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Biomedical subjects

R Willems

Publications and source records attributed to R Willems.

At least 55 records · Page 3Linked to original sources

Differentiation-dependent expression of provirus-activated int-1 oncogene in clonal cell lines derived from a mouse mammary tumor.

The int-1 mammary oncogene is frequently activated by proviral insertion in mouse mammary tumors. To characterize the target cell for the oncogenic action of int-1, we have isolated permanent cell lines with distinct morphologies and differentiation characteristics, starting from a tumor with a rearranged int-1 gene. Polygonal cells had retained many differentiation markers of epithelial cells and produced adenocarcinomas upon transplantation in syngenic mice. Sphere-forming-cuboidal cells are poorly differentiated and produced anaplastic tumors. Cuboidal and elongated cells were negative for epithelial markers. Cuboidal cells were poorly tumorigenic, but elongated cells produced highly malignant sarcoma-like tumors. In all lines, the int-1 gene was identically rearranged due to insertion of proviral DNA of the Mouse Mammary Tumor Virus, but the expression of int-1 varied with the state of differentiation of the cells. Polygonal cells contained relatively high levels of int-1 RNA, which were not influenced by steroid hormones. In the sphere-forming-cuboidal cells, expression of int-1 was low but inducible by dexamethasone. In the cuboidal and elongated cells no expression of int-1 was detectable, showing that the continued expression of int-1 was not required for progression to more malignant cells. By immunoprecipitation, two int-1 protein species, of 42 and 40 kD were identified in polygonal and in sphere-forming-cells but not in the culture media.

Adenocarcinoma↗

Dorsal-ventral gradient in vulnerability of CA1 hippocampus to ischemia: a combined histological and electrophysiological study.

Transverse hippocampal slices were prepared after 7 days survival from rats subjected to 8 min of global incomplete ischemia by temporary occlusion of both carotid arteries and hypotension. The slices demonstrated a dorsal-ventral gradient in the amount of ischemic neuronal necrosis in the CA1 region. Histologically ischemic cell change decreased from 90% dorsoseptally to 10% ventrotemporally. Electrophysiological analysis of the number of slices with viable synaptic transmission in CA1 also revealed a septotemporal gradient in susceptibility to ischemia.

Action Potentials↗

Selective vulnerability of synaptic transmission in hippocampus to ex-vivo ischemia: effects of extracellular ionic substitution in the postischemic period.

After 10-60 min of normothermic complete ischemia, hippocampal slices were prepared and allowed to recover for 60 min. The presence or absence of an evoked transsynaptic response was measured in CA1, CA3, and dentate gyrus. A selective vulnerability of the field excitatory postsynaptic potential to ischemia was found (CA1 greater than CA3 greater than dentate gyrus). Recovery of synaptic transmission in CA1 and CA3 was significantly improved by decreasing extracellular Ca2+ and increasing Mg2+ after ischemia. Addition of an N-methyl-D-aspartate antagonist further improved functional recovery. Postischemic reduction in extracellular Cl- increased recovery in CA1 and CA3, whilst reduction in Na+ was deleterious.

Animals↗

The superfast atrial recharge pulse: a cause of pectoral muscle stimulation in patients equipped with a unipolar DDD pacemaker.

Pectoral muscle stimulation may cause serious discomfort to patients equipped with a pulse generator. Insulation defects of the lead, connector problems and defective coating of the pacemaker can are common causes of local muscle contractions. This report describes pectoral muscle stimulation caused by the atrial superfast recharge pulse incorporated into the atrial channel of a commercially available unipolar DDD pacemaker. As pectoral muscle stimulation could not be eliminated by reprogramming the pacemaker to a lower atrial output in some patients a redesign of the pacemaker is highly required.

Cardiac Pacing, Artificial↗

Evidence for a role of the N-methyl-D-aspartate (NMDA) receptor in cortical spreading depression in the rat.

The neurotransmitter glutamate activates the N-methyl-D-aspartate (NMDA), quisqualate and kainate receptors. It has been proposed, but also disputed, that local release of glutamate would play a pivotal role in cortical spreading depression (SD). We tested this hypothesis by investigating the influence of NMDA antagonists on SD, using the non-competitive NMDA antagonists ketamine, phencyclidine (PCP) and MK-801 and the competitive NMDA antagonist DL-2-amino-7-phosphonoheptanoate (2-APH), injected intraperitoneally in rats anesthetized with alfentanil. SD was elicited by cathodal DC-stimulation of the frontal cortex. SD propagation was followed using two ion-sensitive microelectrodes placed in the parietal and occipital cortex. The NMDA antagonists increased SD threshold, decreased the propagation velocity and decreased the duration of the accompanying extracellular DC, K+ and Ca2+ changes at the following doses: 40 mg/kg ketamine, 10 mg/kg PCP, 0.63 mg/kg MK-801, 10 and 40 mg/kg 2-APH. With each NMDA antagonist failure of SD propagation between both microelectrodes could be observed. SD elicitation (or propagation) was inhibited completely with 80 mg/kg ketamine, 3.1 mg/kg MK-801 and 160 mg/kg 2-APH. These NMDA antagonists have also anticonvulsant properties. None of these effects on SD were observed with high doses of other anticonvulsants such as 80 mg/kg phenytoin or 40 mg/kg diazepam. These experiments indicate that endogenous release of excitatory amino acids and their action on the NMDA receptor play an important role in the initiation, propagation and duration of SD.

2-Amino-5-phosphonovalerate↗

The nucleoside-transport inhibitor soluflazine (R 64 719) increases the effects of adenosine in the guinea-pig hippocampal slice and is antagonized by adenosine deaminase.

Field EPSP slope and population spike (PS) amplitude were measured in the CA1 pyramidal cell region after double-pulse stimulation of the striatum radiatum in hippocampal slices of guinea-pig. Iontophoresis of adenosine reduced the EPSP slope to 77.9 +/- 5.0% (mean +/- S.E.M.) and PS amplitude to 32.9 +/- 9.7% of the control values. Recovery was 98.7 +/- 3% for the EPSP and 82.9 +/- 7.0% for the PS 1.5 min after iontophoresis was stopped. In the presence of soluflazine 10(-6) M the effects of adenosine iontophoresis on the PS amplitude were significantly increased and the recovery of the EPSP and PS was significantly delayed. Soluflazine perfusion alone gradually decreased EPSP slope and PS amplitude as with adenosine. The reductions in EPSP slope and PS amplitude produced by soluflazine were antagonized by adenosine deaminase. An increase in EPSP slope and PS amplitude was seen when adenosine deaminase was given first. This increase was not reduced by exposure to soluflazine. These results are compatible with the hypothesis that soluflazine acts as a nucleoside transport inhibitor in the CNS, where it may increase the extracellular concentration of adenosine.

Adenosine↗

Pacing and sensing: how can one electrode fulfill both requirements?

Pacing and sensing are two different functions which can be accomplished by one and the same electrode. Optimal pacing requires a high tissue resistance in order to minimize the stimulation energy, making a small surface electrode highly desirable. For adequate sensing, however, the tissue resistance should be as low as possible which requires a larger electrode surface area. Decreasing the electrode surface area results in an increased polarization impedance. As this latter should be low for both pacing and sensing, an electrode with a large surface area should be used. How can these opposing needs be met by one electrode? The combination of a small geometrical surface and a large porous microstructure along with the choice of low polarizable materials meets both the requirements of pacing and sensing.

Electrodes, Implanted↗

N-methyl-D-aspartate and hypoxia induced Ca2+-changes in the CA1 region of the hippocampal slice.

Hypoxic neuronal depolarization was accompanied by a large decrease in extracellular [Ca2+]. After reoxygenation, the time at which [Ca2+] normalized was correlated with the extent of recovery of N-methyl-D-aspartate (NMDA) and synaptic responses. There was no evidence that the NMDA receptor system was more disrupted following hypoxia than the receptors involved in synaptic transmission. The Na+/K+ pump appeared to be better able to recover from hypoxia than the NMDA responses or synaptic transmission.

Animals↗

Prediction of Wenckebach behavior and block response in DDD pacemakers.

At higher atrial rates, the behavior of a DDD pulse generator will depend on the atrial rate or spontaneous atrial interval (SAI) and the settings of the pacemaker: upper rate interval (URI), atrioventricular interval (AVI), and atrial refractory interval (ARI). An algorithm was developed enabling the prediction of the degree of Wenckebach block using the parameters mentioned above. In the absence of the programmed settings of the pacemaker, these parameters can be determined by noninvasive methods. AVI can be measured by application of a magnet over the pulse generator, while URI and ARI can be estimated during chest wall stimulation by progressively increasing the frequency of the external extrastimuli. The use of the formula in combination with chest wall stimulation allows the evaluation of the proper functioning of any DDD pacemaker during exercise and in patients with atrial rhythm disturbances, even when no information about the pacemaker settings is available.

Atrioventricular Node↗

Monoclonal antibody (WT 1) directed against a T cell surface glycoprotein: characteristics and immunosuppressive activity.

WT 1, an IgG2a subclass monoclonal antibody, recognizes a human T lineage specific antigen (mol. wt 40,000). This antigen is strongly expressed on thymic T blasts, and on peripheral T cells activated by phytohaemagglutinin, whereas cortical thymocytes and peripheral T cells are moderately positive for WT 1. In contrast, B lymphocytes, myeloid and erythroid cells, including the progenitor cells of these lineages, and terminal deoxynucleotidyl transferase positive cells in the bone marrow, are all WT 1 negative. Binding of WT 1 to T cells is blocked by a previously described antibody (3A1) suggesting that both antibodies bind to the same antigen present on human T cells. WT 1, however, is also reactive with T lymphocytes from rhesus monkeys whereas 3A1 is not. Therefore, the biological effects of WT 1 could be studied in a monkey model. In a skin allograft model, WT 1 was immunosuppressive and induced a marked prolongation of graft survival.

Animals↗

A pendulum system to deliver reproducible taps on single teeth to elicit silent periods in the electromyograms of human jaw muscles.

To deliver taps on single teeth, an easily-constructed pendulum system was designed which delivers mechanical stimuli with a constant intensity and morphology at high tapping rates. By interchanging the tips of the hammer mounted as a pendulum, the characteristics of the mechanical pulses can be modified. An electromagnetic brake makes the system insensitive to inevitable small variations of the head position. As no sound is produced prior to and up to 400 ms after the tap on the tooth, expectation patterns or acoustic reflexes which may influence the silent period are avoided. The system can also be used in animals.

Electromyography↗

Isolation and anaylsis of (Gp)nXp sequences of rat liver 5S RNA by means of restricted ribonucleas T2 hydrolysis.

Essentual difficulties arise when base number in oligoguanylic blocks and location of these blocks along the polynucleotide chain need to be determined in the course of determination of the nucleotide sequences in ribonucleic acids. To overcome this difficulty it is suggested to take advantage of a recently discovered resistance of phosphodiester bond between kethoxalated G and its 3'-neighbour against T(2) RNase hydrolysis 1,2. The approach is illustrated by analysis of 5S RNA from rat liver. Sequences of general formula (Gp)(n)Xp were isolated from T(2) RNase hydrolysate of 5 S RNA rapidly and quantitatively. The information obtained greatly facilitates the whole procedure of sequencing. It is expected that the method proposed would be effective for analysis of 5 S and 4 S RNA and for highmolecular weight fragments of ribosomal and viral RNAs.

Animals↗

Anticonvulsant action of the nucleoside transport inhibitor, soluflazine, on synaptic and non-synaptic epileptogenesis in the guinea-pig hippocampus.

The effects of the nucleoside transport inhibitor, soluflazine, were examined on synaptic and non-synaptic epileptogenesis, and on paired-pulse facilitation and inhibition in the CA1 region of the guinea-pig hippocampal slice. In the model of synaptic epileptogenesis, excitation was enhanced by omitting Mg2+ from the artificial cerebrospinal fluid (ACSF). This procedure induced a second epileptogenic population spike (PS) after orthodromic stimulation, which was inhibited by soluflazine (IC50 value 1.2 x 10(-6) M). In the non-synaptic model of epileptogenesis spontaneous depolarizing 'burst' discharges were induced in CA1 by lowering the concentration of Ca2+ and increasing the concentration of K+ and Mg2+. The IC50 value of soluflazine was 6.0 x 10(-7) M for antagonizing 'burst' frequency and 7.5 x 10(-6) M for 'burst' amplitude, indicating a preferential effect on 'burst' initiation. After paired orthodromic stimuli to stratum radiatum, the amount of synaptic facilitation of PS amplitude was significantly increased by soluflazine. This was mainly due to a decrease in the size of the PS induced by the conditioning pulse. The amount of PS inhibition after antidromic/orthodromic stimulation was not significantly altered by soluflazine. With the exception of the failure of soluflazine to attenuate inhibition, the results obtained with soluflazine resemble those reported for adenosine. This strengthens the hypothesis that soluflazine increases the extracellular concentration of adenosine. Further, the results indicate that centrally active nucleoside transport inhibitors may be a new class of antiepileptic drug.

Animals↗