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Biomedical subjects

Amitava Dasgupta

Publications and source records attributed to Amitava Dasgupta.

At least 37 records · Page 2Linked to original sources

Effect of Brazilian, Indian, Siberian, Asian, and North American ginseng on serum digoxin measurement by immunoassays and binding of digoxin-like immunoreactive components of ginseng with Fab fragment of antidigoxin antibody (Digibind).

We compared Brazilian, Indian, Siberian, Asian, and North American ginseng for potential interference with 3 digoxin immunoassays: fluorescence polarization (FPIA), microparticle enzyme (MEIA), and Tina-quant (Roche Diagnostics, Indianapolis, IN). We supplemented aliquots of a drug-free serum pool with ginseng extracts representing expected in vivo concentrations and overdose. We observed apparent digoxin-like immunoreactivity with FPIA, modest immunoreactivity with MEIA, and no apparent digoxin immunoreactivity with the Tina-quant with all ginsengs except Brazilian, which showed no immunoreactivity with any assay. When aliquots of serum pools prepared from patients receiving digoxin were supplemented with ginsengs, we observed falsely elevated digoxin values with FPIA, falsely lower digoxin values (negative interference) with MEIA, and no interference with the Tina-quant. Digoxin-like immunoreactive components of various ginsengs have moderate protein binding; monitoring free digoxin concentrations does not eliminate such interference. We also observed that Digibind (Burroughs Wellcome, Research Triangle Park, NC) can bind free digoxin-like immunoreactive components of ginsengs; such effects can be monitored by measuring apparent free digoxin concentrations. Indian, Asian, and North American ginsengs interfere with serum digoxin measurement by FPIA and MEIA; the Tina-quant is free of such interference. Digibind can bind free digoxin-like immunoreactive components of ginseng.

Amaranthaceae↗

Comparison of spot tests with AdultaCheck 6 and Intect 7 urine test strips for detecting the presence of adulterants in urine specimens.

BACKGROUND: Several adulterants are used to mask tests for abused drugs in urine. Adulterants such as "Klear" and "Whizzies" contain potassium nitrite while "Urine Luck" contains pyridinium chlorochromate (PCC). The presence of these adulterants cannot be detected by routine specimen integrity check (pH, specific gravity, creatinine and temperature). We previously reported the development of rapid spot tests to detect the presence of these adulterants. AdultaCheck 6 and Intect 7 urine test strips are commercially available for detecting the presence of these adulterants along with specific gravity, creatinine and pH in urine. METHODS: The performance of these two test strips for detecting adulterants was compared with the results obtained by spot tests. RESULTS: Both AdultaCheck 6 and Intect 7 effectively detected the presence of nitrite and pyridinium chlorochromate in urine. Moreover, both test strips successfully detected the presence of glutaraldehyde, for which no spot test is currently available. High amount of glucose and ascorbic acid did not cause any false positive result with AdultaCheck 6 or Intect 7. CONCLUSIONS: Both AdultaCheck 6 and Intect 7 can be used for checking the integrity of a urine specimen submitted for drugs of abuse testing.

Ascorbic Acid↗

Cytokine production by non-adherent mouse splenocyte cultures to Echinacea extracts.

BACKGROUND: Echinacea is commonly used in oral dosage as an immune stimulant to increase resistance to viral, bacterial and fungal infections of the upper respiratory tract. It has been suggested that Echinacea is able to stimulate innate immune responses, including those regulated by macrophages and natural killer cells. Indeed, macrophages respond to purified polysaccharide and alkylamide preparations. However, the mechanisms for stimulation of cells responsible for adaptive immunity have not been fully elucidated for other molecules present in Echinacea purpurea preparations. METHODS: Adherent and non-adherent mouse splenocyte populations were incubated in vitro with Echinacea, or with water or alcohol soluble Echinacea extract preparations. Supernatants were collected at 48-h post-incubation, and tested by standard ELISA for presence of secreted cytokines and proinflammatory mediators. RESULTS: Whole splenocyte populations were capable of producing significant amounts IL-6 (1014 pg/ml) in response to Echinacea preparations. The response was primarily contained towards products isolated to the water extract preparation; no IL-6 was produced upon challenge with the alcohol extract. The IL-6 response was produced by the non-adherent cellular population, which made 4912 pg/ml IL-6 when treated with water soluble extract at 1 mg/ml. Likewise, the water soluble extract of Echinacea was able to stimulate non-adherent splenocyte populations to produce TNF-alpha (2082 pg/ml), IL-10 (892 pg/ml) and MIP-1alpha (6486 pg/ml) from non-adherent splenocytes, but only significant concentrations of TNF-alpha and MIP-1alpha mediators were produced from adherent populations at similar dose concentrations. Neither population of splenocytes was capable of stimulating significant production of IFN-gamma, IL-2 or IL-12 to any preparation of Echinacea examined. CONCLUSIONS: The immune stimulatory ability of components contained within E. purpurea extracts offer insight into possible therapeutic potential of this product to regulate non-adherent lymphocytes in immune responses and activation events.

Alcohols↗

Interference of endogenous digoxin-like immunoreactive factors in serum digoxin measurement is minimized in a new turbidimetric digoxin immunoassay on ADVIA 1650 analyzer.

Endogenous digoxin-like immunoreactive factors (DLIF) cross-react with antidigoxin antibody and falsely elevate or lower measured serum digoxin concentrations, depending on the assay design. Recently, Bayer Diagnostics released a turbidimetric assay for digoxin on the ADVIA 1650 analyzer. We studied potential interference of DLIF with this new digoxin assay. We analyzed 40 serum specimens from patients who have pathologic conditions that may increase serum DLIF concentrations. These patients were never exposed to digoxin or other agents that may lead to a measurable digoxin concentration. We also analyzed five specimens from autopsy and five specimens from neonates. Apparent digoxin concentrations were measured using the new turbidimetric digoxin assay, the fluorescence polarization immunoassay (FPIA, Abbott Laboratories, Abbott Park, IL), and also the chemiluminescent immunoassay (CLIA, Bayer Diagnostics). We observed measurable apparent digoxin levels with the FPIA in 5 uremic patients (range 0.24-0.86 ng/mL), 6 patients with liver disease (range 0.21-0.72 ng/mL), in 3 patients in the third trimester of pregnancy (0.21-26 ng/mL), and in 3 neonates (range 0.21-0.46 ng/mL). Four out of 5 autopsy specimens showed measurable apparent digoxin concentrations (0.23-0.81 ng/mL). In contrast, only 1 specimen (a uremic patient) showed an apparent digoxin concentration of 0.26 ng/mL with the turbidimetric digoxin immunoassay (FPIA value 0.86 ng/mL, CLIA value 0.32 ng/mL). Because DLIF is absent in the protein-free ultrafiltrate, we also measured free digoxin concentrations in DLIF-positive patients to ensure that the apparent digoxin concentrations were caused by DLIF. We observed no apparent digoxin concentrations in the protein-free ultrafiltrate in any DLIF-positive specimens. When serum specimens containing elevated concentrations of DLIF but no digoxin were supplemented with a known concentration of digoxin, we observed falsely elevated digoxin concentrations by the FPIA, as expected. In contrast, we observed a good agreement between the target and observed concentrations when the new turbidimetric assay was used. We conclude that DLIF has minimal effect on serum digoxin measurements by the new turbidimetric assay.

Adult↗

Rapid detection of oleander poisoning using digoxin immunoassays: comparison of five assays.

Oleander is an ornamental shrub that grows in the United States, Australia, India, Sri Lanka, China, and other parts of the world. All parts of the plant are poisonous because the presence of cardiac glycoside oleandrin. Despite its toxicity, oleander extract is used in folk medicines. Because of its structural similarity, oleandrin cross-reacts with the fluorescence polarization immunoassay (FPIA) for digoxin. We studied the potential of detecting oleandrin in serum using 5 common digoxin immunoassays (FPIA, MEIA, both from Abbott; Beckman digoxin assay on Synchron LX, Chemiluminescent assay, CLIA from Bayer Diagnostics) and a recently FDA-approved turbidimetric assay on the ADVIA 1650 analyzer (Bayer). Aliquots of drug-free and digoxin-like immunoreactive substances (DLIS)-free serum pools were supplemented with ethanol extract of oleander leaves or oleandrin (Sigma Chemicals) in amounts expected in vivo after severe overdose. We observed significant apparent digoxin concentration with FPIA, Beckman, and the new turbidimetric assay (1 mL drug-free serum supplemented with 5.0 microL of oleander extract: apparent digoxin 2.36 ng/mL by the FPIA, 0.32 ng/mL by the MEIA, 0.93 ng/mL by the Beckman, 0.82 ng/mL by the new turbidimetric assay). The CLIA showed no cross-reactivity. Similar observations were made when serum pools were supplemented with oleandrin. Because cross reactivity should be tested in the presence of the primary analyte, we supplemented serum pools prepared from patients receiving digoxin with oleander extract or oleandrin. The measured digoxin concentrations were falsely elevated with the FPIA, Beckman, and turbidimetric assays, the highest false elevation being observed with the FPIA. Surprisingly, apparent digoxin concentrations were falsely lowered when MEIA was used. Digibind neutralizes free apparent digoxin concentration in vitro in serum pools supplemented with oleander extract, and this effect can be measured by the FPIA. We conclude that FPIA is most sensitive to detect the presence of oleander in serum. In contrast, the CLIA (no cross-reactivity) should be used for monitoring digoxin in a patient receiving digoxin and self-medicated with a herbal remedy containing oleander.

Confidence Intervals↗

Neutralization of free digoxin-like immunoreactive components of oriental medicines Dan Shen and Lu-Shen-Wan by the Fab fragment of antidigoxin antibody (Digibind).

Dan Shen and Lu-Shen-Wan, traditional Chinese medicines used as remedies for heart diseases, demonstrate digoxin-like immunoreactivity. The digoxin-like immunoreactive components of Lu-Shen-Wan show approximately 55% protein binding, while Dan Shen demonstrates concentration-dependent protein binding (68% bound at lower concentrations but only 25% bound at higher concentrations). Because Dan Shen and Lu-Shen-Wan can cause substantial toxic effects in patients, we studied the potential use of Digibind (Fab fragment of polyclonal antidigoxin antibody; Burroughs Wellcome, Research Triangle Park, NC) for neutralizing the pharmacologically active free fractions of Dan Shen and Lu-Shen-Wan. Drug-free serum pools were supplemented with Dan Shen or Lu-Shen-Wan to achieve apparent digoxin concentrations expected in severe overdoses. Aliquots of supplemented serum pools were supplemented further with aqueous Digibind solution to achieve final Digibind concentrations between 5 and 20 microg/mL (expected in vivo range in patients overdosed with digoxin and being treated with Digibind). We observed complete removal of the free apparent digoxin in the presence of Digibind for Dan Shen and Lu-Shen-Wan. Digibind binds free digoxin-like immunoreactive components of Dan Shen and Lu-Shen-Wan in vitro.

Bufanolides↗

Interference of carbamazepine and carbamazepine 10,11-epoxide in the fluorescence polarization immunoassay for tricyclic antidepressants: estimation of the true tricyclic antidepressant concentration in the presence of carbamazepine using a mathematical model.

We evaluated effects of carbamazepine and its metabolite, carbamazepine 10,11-epoxide, on the measurement of tricyclic antidepressant (TCA) concentrations in serum using the fluorescence polarization immunoassay (FPIA). We determined apparent TCA concentrations in 30 patients who were receiving carbamazepine but no TCAs. Carbamazepine concentrations ranged from 1.4 to 20.9 microg/mL (5.9-88.4 micromol/L); the observed apparent TCA concentrations ranged from 31.8 to 130.1 ng/mL (113.4-463.9 micromol/L). When aliquots of the drug-free serum pool were supplemented with known concentrations of carbamazepine or its metabolite, we observed significant apparent TCA concentrations using the FPIA; however, interference of carbamazepine was more than 3-fold more than its metabolite. When serum pools prepared from patients receiving TCA but no anticonvulsant medications were supplemented with known amounts of carbamazepine or its metabolite, we observed falsely elevated TCA concentrations. We formulated an equation to calculate the apparent TCA concentration from known carbamazepine concentrations. If carbamazepine and TCAs are present in a specimen, the true TCA concentration can be estimated by subtracting the calculated TCA concentration (due to carbamazepine) from the observed TCA concentration as measured by the TCA FPIA. This mathematical modeling is feasible because TCAs, even at very high concentrations, showed no interference with the carbamazepine FPIA.

Antidepressive Agents, Tricyclic↗

Effect of the traditional Chinese medicines Chan Su, Lu-Shen-Wan, Dan Shen, and Asian ginseng on serum digoxin measurement by Tina-quant (Roche) and Synchron LX system (Beckman) digoxin immunoassays.

Chan Su, Lu-Shen-Wan, Dan Shen, and Asian ginseng are traditionally used to treat a number of conditions, including cardiovascular disease. All of these traditional Chinese medicines exhibit cardioactive properties. Digoxin is a cardioactive drug with a narrow therapeutic range (0.8-1.9 ng/mL). A patient taking digoxin may also take these Chinese medicines for their cardiotonic effects. Moreover, the active components of these medicines that are responsible for cardiotonic effects bear structural similarities to digoxin. Therefore, we studied the potential interference of these Chinese medicines with two digoxin immunoassays--the Tina-quant (Roche Diagnostics) and the Beckman (Synchron LX system)--and compared the values with the fluorescence polarization immunoassay (FPIA; Abbott Laboratories). When very small amounts (2-5 microL) of aqueous extract of Chan Su or Lu-Shen-Wan were added to drug-free serum, we observed high digoxin-like immunoreactivity with the FPIA. In contrast, when ethyl acetate extract of Dan Shen or microliter amounts of ginseng extract were added to drug-free serum, we observed modest digoxin-like immunoreactivity with the FPIA, but no apparent digoxin activity with the Roche and Beckman digoxin immunoassays. When aliquots of a digoxin pool prepared from patients receiving digoxin were supplemented with these Chinese medicines, we observed the most significant interference with the FPIA. The presence of endogenous digoxin-like immunoreactive substances can have additive effects with these Chinese medicines and falsely increase apparent digoxin levels by the FPIA. On the other hand, the Roche and Beckman assays were free from interference from DLIS but showed significant interference from Chan Su and Lu-Shen-Wan. We conclude that the FPIA showed the most significant interference from all four of the Chinese medicines we studied. However, the Roche and Beckman assays showed no interference from two (Dan Shen and Asian ginseng) of the four Chinese medicines we studied.

Bufanolides↗

Evaluation of an automated chemiluminescent immunoassay for complexed PSA on the Bayer ACS:180 system.

Prostate-specific antigen (PSA), the most important tumor marker for the detection of prostate cancer, exists in serum in a free, uncomplexed form (free PSA [fPSA]), and as bound to protease inhibitors (mainly alpha1-antichymotrypsin [ACT]). The measurement of complexed PSA (cPSA) concentration in serum has been shown to have better sensitivity and specificity than serum total PSA concentration. A new chemiluminescent immunoassay for cPSA for use on the Bayer ACS:180 fully automated system (Bayer Corp, Tarrytown, NY) has been developed and evaluated. The precision of the new assay was <3.9% (within-run coefficient of variation [CV]) and <5.0% (total CV). The analytical sensitivity (95% upper limit of noise at zero calibrator) was <0.03 ng/mL. A comparison of the ACS:180 cPSA results with the cPSA concentrations calculated from the ACCESS (Beckman-Coulter) PSA and fPSA assays yielded the following regression equation: ACS:180 cPSA=0.93* (calculated ACCESS cPSA)+0.43, R=0.993, n=95. The mean dilution and spike recovery for five samples were both 98%. No interference was observed from hemoglobin, triglyceride, or bilirubin (NCCLS protocol). These results indicate that the ACS:180 cPSA assay is precise, and compares well with the calculated cPSA from ACCESS total and free-PSA results.

Antigen-Antibody Reactions↗

Impaired protein binding of Chinese medicine DanShen in uremic sera and sera with hyperbilirubinemia: rapid assessment of total and free DanShen concentrations using the fluorescence polarization immunoassay for digoxin.

DanShen is a Chinese medicine that is used to treat cardiovascular disorders. DanShen is moderately to strongly protein bound, mainly to albumin. Because impaired protein binding of albumin-bound drugs in uremia has been reported, we studied protein binding of DanShen by measuring the digoxin-like immunoreactive component of this Chinese medicine. We observed a significantly higher percentage of free fraction of DanShen in uremic sera in vitro. Impaired protein binding of DanShen was also observed in sera from patients with liver disease, who had elevated concentrations of bilirubin. Treating uremic sera with activated charcoal significantly improved the protein binding of DanShen, indicating that uremic compounds are responsible for the impaired protein binding of DanShen. On the other hand, when various amounts of bilirubin were added to aliquots of the normal pool supplemented with DanShen, we observed only a modest displacement of DanShen from the protein-binding sites by bilirubin, indicating that hypoalbuminemia may play a major role in impaired protein binding of DanShen in sera with elevated bilirubin concentrations. We conclude that protein binding of DanShen is lower in uremic sera and in sera with elevated bilirubin concentrations.

Acetates↗

Asian and Siberian ginseng as a potential modulator of immune function: an in vitro cytokine study using mouse macrophages.

BACKGROUND: Ginseng is a widely used herbal product in China, other Asian countries, and in the Unites States. There is a traditional belief that ginseng stimulates immune functions. In this study, the innate effects of Asian and Siberian ginsengs on cytokines and chemokines produced by cultured macrophages were examined. MATERIALS AND METHODS: The effects of Asian and Siberian ginseng on cytokines and chemokines produced by cultured macrophages were examined. Mouse macrophages (J774A.1) were incubated with Asian or Siberian ginseng at varying concentrations (1, 10, 100, and 1000 microg/ml) for 24 h and then harvested for RNA isolation. The expression levels of IL-1beta, IL-12, TNF-alpha, MIP-1 alpha, and MIP-2 mRNA were measured by quantitative PCR. RESULTS: Our data showed that Asian ginseng induced a statistically significant increase in IL-12 expression at both mRNA and protein levels. However, the minor twofold increase is probably biologically insignificant. No significant increase of IL-12 by Siberian ginseng was observed at any dose level studied. No significant change in IL-1beta, IL-15, TNF-alpha, or MIP-1alpha mRNA was observed by either Asian or Siberian ginseng treatment. CONCLUSIONS: Our data showed statistically significant differential regulation of IL-12 by Asian ginseng. Siberian ginseng did not show a statistically significant increase. We conclude that both Asian ginseng and Siberian ginseng cannot significantly stimulate innate macrophage immune functions that influence cellular immune responses. Therefore, contrary to the popular belief, Asian and Siberian ginseng may not stimulate immune function.

Adjuvants, Immunologic↗

Study on mechanism of action of Chinese medicine Chan Su: dose-dependent biphasic production of nitric oxide in trophoblastic BeWo cells.

BACKGROUND: Chan Su, a traditional Chinese medicine, is used for treating the heart diseases and other systemic illnesses. Our studies with animal model have revealed its role in increasing intracellular calcium concentration in cardiomyocytes. Nitric oxide (NO), a second messenger molecule, and its metabolites have been demonstrated to maintain and modulate multiple physiologic functions including the cardiovascular and reproductive systems. In order to explore the mechanism of action of Chan Su, we studied the ability of Chan Su to stimulate NO production in cultured trophoblastic BeWo cells. MATERIALS AND METHODS: BeWo cell is a cloned established cell line purified from human choriocarcinoma. These cells have some similarities in biological behavior with endothelial cells. Therefore, BeWo cell line may act as a model system for production of nitric oxide by Chan Su both in placenta and in cardiovascular tissue, and the results can easily be extrapolated to cardiomyocytes. Very small amount of ethanol extract of Chan Su was added to the cultured cells in KBM buffer and a chemiluminescence system was used for the measurement of nitric oxide. The amounts of Chan Su extract added to cultured cells were comparable to expected level of Chan Su in human serum after ingestion. We also repeated these experiments with bufalin, the active component of Chan Su. RESULTS: The ethanol extract of Chan Su (5 and 10 microg/ml) significantly increased NO production up to 110% of basal control value, but higher concentrations (40 and 80 microg/ml) of Chan Su (as expected in an overdose) resulted in decreased NO production below the control level. This biphasic effect on nitric oxide production was also observed with bufalin, the active component of Chan Su responsible for its digoxin-like immunoreactivity. The presence of bufalin in Chan Su preparation was confirmed by thin layer chromatography (TLC) analysis. CONCLUSIONS: Chan Su as well as bufalin is able to modulate the production of NO in BeWo cell line.

Amphibian Venoms↗

Activated charcoal is effective but equilibrium dialysis is ineffective in removing oleander leaf extract and oleandrin from human serum: monitoring the effect by measuring apparent digoxin concentration.

Accidental poisoning from oleander leaf or oleander tea can be life threatening. The authors studied the effectiveness of activated charcoal and equilibrium dialysis in removing oleander leaf extract and commercially available oleandrin as well as oleandrigenin, the active components of oleander plant, from human serum. Oleander leaf extract was prepared in distilled water and drug-free serum was supplemented with the extract. Then serum was treated with activated charcoal at room temperature and an aliquot was removed at 0 minutes, 10 minutes, 20 minutes, and finally 30 minutes to study the presence of oleander extract by measuring the apparent digoxin concentration using the FPIA for digoxin. The authors observed effective removal of oleander extract by activated charcoal. When the authors supplemented other drug-free serum pools with pure oleandrin or oleandrigenin and then subsequently treated them with activated charcoal, the authors observed complete removal of digoxin-like immunoreactivity at the end of 30 minutes' treatment. When drug-free serum pool supplemented with either oleander leaf extract, oleandrin, or oleandrigenin was passed through a small column packed with activated charcoal, the authors observed almost no apparent digoxin concentration following the passage through the column indicating that activated charcoal is very effective in removing oleander from human serum in vitro. In contrast, when serum pools containing either oleander leaf extract or oleandrin were subjected to equilibrium dialysis against phosphate buffer at pH 7.4, the authors observed no significant reduction in apparent digoxin concentration even after 24 hours. The authors conclude that activated charcoal is effective but equilibrium dialysis is ineffective in removing oleander leaf extract from human serum.

Cardenolides↗

A new turbidometric digoxin immunoassay on the ADVIA 1650 analyzer is free from interference by spironolactone, potassium canrenoate, and their common metabolite canrenone.

Spironolactone and potassium canrenoate (aldosterone antagonist diuretics) are often used with digoxin in clinical practice. It has been well documented in the literature that spironolactone, potassium canrenoate, and their common metabolite canrenone cross-react with the fluorescence polarization immunoassay (FPIA) for digoxin and falsely elevate measured serum digoxin concentrations. Recently a new turbidometric assay for digoxin became commercially available from Bayer Diagnostic for application on the ADVIA 1650 Chemistry analyzer. We studied the potential interference of these compounds in this new digoxin assay. Aliquots of drug-free serum were supplemented with therapeutic and above-therapeutic concentrations of spironolactone, canrenone, and potassium canrenoate, and apparent digoxin concentrations were measured. We observed apparent digoxin concentrations with the FPIA digoxin assay as expected but observed no apparent digoxin levels with the new turbidometric immunoassay. When serum pools prepared from patients receiving digoxin were supplemented with these compounds in concentrations expected in serum in patients receiving these medications, we observed falsely elevated digoxin levels with the FPIA digoxin assay, but no statistically significant change was observed with the new turbidometric assay. We conclude that the new turbidometric assay for digoxin is free from interference by spironolactone, potassium canrenoate, and their common metabolite canrenone.

Canrenoic Acid↗

Use of fluorescence polarization immunoassay for salicylate to avoid positive/negative interference by bilirubin in the Trinder salicylate assay.

BACKGROUND: Significant positive bias of bilirubin in the Trinder salicylate method on automated analysers has been reported. Because the fluorescence polarization immunoassay (FPIA) for salicylate is also widely used in the clinical laboratory, we studied the potential interference of bilirubin in the salicylate FPIA. METHODS: Salicylate serum pools (three different pools) were prepared from patients receiving salicylate. We also prepared a normal serum pool containing no salicylate and serum pools containing no salicylate but elevated bilirubin. Aliquots of one salicylate pool were supplemented with various concentrations of bilirubin (42.8- 427.5 micro mol/L) and salicylate concentrations were measured by the salicylate FPIA (TDxFLx and AxSYM analysers). We also assayed these specimens with the Trinder salicylate method, using both Synchron LX and Hitachi 917 analysers for comparison with the results obtained by the FPIA method. In another experiment, aliquots of the two other salicylate pools were supplemented with various concentrations of bilirubin (42.8-684.0 micro mol/L) in order to further study the effect of very high bilirubin concentrations on the salicylate FPIA. We also added known amounts of salicylate to serum pools containing elevated bilirubin but no salicylate and measured salicylate using the FPIA in order to study the recovery of salicylate in the presence of elevated bilirubin concentrations. RESULTS: The FPIA showed minimal interference from bilirubin. We also observed good recovery of salicylate when specimens high in bilirubin but containing no salicylate were supplemented with known amounts of salicylate and the FPIA was used for the measurement of salicylate concentration. However, we observed falsely low salicylate concentrations with the Trinder method using the Synchron LX (primary wavelength 560 nm, secondary wavelength 700 nm) analyser and falsely increased salicylate concentrations using the same reagent but the Hitachi 917 (primary wavelength 546 nm, no secondary wavelength) analyser in the presence of elevated bilirubin levels compared with the FPIA results. CONCLUSION: We conclude that the FPIA for salicylate is not affected by high bilirubin concentrations up to 427.5 micro mol/L.

Artifacts↗

Effect of Asian and Siberian ginseng on serum digoxin measurement by five digoxin immunoassays. Significant variation in digoxin-like immunoreactivity among commercial ginsengs.

Asian and Siberian ginsengs contain glycosides with structural similarities to digoxin. We studied potential interference of ginseng in 5 digoxin immunoassays in 3 Asian (2 liquid extracts, 1 capsule) and 3 Siberian ginseng preparations (1 liquid extract, 2 capsules). With the fluorescence polarization immunoassay (FPIA), we observed apparent digoxin activity in 1 Asian liquid preparation and in the liquid extract and 1 capsule form of Siberian ginseng. In mice fed ginseng, we observed digoxin activities in the serum (Asian, 0.48-0.68 ng/mL [0.6-0.9 nmol/L]; Siberian, 0.20-0.47 ng/mL [0.3-0.6 nmol/L]), indicating that such interferences also occur in vivo. Serum pools prepared from samples from patients receiving digoxin and then supplemented with Asian or Siberian ginseng showed falsely increased digoxin values using the FPIA (e.g., for Asian ginseng, 1.54 ng/mL [2.0 nmol/L] vs control value, 1.10 ng/mL [1.4 nmol/L]) and falsely decreased values using the microparticle enzyme immunoassay (MEIA; 0.73 ng/mL [0.9 nmol/L] vs control value, 1.04 ng/mL [1.3 nmol/L]). Digoxin-like immunoreactive substances (DLISs) showed synergistic effects with ginsengs in interfering with the FPIA and MEIA for digoxin. No interference was observed with 3 other digoxin assays, even in the presence of elevated DLISs.

Animals↗

Review of abnormal laboratory test results and toxic effects due to use of herbal medicines.

Herbal medicines are used widely in the United States, and according to a recent survey, the majority of people who use herbal medicines do not inform their physicians about their use. Herbal medicines can cause abnormal test results and confusion in proper diagnosis. Herbal medicines can alter test results by direct interference with certain immunoassays. Drugherb interactions can result in unexpected concentrations of therapeutic drugs. For example, low concentrations of several drugs (e.g., cyclosporine, theophylline, digoxin) can be observed in patients who initiated self-medication with St John's wort. Herbal medicines can alter physiology, and these changes can be reflected in abnormal test results. For example, kavakava can cause drug-induced hepatitis, leading to unexpected high concentrations of liver enzymes. Use of toxic herbal products such as ma huang (an ephedra-containing herbal product), Chan Su, and comfrey may cause death. Other toxic effects of herbal medicines include cardiovascular toxic effects, hematologic toxic effects, neurotoxic effects, nephrotoxic effects, carcinogenic effects, and allergic reactions.

Clinical Laboratory Techniques↗