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Biomedical subjects

J Wondergem

Publications and source records attributed to J Wondergem.

At least 37 records · Page 2Linked to original sources

Changes in cardiac performance and sympathetic stimulation during and after fractionated radiotherapy in a rat model.

The consequences of fractionated irradiation on the number of cardiac alpha- and beta-adrenergic receptors, myocardial norepinephrine concentration and in vitro assessed heart function were studied in Sprague-Dawley rats. Animals were locally irradiated on the thorax with a total dose of 50 Gy, in 5 weeks, using two different fractionation schemes (5 x 2.0 Gy/week and 3 x 3.3 Gy/week). Functional and biochemical assays were performed during treatment and at 6 months after initiation of treatment. During fractionated irradiation, the numbers of alpha- and beta-adrenergic receptors tended to rise. During this period, myocardial norepinephrine concentration remained fairly constant and no decrease in cardiac output was observed. At 6 months, a significant increase of the numbers of alpha- and beta-adrenergic receptors was observed in the 3.3 Gy/fraction group compared to age-matched controls, p = 0.012 and p = 0.02, respectively. At this time point, the myocardial norepinephrine concentration had decreased below control levels (p = 0.008 for the 3.3. Gy/fraction schedule, and p = 0.03 for the 2.0 Gy/fraction schedule). At 6 months, the cardiac output declined to 61% (p = 0.009) and 69% (p = 0.04) of control values for the 3.3 and 2.0 Gy/fraction schedules, respectively. The present data clearly show development of late cardiac sequelae caused by fractionated thorax irradiation with a total dose of 50 Gy. Moreover, this study lends support to the importance of fraction size with regard to the severity of the radiation-induced cardiac damage.

Animals↗

Changes in myocardial and circulating atrial natriuretic peptide following thorax irradiation in rat.

The effect of thoracic irradiation on plasma and myocardial atrial natriuretic peptide (ANP) was studied in rat. The animals were irradiated with a dose of 20 Gy to the heart. After, 1, 12, 26 and 52 weeks, plasma ANP concentration and ANP in atrial and ventricular myocardium were determined. Plasma ANP levels were increased to 140% of control values from 3 months onwards and remained elevated for the next 9 months. Atrial ANP concentrations remained unaltered in the first 6 months post-treatment, but became reduced after 1 year to 37% of control values. Ventricular ANP concentration in irradiated rats rose 20-fold within 3 months, remained at that level up to 6 months and fell to six times control values at 1 year. An inverse relationship between plasma and atrial ANP concentration was found, while plasma and ventricular ANP concentrations were positively correlated. The results obtained in the present study suggest that in radiation-induced heart disease, plasma ANP concentration can be used as a marker for early stage cardiac dysfunction.

Animals↗

The influence of the oncogenes NRAS and MYC on the radiation sensitivity of cells of a human melanoma cell line.

Activation of certain oncogenes may alter the sensitivity of cells to ionizing radiation. We studied the effect of oncogene activation on the radiation sensitivity of cells of a human melanoma cell line. The cell line IGR39D was transfected with the MYC oncogene, the proto-oncogene NRAS, NRAS activated by a point mutation (61-arginine) or a combination of mutated NRAS and MYC. Single-dose experiments showed a decreased survival after transfection with MYC, wild-type NRAS or mutated NRAS. Co-transfection with MYC and mutated NRAS decreased survival up to 4 Gy, whereas at higher doses no shift in radiosensitivity was seen. Flow cytometry data indicated that differences in radiosensitivity could be explained at least in part by a difference in the distribution of cells in the phases of the cell cycle. After transfection of cells with either NRAS or MYC, the number of cells in G1 phase decreased with a concomitant increase of cells in the G2/M phase. When the cell line transfected with activated NRAS was manipulated so that the distribution of the cells in the phases of the cell cycle resembled th at of the parental line at the time of irradiation, the survival of the cells was improved. Similar experiments with the cell line containing MYC did not result in an alteration of the distribution of the cells in the cycle, or the survival after single-dose fractions, suggesting the presence of a distinct mechanism for influencing radiation sensitivity. Both NRAS and MYC transfection decrease the radiation sensitivity of human melanoma cells, but the underlying mechanisms seem different. In conclusion, transfection with NRAS or MYC alone increases radiation sensitivity while transfection of cells containing NRAS with MYC restores resistance at higher doses.

Cell Cycle↗

Protection of myocytes against free radical-induced damage by accelerated turnover of the glutathione redox cycle.

The primary defence mechanism of myocytes against peroxides and peroxide-derived peroxyl and alkoxyl radicals is the glutathione redox cycle. The purpose of the present study was to increase the turnover rate of this cycle by stimulating the glutathione peroxidase catalysed reaction (2GSH-->GSSG), the glutathione reductase catalysed reaction (GSSG-->2GSH), or both. Neonatal rat heart cell cultures were subjected to a standardized protocol of oxidative stress using 80 mumol.l-1 cumene hydroperoxide (CHPO) for 0-90 min. The consequences of this protocol were described in terms of cellular concentrations of GSH, GSSG, NADPH and ATP, formation of malondialdehyde (MDA), release of GSSG and of ATP catabolites, depression of contraction frequency, cellular calcium overload, and enzyme release. Trolox-C, an analogue of vitamin E, accelerated the glutathione peroxidase reaction leading to lowering of GSH concentration and the GSH/GSSG ratio, less MDA formation, diminished negative chronotropy, delayed calcium overload, and less enzyme release. Glucose was used to accelerate the glutathione reductase reaction by supplying NADPH, leading to higher GSH concentration and a higher GSH/GSSG ratio, less MDA formation, diminished negative chronotropy, unchanged development of calcium overload, and less enzyme release. As a full turn of the glutathione redox cycle involves both the peroxidase and the reductase reactions, the combination of Trolox-C and glucose was superior to either of the two alone: 90 min following addition of CHPO together with Trolox-C and glucose, the GSH concentration and the GSH/GSSG ratio were almost normal, MDA formation was extremely low, calcium overload was markedly delayed, and enzyme release hardly occurred at all. Cells remained beating in the observation period of 30 min. We conclude that the capacity of the glutathione redox cycle to withstand oxidative stress can be increased by stimulation of either the peroxidase reaction or the reductase reaction, and that optimal redox cycling is achieved by stimulation of both reactions.

Adenosine Triphosphate↗

Effect of whole body hyperthermia on cis-diamminedichloroplatinum (II)-induced antitumour activity and tissue Pt-distribution: do anaesthetics influence the therapeutic ratio?

Thermal enhancement of cis-diamminedichloroplatinum (II) (DDP)-mediated antitumour activity and normal tissue toxicities by whole body hyperthermia were compared in a F344 rat model under different anaesthetic conditions. Whole body hyperthermia (WBH: 120 min at 41.5 degrees C) enhanced both DDP-mediated antitumour activity and toxic side-effects. Our present study shows that anaesthetics might influence the thermal enhancement ratios (TER) calculated for DDP-mediated normal tissue toxicity but did not influence the TER calculated for antitumour activity. The TER calculated for DDP-mediated antitumour activity was 2.9. As a result of the anaesthetics used, the TER calculated for kidney and gastrointestinal toxicity ranged from 1.8 to 4.5 and from 1.2 to 2.3, respectively. The TER estimated for DDP-mediated general toxicities varied between 2.9 and 4.0 for weight loss, and from 2.0 to 2.3 based on the LD50. The differential effect of anaesthetics on TER calculated for antitumour activity and normal tissue toxicity led to different therapeutic ratios. For example the therapeutic ratio for combined WBH and DDP, using kidney damage as an end-point for normal tissue damage, ranged from 0.6 (without anaesthesia) to 1.6 (using nembutal as anaesthetic). The significantly elevated platinum levels in serum, kidney, jejunum and tumour tissue after WBH treatment may explain the thermal enhancement of DDP-mediated antitumour activity and side-effects but no correlation could be found for the differences in DDP-mediated normal tissue toxicities induced by the anaesthetics.

Anesthetics↗

Latent X-ray damage in the rat sciatic nerve results in delay in functional recovery after a heat treatment.

The influence of X-irradiation on the sensitivity of the rat sciatic nerve to local hyperthermia was investigated. A 10 or 20 mm long segment of the nerve was irradiated intraoperatively using 50 kV X-rays. Hyperthermia (30 min at 45 degrees C), was applied to the irradiated part (over a length of 5 mm) of the nerve using a brass thermode. Functional damage to the nerve was assessed using the toe-spreading test, which mainly assesses the motor function of the sciatic nerve. Radiation alone (doses up to 70 Gy) did not lead to detectable damage for at least 90 weeks. Hyperthermia alone (30 min at 45 degrees C) resulted in complete loss of motor function. This function loss was transient and complete recovery took place in about 4 weeks. Recovery time was scored as the number of days between hyperthermia and the day on which 50% of the motor function had returned. Irradiation (35 Gy) of a nerve segment, which included the heated part, resulted in a delayed recovery from the heat treatment compared to controls (heat only). The time interval and sequence between irradiation and hyperthermia hardly influenced the recovery delay. The size of the irradiated nerve segment did influence the recovery delay. Irradiation of a 20 mm nerve segment led to longer recovery delays than irradiation of a 10 mm segment (a delay of 5-10 days and 1-5 days respectively). A dose-response relation for the irradiation-induced delay in recovery was observed when a large segment (20 mm) of the nerve was irradiated immediately after heat with a dose ranging from 5 to 40 Gy. The delay in heat recovery was dose-dependent below 20 Gy, but after radiation doses above 20 Gy the recovery delay remained almost constant.

Animals↗

Influence of cisplatin on the sensitivity of the rat sciatic nerve to local hyperthermia.

The influence of cisplatin on the sensitivity of the rat sciatic nerve to local hyperthermia was investigated. Rats received 1.7 mg/kg cisplatin i.p., twice a week for 6 weeks, up to a cumulative dose of 20.4 mg/kg. After termination of cisplatin treatment, a 5 mm segment of the nerve was locally heated at a temperature of 45 degrees C (5-30 min). Loss of motor function was assessed by means of the toe-spreading test, 24 h post heating. The calculated ED50 for control nerves was significantly (p < 0.01) larger than the ED50 for cisplatin treated rats; 16.3 +/- 1.1 min vs. 10.9 +/- 1.1 min. This indicates that nerves from cisplatin treated rats were more sensitive to heat than nerves from control rats (dose modifying factor = 1.5 +/- 0.2). Histopathological investigation of nerves after heat alone or after heat preceded by cisplatin confirmed these differences and showed that edema, vascular damage and axonal degenerative changes of axons and myelin sheaths occurred at lower heat doses when compared to control nerves. Recovery studies showed that cisplatin treatment before hyperthermia caused a delay in recovery from motor function loss of about 6 days. Cisplatin treatment after hyperthermia had no influence on recovery from motor function loss.

Animals↗

Effects of in vivo heart irradiation on myocardial energy metabolism in rats.

To investigate the effect of in vivo heart irradiation on myocardial energy metabolism, we measured myocardial adenosine nucleotide concentrations and mitochondrial oxygen consumption in left ventricular tissue of rats 0-16 months after local heart irradiation (20 Gy). At 24 h and 2 months no difference in myocardial adenosine nucleotide concentration was apparent between irradiated and control hearts. The total myocardial adenosine nucleotide concentrations in irradiated hearts compared to those of nonirradiated controls tended to be lower from 4 months onward. The rate of oxidative energy production (state 3 respiration) in irradiated hearts was significantly reduced compared with that of age-matched controls from 2 months onward. Moreover, as a result of aging, a time-dependent decrease in the rate of oxidative energy production was observed in both irradiated and control hearts (P < 0.001). The respiratory control index (RCI = oxygen consumption in state 3/oxygen consumption in state 4) in irradiated hearts was not different from the RCI measured in age-matched control animals. During the period of study the RCI diminished significantly with age in both groups (P < 0.005). The number of oxygen atoms used per molecule of ADP phosphorylated (P/O ratio) was not influenced by the irradiation. The P/O ratio for the NAD(+)-linked substrates remained unchanged at a value of about 3 during the period studied. At 6 months after irradiation activities of myocardial enzymes such as lactate dehydrogenase, creatine kinase, citrate synthase, and cytochrome c oxidase were reduced. The reduction in myocardial energy production and the changes in energy supplies provide a mechanism to explain impaired contractility after local heart irradiation.

Adenine Nucleotides↗

Hyperthermic injury versus crush injury in the rat sciatic nerve: a comparative functional, histopathological and morphometrical study.

Functional and morphological changes of the rat sciatic nerve after local hyperthermia (30 min, 45 degrees C) and crush treatment were compared. After hyperthermic injury nerve function loss developed in a time period of about 7 h. Nerve crush led to an immediate loss of nerve function. Nerve function loss was assessed by a motor and a sensory function test. Recovery from function loss took place in both treatment groups and was complete in 4-5 weeks. Early (within 8 h post-treatment) histopathological changes in the nerve after heating included edema, possible blood stasis and changes in the blood vessel wall, like swelling of the media. During this period some axonal changes were observed. Immediate after crushing axons were severely damaged, while many blood vessels remained normal. Within one week after both treatments, degeneration of axons and myelin was observed at the site and distal from the site of the lesion (Wallerian degeneration). Three weeks after treatment a major part of the axons had regenerated and remyelinated. Vascular changes at the site of lesion could still be observed in the heat-treated nerves. Twelve weeks after both treatments, blood vessels appeared to be normal again. Morphometrical analysis of the treated nerves confirmed the histological observations. Three and 12 weeks after treatment average axon diameters were significant smaller and average myelin sheaths were significant thinner compared to untreated nerves. These parameters did not differ significantly when the two treatment groups were compared.

Animals↗

Hyperthermia-induced damage to rat sciatic nerve assessed in vivo with functional methods and with electrophysiology.

A 5-mm segment of the rat sciatic nerve was treated in vivo with hyperthermia (43-45 degrees C) for different times using a brass thermode. The effect of this local heat treatment on the nerve was assessed with electrophysiology and using two functional assays. Hyperthermia led to a dose-dependent decrease of motor and sensory function. Electrophysiological examination showed a decrease in amplitude of motor and reflex responses rather than a decrease in conduction velocities. Calculated ED50 values were not significantly different for the two functional and for the electrophysiological methods. Functional recovery from nerve damage took place in all cases. Measured at the same level of damage, i.e., 50% function loss, it took 14 days to recover from complete sensory function loss and 20 days from complete motor function loss. Although both motor and sensory functions were restored, 30 days after hyperthermia no responses could be detected with electrophysiology, this as a result of the thin myelin sheaths that occur upon recovery.

Animals↗

Time dependent changes in myocardial norepinephrine concentration and adrenergic receptor density following X-irradiation of the rat heart.

The hearts of 9 to 12-weeks-old Sprague-Dawley rats were locally irradiated with a single dose of 20 Gy. The effects on myocardial norepinephrine concentrations and on alpha-adrenergic and beta-adrenergic receptor densities was examined up to 16 months post-treatment. Myocardial norepinephrine concentrations were reduced (to 50% of control values between 8 and 16 months) after irradiation. Receptor binding studies using radioactive ligands demonstrated that alpha-adrenergic receptor density was increased to maximally 210% of control values and that beta-adrenergic receptor density was increased to maximally 150% of control values, both measured at 8 months posttreatment. The affinities of both receptor types were not changed after irradiation. An inverse correlation was found between the myocardial norepinephrine concentration and the alpha-adrenergic receptor density. Myocardial norepinephrine concentration was not correlated to the beta-adrenergic receptor density. The changes in myocardial norepinephrine concentration and receptor density observed after irradiation suggest that even 16 months after irradiation overt cardiac failure was not occurring as the radiation-induced alterations differ considerably from those reported for failing hearts.

Animals↗

Effect of adriamycin combined with whole body hyperthermia on tumor and normal tissues.

Thermal enhancement of Adriamycin-mediated antitumor activity and normal tissue toxicities by whole body hyperthermia were compared using a F344 rat model. Antitumor activity was studied using a tumor growth delay assay. Acute normal tissue toxicities (i.e., leukopenia and thrombocytopenia) and late normal tissue toxicities (i.e., myocardial and kidney injury) were evaluated by functional/physiological assays and by morphological techniques. Whole body hyperthermia (120 min at 41.5 degrees C) enhanced both Adriamycin-mediated antitumor activity and toxic side effects. The thermal enhancement ratio calculated for antitumor activity was 1.6. Thermal enhancement ratios estimated for "acute" hematological changes were 1.3, whereas those estimated for "late" damage (based on morphological cardiac and renal lesions) varied between 2.4 and 4.3. Thus, while whole body hyperthermia enhances Adriamycin-mediated antitumor effect, normal tissue toxicity is also increased, and the potential therapeutic gain of the combined modality treatment is eroded.

Animals↗

Effect of carboplatin combined with whole body hyperthermia on normal tissue and tumor in rats.

The antitumor activity and normal tissue toxicity of cis-diammine-1,1-cyclobutane dicarboxylate platinum (II) (carboplatin) in combination with whole body hyperthermia (WBH) (41.5 degrees C, 120 min.) were examined in an F344 rat model. Carboplatin data were compared with those of cis-diamminedichloroplatinum (II) (cisplatin). At 37 degrees C, carboplatin showed minimal activity against a rat fibrosarcoma, but when combined with WBH, the antitumor effect-of the drug was greatly enhanced. The major carboplatin-induced acute toxicity at both normothermic and hyperthermic temperatures was marked hypocellularity of the bone marrow. A significant decrease in peripheral blood platelet counts was caused by the maximum tolerated doses (MTD) of carboplatin alone and with WBH. While the lethal dose of carboplatin alone caused only minimal renal damage, mild acute tubular necrosis was observed at the MTD of carboplatin with WBH, although no significant increase in blood urea nitrogen occurred. Therapeutic ratios of the combined chemotherapy and WBH modalities were calculated by comparing tumor growth response at the MTD of drug alone and drug combined with WBH. The combination of the nephrotoxic cisplatin with WBH resulted in a therapeutic ratio of only 0.8, whereas when carboplatin was combined with WBH, a value of 3.0 was obtained, representing a 3- to 4-fold increase over cisplatin in the therapeutic ratio. These data indicate that the less nephrotoxic carboplatin in combination with WBH improves therapeutic gain and may provide a more promising clinical combination for cancer treatment than cisplatin combined with WBH.

Animals↗

Optimisation of intraperitoneal cisplatin therapy with regional hyperthermia in rats.

The purpose of this study was to optimise intraperitoneal chemotherapy by combining this modality with regional hyperthermia. In vitro data demonstrated that both the uptake of cisplatin into CC531 tumour cells and cytotoxicity were increased at temperatures of 40 degrees C (factor 4) and 43 degrees C (factor 6) compared to 37 degrees C. The increase of intracellular platinum concentration correlated well with the decrease in survival of these cells. In vivo, rats were treated intraperitoneally with cisplatin (5 mg/kg) in combination with regional hyperthermia of the abdomen (41.5 degrees C, 1 h). The mean (S.D.) temperature in the peritoneal cavity was 41.5 (0.3) degrees C and outside the peritoneal cavity 40.5 (0.3) degrees C. Enhanced platinum concentrations were found in peritoneal tumours (factor 4.1) and kidney, liver, spleen and lung (all around a factor 2.0), after combined cisplatin-hyperthermia treatment. The platinum distribution in peritoneal tumours was more homogeneous after the combined treatment than after cisplatin alone, possibly due to increased penetration of cisplatin into peritoneal tumours. Pharmacokinetic data demonstrated an increased tumour exposure for unfiltered platinum in the peritoneal cavity (area under the curve [AUC] increased from 339 mumol/l/min to 486 mumol/l/min at 37 degrees C and 41.5 degrees C, respectively), and for total and ultrafiltered platinum in the blood. The AUC for total platinum increased from 97.9 to 325.8 mumol/min and for ultrafiltered platinum from 22.2 to 107 mumol/l/min at 37 degrees C and 41.5 degrees C respectively. The latter might be due to a slower elimination of platinum from the blood. The combined treatment, intraperitoneal cisplatin and regional hyperthermia, also increased toxicity. The thermal enhancement ratio (TER) using lethality as endpoint was 1.8.

Animals↗

Anomalous origin of the common carotid arteries as a cause of stroke.

A 45-year-old patient presented with symptoms caused by an encephalomalacia in the right medial cerebral artery. Angiography showed the common carotid arteries to originate just above the aortic valves. This unique vascular anomaly can be explained by current views on the development of the aorta and aortic arch arteries. The anomaly may be a risk factor for atherosclerotic obstruction of the carotid arteries.

Aorta, Thoracic↗

Induction of thermal tolerance of rat sciatic nerve by mild hyperthermia.

A 5 mm segment of the rat sciatic nerve was treated at 38 or 43 degrees C for 30 min using a brass thermode. This pretreatment was followed by a test heat treatment at 45 degrees C. Different intervals between the pretreatment and test treatment were studied. The effect of fractionated hyperthermia on the motor function of rat sciatic nerve was evaluated using a functional assay, the toe-spreading test. Both pretreatments led to thermal resistance of the nerve, which was maximal 24 h after the pretreatment. Thermal resistance, induced at 38 degrees C, did not show any decay over a period of 6 weeks. Thermal resistance, induced at 43 degrees C, decayed slowly, but after a 6-week interval between priming and test heat treatment thermal resistance was still observed. As the resistance induced by a mild heat pretreatment is transient, we considered this to be thermotolerance. We accounted for the thermal resistance induced by the 38 degrees C pretreatment in the calculation of the thermal tolerance ratio (TTR) after mild heat treatment at 43 degrees C. Maximal thermal tolerance was observed 24 h after mild heat with a TTR of 3.4 +/- 0.6. The TTR after a 6-week interval had declined to 1.4 +/- 0.3.

Acclimatization↗

In vitro assessment of cardiac performance after irradiation using an isolated working rat heart preparation.

The effect of irradiation on cardiac function was assessed using an isolated working rat heart preparation. The animals were given single doses of X-rays in the range 15-30 Gy to their hearts. Cardiac output (CO = aortic flow + coronary flow), heart weight and body weight were followed for a period of 10 months after treatment. Irradiation led to a decrease in cardiac function. This reduction was dose-dependent and progressive with time after treatment. The shape of the Frank-Starling curves constructed for irradiated hearts suggests a loss of contractile function of the myocardium. Coronary flow rates measured in 'working' hearts and in 'Langendorff' hearts were not significantly changed by the irradiation treatment. The isolated working rat heart preparation proved to be a simple and suitable animal model for the investigation of irradiation-induced cardiotoxicity.

Animals↗

Does very preterm birth impair myelination of the central nervous system?

Myelination of the central nervous system (CNS) can be demonstrated with magnetic resonance (MR) imaging. Myelin formation may be reduced in conditions of neonatal "undernutrition". Very preterm infants have a reduced postnatal growth rate when compared with intrauterine fetuses of the same gestational age. Using MR imaging, we studied qualitative myelination patterns in healthy preterm infants of less than 30 weeks gestation with an optimal nutritional intake and in term infants at 44 weeks postmenstrual age (PMA). At that age, preterm infants had a significantly lower mean body weight than term infants, but mean head circumference did not differ significantly. All preterm and term infants had reached myelination stage M3 (myelin in brainstem, internal capsule, and corona radiata) and M4 (myelin in brainstem, internal capsule, corona radiata, and centrum semiovale). There was no significant difference in myelination stage between the preterm and term infants. We conclude that adequate nutrition in the neonatal period leads to qualitatively adequate myelination of the CNS in very preterm infants.

Central Nervous System↗