[Radiologic evaluation of malignant diseases of the larynx].
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Biomedical subjects
Publications and source records attributed to Z Marković.
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The effect of antiepileptic drug di-n-propylacetamide (DPM) on 5-hydroxytryptamine (5-HT) turnover in rat brain and 5-hydroxyindoleacetic acid (5-HIAA) in cat cerebrospinal fluid (CSF) was investigated. DPM (200 mg/kg) increased brain 5-HIAA without altering the 5-HT level. DPM augmented the accumulation of 5-HT induced by monoamine oxidase inhibition with pargyline (80 mg/kg) and enhanced the accumulation of 5-HIAA in the brain following blockade of transport of this metabolite by probenecid (200 mg/kg). Prior inhibition of 5-HT synthesis by p-chlorophenylalanine (300 mg/kg) abolished the DPM-induced increase in cerebral 5-HIAA. DPM (100 mg/kg) given daily for 5 days considerably elevated 5-HIAA in the CSF of cat during the treatment period. We conclude that DPM increases the turnover of 5-HT in brain and that this can be observed by monitoring the 5-HIAA content of CSF.
Circular dichroism spectra, thermal transition profiles and proteolytic susceptibility showed that different regions in the multidomain protein fibronectin exhibit different sensitivity against urea denaturation. A 70-kDa fragment obtained by cathepsin D treatment which comprises the N-terminal part of the fibronectin chains, exhibited in 8M urea a spectrum, at 20 degrees C, identical to that of the native fragment and its thermal unfolding was shifted to lower temperatures by only 10 degrees C. The central portions of the fibronectin chains were remarkably unfolded under the same conditions as clearly demonstrated by the spectra and transition profiles of a cathepsin D-raised 125/140-kDa fragment which originates from this region. When fibronectin or its fragments were exposed to 4 or 8M urea at 4 degrees C and the urea subsequently dialysed off, the spectra and transition curves recorded were very similar to those of the native proteins. Nevertheless, this treatment introduced local conformational changes which resulted in the creation of three new cleavage sites for chymotrypsin. The most prominent one was found to be located in the central part of the middle region and no sites were created in the N-terminal 70-kDa region. In the conjunction with sequence information [Petersen et al. (1983) Proc. Natl. Acad. Sci. USA 80, 137-141] it may be concluded that the disulfide rich domains, made up by regions of internal homology of types I and II in the N-terminal portion of fibronectin, exhibit a remarkable conformational stability, whereas the disulfide free middle region which contains type III domains, is much less stable. Some domains in this region are particularly sensitive to urea denaturation and are irreversibly affected already by 4M urea at 4 degrees C. Therefore, the use of high urea concentrations for the elution of fibronectin from affinity columns may lead to an at least partially irreversible unfolding of some domains and a loss of functions associated with these structural elements.
At low ionic strength (0.05 M) the sedimentation coefficient of monomeric plasma fibronectin was found to vary from 8S, at pH 3 and 11, to 13.5S at neutral pH. The lower s20,w value indicates a stretched arrangement of the value indicates a stretched arrangement of the two arms of the molecule which was observed in most electron microscopic studies. The higher value is consistent with a still very asymmetric but more condensed shape, which is probably brought about by back-folding and interactions between chain segments of different net charge. A model of this internal association is based on the finding that segments of rather different isoelectric points alternate along the fibronectin chains. A similar pH dependence was observed for a 140-kDa fragment from the middle region of fibronectin which carries segments of low and high isoelectric points at its ends. At high ionic strength (0.35 M) the pH dependence of the sedimentation coefficients was less pronounced and intermediate s20,w values were found. This is expected when both repulsive and attractive interactions are weakened by the electrolyte. It was verified by circular dichroism spectra that the protein was not denatured at pH 3 or 11. Thermal transition curves revealed a destabilization at pH 3 but the thermal denaturation occurred well above 20 degrees C at which the pH dependence of the solution shape was studied.
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