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Biomedical subjects

E H Herman

Publications and source records attributed to E H Herman.

At least 19 recordsLinked to original sources

The use of serum levels of cardiac troponin T to compare the protective activity of dexrazoxane against doxorubicin- and mitoxantrone-induced cardiotoxicity.

PURPOSE: To compare the protective effect of dexrazoxane (DRZ) against cardiotoxicity induced by doxorubicin (DXR) and mitoxantrone (MTX). METHODS: Adult male spontaneously hypertensive rats (SHR) were treated with 1 mg/kg DXR (i.v.) or 0.5 mg/kg MTX (i.v.), either alone or 30 min after 25 mg/kg DRZ (i.p.) weekly for up to 12 weeks. Animals treated with DXR alone either died (n = 2) or were killed (n = 3) at a cumulative dose of 10 mg/kg. The severity of cardiac lesions (cytoplasmic vacuolization and myofibrillar loss) were graded semiquantitatively by light microscopy on a scale of 0 to 3. RESULTS: Cardiac lesions were observed in all SHR given DXR or MTX alone, and were attenuated in those given DRZ prior to either DXR (mean lesion scores 2.7 vs 1.5; P < 0.05) or MTX (mean lesion scores 2.0 vs 1.25; P < 0.05). Cardioprotection was also demonstrated by monitoring serum levels of cardiac troponin T (cTnT), which were elevated in all animals receiving DXR or MTX alone. These elevations were attenuated in SHR given the combination of DXR and DRZ (mean values 0.79 ng/ml vs 0.24 ng/ml; P < 0.05) and MTX and DRZ (mean values 0.19 ng/ml vs 0.04 ng/ ml; P < 0.05). Biochemical studies have shown that both DXR and MTX form potentially cardiotoxic complexes with iron. ADR-925 (the hydrolysis product of DRZ) and other chelators (EDTA, diethylenetriaminepentaacetic acid and desferrioxamine) removed Fe(III) from its complex with MTX or DXR. CONCLUSIONS: The present study showed that DRZ significantly attenuates the cardiotoxicity induced by DXR and MTX, and that this protective activity can be assessed by morphological evaluation of cardiac tissues and by monitoring the concentrations of cTnT in serum.

Animals↗

Cardiovascular effects of buccal exposure to dermal nicotine patches in the dog: a comparative evaluation.

OBJECTIVE: Safety concerns have been raised over the possible effects of inappropriate exposure to transdermal nicotine patches. This study was initiated to determine whether placement of these products into the mouth could affect cardiovascular function. METHODS: In a series of 10 anesthetized beagle dogs, Nicoderm, Habitrol, ProStep I (Intact), ProStep D (Damaged) transdermal nicotine products or the Skoal Bandit smokeless tobacco plug were placed in the buccal cavity for 5 minutes. Systemic arterial blood pressure and the electrocardiogram were monitored for up to 90 minutes after exposure with blood samples at intervals during the first 10 minutes for plasma nicotine concentration. RESULTS: The systolic and diastolic arterial blood pressures and heart rate increased within 2 minutes of buccal exposure to either the intact or the damaged ProStep nicotine product. Ventricular arrhythmias were observed in 6 of 10 dogs exposed to the intact patch and 7 of 10 dogs exposed to the damaged patch during the period of maximal cardiovascular response. Modest increases in systemic blood pressure and heart rate were seen with the Nicoderm and Habitrol products but not with the Skoal Bandit. The increases in systemic arterial pressure and heart rate occurring after exposure to ProStep were significantly more severe than those observed after Nicoderm and Habitrol. Mean peak nicotine levels of 9.8 microg/mL (ProStep 1), 5.4 microg/mL (ProStep D), 3.4 microg/mL (Habitrol), 2.5 microg/mL (Nicoderm), and 0.12 microg/mL (Skoal Bandit) were detected within 2 to 10 minutes after buccal placement of the product. CONCLUSIONS: Certain transdermal nicotine patches, when applied to a nondermal site such as the buccal cavity for a short period (5 minutes) can rapidly provoke significant cardiovascular alterations (hypertension, tachycardia, and ventricular arrhythmias). The magnitude of the cardiovascular responses occurring after buccal exposure to a product such as ProStep could pose a risk to susceptible individuals.

Administration, Oral↗

Comparison of the protective effects of amifostine and dexrazoxane against the toxicity of doxorubicin in spontaneously hypertensive rats.

PURPOSE: To compare the protective effects of amifostine and dexrazoxane against the chronic toxicity induced by doxorubicin in spontaneously hypertensive rats (SHR). METHODS: The animals were pretreated with amifostine (200 mg/kg. i.p.), dexrazoxane (25 mg/kg, i.p.) or saline 30 min before the administration of doxorubicin (1 mg/kg, i.v.), once-weekly for 12 weeks. Control animals received similar amounts of amifostine or saline. The SHR underwent necropsy examination 1 week after the last dosing, and cardiac, renal, and gastrointestinal lesions were graded semiquantitatively. RESULTS: Amifostine and dexrazoxane provided equal degrees of protection against the renal toxicity of doxorubicin. However, dexrazoxane was more cardioprotective than amifostine, and prevented the mortality induced by doxorubicin. This mortality was not decreased by pretreatment with amifostine. The loss of body weight caused by doxorubicin was actually worsened by coadministration of amifostine. CONCLUSIONS: Compared to dexrazoxane, amifostine provided a comparable degree of protection against the nephrotoxicity of doxorubicin, but was less cardioprotective and did not prevent the mortality and loss of body weight produced by doxorubicin. These differences may be related to the fact that amifostine may act as a scavenger of reactive oxygen species, whereas dexrazoxane may prevent their formation.

Amifostine↗

Correlation between serum levels of cardiac troponin-T and the severity of the chronic cardiomyopathy induced by doxorubicin.

PURPOSE: To investigate, over a wide range of cumulative doxorubicin doses, the feasibility of using serum concentrations of cardiac troponin-T (cTnT) as a biomarker for doxorubicin-induced myocardial damage. MATERIALS AND METHODS: Groups of spontaneously hypertensive rats (SHR) were given 1 mg/kg doxorubicin weekly for 2 to 12 weeks. Cardiomyopathy scores were assessed according to the method of Billingham and serum levels of cTnT were quantified by a noncompetitive immunoassay. Myocardial localization of cTnT was studied by immunohistochemical staining and confocal microscopy. RESULTS: Increases in serum levels of cTnT (0.03 to 0.05 ng/mL) and myocardial lesions (cardiomyopathy scores of 1 or 1.5) were found in one out of five and two out of five SHR given 2 and 4 mg/kg doxorubicin, respectively. All animals given 6 mg/kg or more of doxorubicin had increases in serum cTnT and myocardial lesions. The average cTnT levels and the cardiomyopathy scores correlated with the cumulative dose of doxorubicin (0.13 v 0.4 ng/mL cTnT and scores of 1.4 v 3.0 in SHR given 6 and 12 mg/kg doxorubicin, respectively). Decreased staining for cTnT was observed in cardiac tissue from SHR receiving cumulative doses that caused only minimal histologic alterations (scores of 1 to 1.5). Staining for cTnT decreased simultaneously with increases in the severity of the cardiomyopathy scores. CONCLUSION: cTnT is released from doxorubicin-damaged myocytes. Measurements of serum levels of this protein seem to provide a sensitive means for assessing the early cardiotoxicity of doxorubicin.

Animals↗

Comparison of the chronic toxicity of piroxantrone, losoxantrone and doxorubicin in spontaneously hypertensive rats.

Comparisons were made of the toxic effects produced in the heart, kidney and small intestine of spontaneously hypertensive rats (SHR) by the administration of 12 consecutive weekly doses of doxorubicin (1 mg/kg), and high, intermediate and low doses of piroxantrone (3, 1.5 and 0.75 mg/kg) and losoxantrone (1, 0.5 and 0.25 mg/kg). Animals receiving saline were used as controls. The toxicities of the three drugs were evaluated by clinical chemistry and hematological determinations, light microscopy and transmission electron microscopy. The severity of the histologic alterations in heart, kidney and small intestine was assessed semiquantitatively. Biochemical and molecular modeling studies were made to evaluate the formation of complexes of Fe(III) with piroxantrone and losoxantrone. The cardiac (myofibrillar loss and dilatation of the sarcoplasmic reticulum) and renal (glomerular vacuolization, tubular damage and laboratory evidence of a nephrotic syndrome) lesions induced by all three agents had similar features. However, the cardiac lesions induced by losoxantrone and doxorubicin were significantly more severe (Billingham scores) than those produced by piroxantrone. The renal lesions induced by piroxantrone and losoxantrone were less severe than those produced by doxorubicin. Similarly losoxantrone and piroxantrone-induced intestinal alterations (denudation of epithelial layer and inflammatory cellular infiltration) were less severe than those occurring after treatment with doxorubicin. Both losoxantrone and piroxantrone were shown to form Fe(III): drug complexes that may cause oxidative damage to various tissues.

Animals↗

Use of cardiac troponin T levels as an indicator of doxorubicin-induced cardiotoxicity.

The release of cardiac troponin T (cTnT) as a biomarker of doxorubicin-induced chronic cardiac injury was evaluated in the spontaneously hypertensive rat (SHR) model. Elevations in serum levels of cTnT and decreased immunohistochemical staining of heart sections for this protein were noted in SHRs treated with cumulative doses of doxorubicin (7 mg/kg) that induced only minimal histological alterations in myocytes. Concentrations of cTnT were further elevated, coincident with reduced immunohistochemical staining, in SHRs given 10-12 mg/kg doxorubicin. Thus, monitoring serum levels of cTnT can detect doxorubicin-induced myocyte damage in SHR and may prove useful for the noninvasive evaluation of this toxicity in humans.

Animals↗

Chemical, biological and clinical aspects of dexrazoxane and other bisdioxopiperazines.

The bisdioxopiperazine dexrazoxane (ICRF-187) has proven to be clinically very effective in reducing the cardiotoxicity of doxorubicin and other anthracyclines. Doxorubicin is thought to exert its toxicity through iron-based oxygen free radical-induced oxidative stress on the relatively unprotected cardiac muscle. Upon hydrolysis, dexrazoxane forms a compound similar to ethylenediaminetetraacetic acid (EDTA) which, like EDTA, is a strong chelator of iron. Dexrazoxane presumably exerts its cardioprotective effects by either binding free or loosely bound iron, or iron complexed to doxorubicin, thus preventing or reducing site-specific oxygen radical production that damages cellular components. The chemistry, biochemistry, and cell biology of dexrazoxane and other bisdioxopiperazines are discussed. The pre-clinical studies demonstrating the protective effects of dexrazoxane against toxicities caused by doxorubicin, other anthracyclines, bleomycin, alloxan, acetaminophen, and oxygen are also discussed. In vitro and in vivo studies of the cardioprotective and other effects of other bisdioxopiperazines are also covered. Also discussed are the anti-metastatic and radiosensitization effects of razoxane and dexrazoxane. The current clinical status of dexrazoxane in preventing anthracycline-induced toxicities in both adult and pediatric patients is reviewed.

Animals↗

Preclinical animal models of cardiac protection from anthracycline-induced cardiotoxicity.

The chronic cardiotoxic effects of anthracyclines were initially detected in clinical trials with daunorubicin and doxorubicin. The clinical importance of anthracycline-induced chronic cardiotoxicity has led to the development of several animal models of this syndrome. Animal species examined in detail as models of this cardiac toxicity include the rabbit, the normotensive and spontaneously hypertensive rat, the mouse, the pig, and the dog. The advantages and disadvantages of these animal models differ according to species: small animals can be used for comparative investigations of anthracycline analogues and/or protectors, which may be available only in limited amounts, while large animals can be used for studies in which evaluation of cardiac function are to be made. Among the various animals examined, the spontaneously hypertensive rat and the beagle dog are considered the most suitable small and large animal models, respectively, because of the reproducibility of the lesions induced by anthracyclines in the two species. A variety of pharmacologic agents has been tested for cardioprotective activity. The most successful of these agents are those that function as antioxidants, because they either scavenge reactive oxygen species or prevent their formation. The most clinically useful of these agents is ICRF-187 (dexrazoxane), which has been found to be cardioprotective in all animal models.

Animals↗

Comparison of the structural changes induced by doxorubicin and mitoxantrone in the heart, kidney and intestine and characterization of the Fe(III)-mitoxantrone complex.

Histologic, nick end labeling for apoptosis and electron microscopic studies were made of the heart, kidney and small intestine in spontaneously hypertensive rats (SHR) treated for 12 weeks with doxorubicin (1 mg/kg/week), mitoxantrone (0.5 or 0.25 mg/kg/week) or saline (controls). Semiquantitative scoring showed that the severity of the cardiac lesions produced by doxorubicin was comparable to that resulting from 0.5 mg/kg mitoxantrone, but greater than that induced by 0.25 mg/kg mitoxantrone (to which it is therapeutically equivalent). The nephropathy and the intestinal toxicity produced by doxorubicin were also more severe than those resulting from either dose of mitoxantrone. Apoptosis of cardiac myocytes was not induced by either drug, but involved cardiac dendritic cells in SHR given doxorubicin. Apoptosis in renal tubular epithelium was comparable in SHR given doxorubicin and the higher dose of mitoxantrone. Doxorubicin induced more frequent apoptosis in intestinal epithelium than did the higher dose of mitoxantrone. We also show that mitoxantrone and iron(III) form a strong 2:1 complex, in which the drug may be acting as a tridentate ligand. This complex, like the iron(III)-doxorubicin complex, may be capable of redox cycling and producing reactive oxygen intermediates (ROI) that damage tissue. Decreased formation of ROI by mitoxantrone may account for its reduced cardiotoxicity compared to that of doxorubicin.

Animals↗

Comparison of the protective effects against chronic doxorubicin cardiotoxicity and the rates of iron (III) displacement reactions of ICRF-187 and other bisdiketopiperazines.

Histologic and biochemical studies were carried out to compare the protective activity of various bisdiketopiperazines against the cardiac and renal toxicity induced by doxorubicin in spontaneously hypertensive rats (SHR), a well-established animal model of this disorder, with: (1) the rates of hydrolysis of these agents to form the iron-chelating derivatives (which are considered to cause a decrease in the formation of reactive oxygen intermediates) and (2) the ability of these derivatives to bind iron. SHR were given 12 weekly injections of doxorubicin, 1 mg/kg i.v. either alone or 30 min after the administration of ICRF-154, ICRF-187, ICRF-192, ICRF-197, ICRF-198, ICRF-239 and ADR-559. Semiquantitative grading of the severity of the resulting cardiac and renal lesions showed that ICRF-187, ICRF-154 and ADR-559 were the most protective, whereas ICRF-197 and ICRF-239 provided intermediate degrees of protection, and ICRF-192 and ICRF-198 were not protective. Quantitative measurements in vitro revealed only relatively small differences in the rates of opening of the two diketopiperazine rings of the various agents to form the corresponding iron-chelating diacid diamide derivatives, and in the ability of these various derivatives to remove iron from the iron-doxorubicin complex. Such differences showed no relationship with cardioprotective activity. Some bisdiketopiperazines (including ICRF-154 and ICRF-187) with cardioprotective activity also are inhibitors of DNA topoisomerase II; however, the significance of this relationship remains uncertain, since ADR-925, the open-ring derivative of ICRF-187, does not inhibit DNA topoisomerase II.

Animals↗

Pathogenesis and prevention of doxorubicin cardiomyopathy.

A review is presented of the various types of cardiotoxicity associated with the clinical use of doxorubicin, a highly effective antineoplastic agent of the anthracycline family. Acute toxicity is related to rapid intravenous administration of the drug and is manifested by vasodilatation, hypotension and cardiac arrhythmias. Subacute toxicity is very uncommon. It develops early in the course of therapy and is characterized by myocarditis and pericarditis. Chronic toxicity is the most common form of doxorubicin-induced cardiac toxicity. It is manifested by chronic dilated cardiomyopathy, which develops late in the course of therapy or shortly after its termination. Morphologic changes are characteristic and consist of myofibrillar loss and cytoplasmic vacuolization (which is due to dilatation of the sarcoplasmic reticulum) of the myocytes. The damaging effects of reactive oxygen species, generated by the interaction of doxorubicin with iron, play a critically important role in the pathogenesis of the chronic cardiotoxicity. Other factors related to this toxicity include inhibition of DNA topoisomerase II, stimulation of certain immune responses and a diversity of other biochemical effects on various cellular organelles. Doxorubicin induces apoptosis in a variety of cell types, but not in cardiac myocytes. The chronic cardiotoxicity of doxorubicin is significantly attenuated by chelation of iron by ICRF-187 (dexrazoxane). A greatly delayed type of doxorubicin cardiotoxicity has been recently found to occur in survivors of childhood cancers who were treated with doxorubicin without any immediate adverse effects, but develop chronic cardiomyopathy at periods of time ranging up to 15 years later. The pathogenesis of this type of toxicity remains to be determined.

Antibiotics, Antineoplastic↗

Age dependence of the cardiac lesions induced by minoxidil in the rat.

To evaluate the age- and dose-dependence of the cardiotoxicity induced by minoxidil, histologic studies were made of the hearts of 3-, 6-, 15- and 24-month-old Sprague Dawley rats treated with either 10, 50 or 250 mg/kg of the drug p.o. daily for two consecutive days. The 10 mg/kg dose of minoxidil induced myocyte necrosis in each of the 24-month-old rats but only in one other animal (6-month-old). The 50 mg/kg dose produced necrosis in all the 15- and 24-month-old rats, but in only one of the other animals (6-month-old), while the 250 mg/kg dose induced necrosis in animals of all ages. Inflammation was present in all minoxidil-treated animals, but at each dose level it was most severe in the oldest rats. Interstitial hemorrhages were observed at all dose levels, but increased in frequency and severity with the dose of minoxidil, and at each dose level they were more severe in the oldest animals. Vascular lesions consisting of arteriolar damage and calcification were observed only in the 24-month-old animals. Thus, these data demonstrate that the cardiac lesions induced by minoxidil are more frequent and severe in older than in younger rats.

Aging↗

Doxorubicin-induced apoptosis in spontaneously hypertensive rats: differential effects in heart, kidney and intestine, and inhibition by ICRF-187.

The occurrence of apoptosis in heart, kidney and small intestine was investigated in spontaneously hypertensive rats (SHR) treated with doxorubicin (1 mg/kg/week for 6, 9 and 12 weeks) with and without pretreatment with the iron chelator ICRF-187 [(+)1.2-bis(3.5-dioxopiperazinyl-l-yl)propane] (25 mg/kg, i.p., given 30 min before doxorubicin). Animals receiving either ICRF-187 alone or saline were used as controls. Cells undergoing apoptosis were identified ultrastructurally and by staining using the nick-end labeling method. The results obtained by counting cells with positive nick-end labeling showed that, when given in cumulative doses of 9 and 12 (but not 6) mg/kg, doxorubicin induced significant toxicity in the heart, kidneys and intestine in association with apoptosis in epithelial cells of the intestinal mucosa and renal tubules but not in cardiac myocytes. At these doses nick end labeling in the heart was confined to occasional endothelial cells, interstitial dendritic cells and macrophages. The frequency of doxorubicin-induced apoptosis in renal and intestinal epithelial cells was decreased by pretreatment of the SHR with ICRF-187. Our data support the concept that the chronic cardiomyopathy induced by doxorubicin is not mediated by apoptosis of the cardiac myocytes.

Animals↗

Morphologic and morphometric evaluation of the effect of ICRF-187 on bleomycin-induced pulmonary toxicity.

Morphologic and morphometric studies were made of the protective effects of ICRF-187 against the pulmonary damage induced by bleomycin in male and female C57/BL6 mice. Sixty minutes prior to the subcutaneous administration of 15 mg/kg of bleomycin, animals received either saline or ICRF-187 (300 or 150 mg/kg) intraperitoneally, twice a week for 4 weeks. The lungs of animals treated with bleomycin alone showed inflammation, hyperplasia of type II epithelial cells, squamous cell metaplasia and fibrosis. The extent of fibrosis was quantified by means of a color videometric system and histologic sections of lung stained according to a modified Masson trichrome method. The severity of these alterations, particularly of fibrosis, was reduced in all groups of animals pretreated with ICRF-187. The fibrosis was reduced to a similar extent in female mice treated with the 300 mg/kg and the 150 mg/kg doses of ICRF-187, from 39.3% to 17.6% and 13.3%, respectively. ICRF-187 induced significantly different degrees of reduction in fibrosis in the 2 groups of male mice treated with the 150 mg/kg and the 300 mg/kg doses, from 30% to 19.7% and 12.2%, respectively. In vitro studies indicated that both ICRF-187 and its open-ring hydrolysis product (ADR-925) remove iron slowly from the bleomycin-iron complex. This observation provides a basis for the concept that ICRF-187 protects by chelating iron involved in the formation of the bleomycin-Fe3+ complex that generates reactive oxygen radicals capable of causing pulmonary damage.

Animals↗

Immunofluorescence techniques for the identification of immune effector cells in rat heart: applications to the study of the myocarditis induced by interleukin-2.

A detailed description is presented of immunohistochemical methods for identification of various types of immune effector cells in rat heart, involving the use of antibodies conjugated with different fluorochromes for the simultaneous demonstration of 2 or 3 different antigens by means of fluorescence microscopy. The initial results of the application of these techniques to the study of the myocarditis induced by interleukin-2 (IL-2) are also presented. Antibodies used included: OX6 antibody (for MHC class II molecules, mainly expressed by dendritic cells): W3/25 and OX8 antibody, for the demonstration of the rat equivalents of CD5 and CD8, respectively: asialo-GM1 ganglioside antibody for the identification of natural killer (NK) cells and lymphokine activated killer (LAK) cells, and ED2 antibody for labeling of macrophages. Fluorochromes used were: fluorescein isothiocyanate (green), tetramethylrhodamine isothiocyanate (red), Texas red sulfonyl chloride (red), and 7-amino-4-methylcoumarin-3-acetic acid (blue). IL-2-induced myocarditis was characterized histologically by infiltration of the myocardium by mononuclear inflammatory cells, microvascular alteration, interstitial edema, and myocyte damage and necrosis. In the initial stages, NK/LAK cells were the predominant type of infiltrating lymphocytes; however, the numbers of these cells decreased sharply in subsequent stages. Macrophages also were initially abundant, and continued to be prevalent throughout the late stages. CD8+ lymphocytes were more numerous than CD4+ lymphocytes. Dendritic-cells showed a diffuse increase in number and also accumulated around foci of myocyte necrosis. Three phenotypes of dendritic cells were recognized, and the possible implications of these findings are discussed. It is hoped that these techniques will prove useful for the immunohistochemical evaluation of various inflammatory diseases of the heart.

Animals↗

Effects of ICRF-186 [(L)1,2-bis(3,5-dioxopiperazinyl-1-yl)propane] on the toxicity of doxorubicin in spontaneously hypertensive rats.

An evaluation was made of the protective effects of ICRF-186 [(L)1,2-bis(3,5-dioxopiperazinyl-l-yl)propane], the L-enantiomer of ICRF-187 [(D)1,2-bis(3,5-dioxopiperazinyl-l-yl)propane], against the cardiotoxicity and nephrotoxicity induced in spontaneously hypertensive rats (SHR) by doxorubicin. SHR were given doxorubicin (1 mg/kg, i.v.), once a week for 12 weeks. Group 1 (n = 10) received doxorubicin alone; Groups 2, 3 and 4 (each, n = 5) received ICRF-186, 25 mg/kg (group 2), 12.5 mg/kg (group 3) or 6.25 mg/kg (group 4), i.p., 30 min before each dose of doxorubicin. Two groups of control animals (each, n = 5) received 12 weekly i.p. injections of saline or 25 mg/kg ICRF-186. ICRF-186 provided significant protection, in a dose-dependent manner, against the cardiotoxicity and nephrotoxicity of doxorubicin and attenuated the increases in cardiac immune effector cells (interstitial dendritic cells, cytotoxic T-helper lymphocytes and macrophages) associated with this cardiotoxicity. The results of the study were compared with those obtained with ICRF-187 under identical experimental conditions. Analysis of the cardiomyopathy scores, nephropathy scores and counts of the numbers of immune effector cells in the heart showed that, at a dose of 25 mg/kg, ICRF-186 is a somewhat less effective protectant than ICRF-187. At a dose of 12.5 mg/kg, both compounds induced generally similar degrees of protection. At a dose of 6.25 mg/kg, both had comparable, but only minimal, protective effects.

Animals↗

Comparison of the protective effects of desferrioxamine and ICRF-187 against doxorubicin-induced toxicity in spontaneously hypertensive rats.

Since the iron-mediated formation of free radicals is considered to be a critical factor in the pathogenesis of the toxicity of doxorubicin (DXR), comparisons were made of the protective effects of two iron chelators, ICRF-187 and desferrioxamine (DFO), against the chronic cardiac and renal toxicity induced by DXR in spontaneously hypertensive rats (SHR). Two preparations of DFO were studied: DFO mesylate (DFO-M) and a polymeric form (DFO-P) in which DFO is conjugated to hydroxyethyl starch. Groups of 5 SHR each were given 12 weekly i.v. injections of 1 mg/kg DXR either alone or 30 min after the i.p. injection of 25 mg/kg ICRF-187, 50 mg/kg DFO-M, 50 mg/kg DFO-P, or 100 mg/kg DFO-P. A semiquantitative assessment was made of the cardiomyopathy (Billingham scale) and nephropathy. Renal protection was minimal with DFO-M and moderate with ICRF-187 and both doses of DFO-P. There was no cardiac protection with DFO-M. Both doses of DFO-P provided similar but modest degrees of cardiac protection. DXR-induced mortality was not prevented by either preparation of DFO. ICRF-187 provided a higher degree of protection against the cardiotoxicity and the mortality induced by DXR. Since both DFO and ICRF-187 are highly efficient chelators of iron in vitro, the differences in their in vivo protective effects are thought to be related to their cellular uptake and intracellular distribution and to the relative availability of different intracellular iron pools to these agents.

Animals↗

Timing of treatment with ICRF-187 and its effect on chronic doxorubicin cardiotoxicity.

Studies were conducted to evaluate whether the timing of administration of ICRF-187 [(+)-1,2-bis(3,5 dioxopiperazinyl-1-yl)propane] would influence the degree of cardioprotection provided by this agent against the development of doxorubicin-induced chronic cardiomyopathy. Beagle dogs (8.5-14 kg) received either doxorubicin alone (1.75 mg/kg, i.v., n = 8), doxorubicin (1.75 mg/kg) simultaneously with ICRF-187 (35 mg/kg, i.v., n = 8), or doxorubicin (1.75 mg/kg) followed 2 h later by ICRF-187 (35 mg/kg, n = 8). Control animals received ICRF-187 (35 mg/kg, n = 4) or saline (n = 4). All animals received a course of seven treatments, each given 3 weeks apart, and were killed 3 weeks after the last treatment. Semiquantitative grading of histologic sections of myocardium showed that as compared with animals treated with doxorubicin alone, the incidence and the severity of the doxorubicin-induced myocardial lesions were reduced in the two groups of animals given doxorubicin plus ICRF-187. However, protection was significantly better in dogs receiving ICRF-187 and doxorubicin simultaneously than in those given ICRF-187 2 h after doxorubicin. These observations were interpreted as indicating that the timing of administration of ICRF-187 with respect to that of doxorubicin is an important factor in determining the degree of cardioprotection and that there is a "time window" in which ICRF-187 exerts optimal effects.

Animals↗