. Reference range comparison of FTI by both automated and manual results correlated for 47 out of 51 (95 percent) patients compared. It is concluded that this automated system appears to offer a viable alternative to T4, T3, and T3U manual RIA techniques in terms of operational simplicity, analytical performance, and sample through-put flexibility.

Automation↗

Evaluation of an automated radioimmunoassay for serum cortisol.

The performance characteristics are reported for a serum cortisol assay using the GAMMAFLO Automated Assay System, an automated continuous-flow system for radioimmunoassay (RIA). This automated system utilizes a combination of continuous-flow methodology and column chromatography techniques. The cortisol assay studied had a standard curve range of 10.0 to 500 microgram per L. The intra-assay and inter-assay precision were 5.1 percent and 7.2 percent (RSD), respectively, for a cortisol concentration of 160 microgram per L. The automated serum cortisol results correlated (r = 0.958 and 0.933) with two established manual radioimmunoassay procedures. No drift or carryover was detectable in 200 within-assay consecutive determinations performed at a rate of 42 determinations per hour (five hours continuous operation). The automated system studied appears to offer a viable alternative to cortisol manual RIA techniques in terms of overall precision simplicity of operation, and sample throughput.

Autoanalysis↗

A hemoglobin A1C immunoassay method not affected by carbamylated hemoglobin.

Hemoglobin A1C (HbA1C) methods based on charge separation of Hb species are subject to interference from carbamylated Hb (carb Hb). Carb Hb adducts are formed via interaction of terminal amino groups of HbA with isocyanic acid, after the spontaneous dissociation of urea to cyanate. It is hypothesized that a new immunoassay method, using a monoclonal antibody that recognizes the N-terminus of the Hb beta-chain and its sugar moiety, should be refractory to cross-reactive interference from carb Hb. To test this hypothesis, Hb was carbamylated in vitro and co-migration of carb Hb assessed with HbA1C using an electrophoretic method. Densitometric scans - post sodium cyanate incubation and electrophoretic separation - showed a 5 to 7 fold elevation of the HbA1C peak only, while HbA1C values obtained using immunoassay were unaffected. Also assessed was carbamylation interference in vivo, and a positive proportional bias with the electrophoretic system (Y) was observed compared to the immunoassay system (X) (y = 1.2x - 0.21 percent). Others have shown that carb Hb may cause a clinically significant false elevation in patient HbA1C values, when methods based on charge separation of Hb species are used. It is our conclusion, however, that while carb Hb may play a role, the differences observed in this study are largely due to calibration.

Antibodies, Monoclonal↗