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Biomedical subjects

P Brehm

Publications and source records attributed to P Brehm.

11 recordsLinked to original sources

Cloning and functional characterization of a complementary DNA encoding the murine fibroblast bombesin/gastrin-releasing peptide receptor.

The amphibian tetradecapeptide bombesin and its mammalian homolog gastrin-releasing peptide are neurotransmitters and paracrine hormones, and are mitogenic for fibroblast and small cell lung carcinoma cell lines. cDNAs encoding the bombesin/gastrin-releasing peptide receptor (BR) expressed by murine Swiss 3T3 fibroblasts were isolated using electrophysiological and luminometric Xenopus oocyte expression assays. Oocytes microinjected with BR transcripts responded to concentrations of bombesin from 1 x 10(-10) to 1 x 10(-6) M. These responses showed homologous desensitization and could be specifically blocked by bombesin antagonists. Sequence analysis showed that the BR has seven membrane-spanning domains and five potential N-linked glycosylation sites. Data base analysis showed that the BR is most homologous to the tachykinin receptors. Although tyrosine kinase activity has been associated with BR function, no tyrosine kinase homologies occur within the BR sequence.

Amino Acid Sequence

Calcium entry leads to inactivation of calcium channel in Paramecium.

Under depolarizing voltage clamp of Paramecium an inward calcium current developed and subsequently relaxed within 10 milliseconds. The relaxation was substantially slowed when most of the extracellular calcium was replaced by either strontium or barium. Evidence is presented that the relaxation is not accounted for by a drop in electromotive force acting on calcium, or by activation of a delayed potassium current. Relaxation of the current must, therefore, result from an inactivation of the calcium channel. This inactivation persisted after a pulse, as manifested by a reduced calcium current during subsequent depolarization. Inactivation was retarded by procedures that reduce net entry of calcium, and was independent of membrane potential. The calcium channel undergoes inactivation as a consequence of calcium entry during depolarization. In this respect, inactivation of the calcium channel departs qualitatively from the behavior described in the Hodgkin-Huxley model of the sodium channel.

Animals

Calcium-dependent repolarization in Paramecium.

1. Intracellular injection, recording and current-passing methods were used to investigate the role of intracellular Ca in the modulation of electrical behaviour in the ciliate Paramecium caudatum.2. Injection of EGTA converted graded regenerative responses ascribed to Ca inward current to all-or-none action potentials. The EGTA injection also caused a discontinuity in the steady state I-V relations to outward current, but had little effect on hyperpolarizing current-voltage responses.3. The overshoot of the all-or-none spike produced by the EGTA-injected cell followed an approximate 29 mV increase for a tenfold increase in external Ca concentration and was independent of changes in external K and Na concentrations.4. The EGTA-induced all-or-none action potential tended to produce plateaus that could last up to 20 sec. During the plateau the membrane slowly repolarized to a critical potential, upon which repolarization occurred precipitously.5. Injection of 10(-6)M-free Ca(2+) as a Ca-EGTA buffer hyperpolarized the membrane and decreased the potential shifts to inward current pulses. These responses are consistent with an increase in K conductance.6. During EGTA plateaus reversed beating of the cilia indicated a rise in intracellular Ca, and thus an inability of the EGTA to complex the Ca as rapidly as it entered the cilia. Reversal of the motile apparatus thus appears to be activated at lower concentrations of intracellular Ca than are required to activate the inferred Ca-dependent K system.7. In uninjected cells removal of the cilia, which results in a loss of the voltage-activated Ca channels (Dunlap, 1977), or addition of extracellular Ba both tended to linearize the steady state I-V relations.8. Injections of Cs and TEA tended to linearize the steady state I-V relations, but did not result in either a conversion to an all-or-none spike or a discontinuity in the depolarizing steady-state I-V relations.9. It is concluded that in Paramecium a Ca-activated K conductance short-circuits the inward current of the regenerative Ca response, preventing all-or-none behaviour. The occurrence of plateau spikes following EGTA injection indicates that the Ca conductance inactivates very slowly in face of a maintained depolarization. Such slow Ca-inactivation is consistent with the slow relaxation of Ca-dependent ciliary reversal that occurs during maintained depolarization.10. The possibility is discussed that injection of EGTA may also enhance the Ca conductance.

Action Potentials

An electrophysiological study of the regulation of ciliary beating frequency in Paramecium.

1. The role of the surface membrane in the control of ciliary beat frequency in Paramecium was examined by intracellular electrophysiological techniques and pressure injection of Ca2+ and EGTA. Experiments were done on wild type P. caudatum and on both the wild type and a pawn mutant of P. tetraurelia. 2. The increased frequency of beating that accompanies reversal of power stroke orientation in response to depolarization in the wild type fails to occur during depolarization in the mutant pawn, which also fails to exhibit ciliary reversal upon depolarization. 3. Injection of moderate amounts of EGTA blocked the frequency increase without interfering with reversal of the beat in response to depolarization of the wild type. Larger injection of EGTA also prevented reversed beating. 4. The beat frequency in the normal (forward-swimming) direction increased during hyperpolarization in pawn. The hyperpolarizing frequency-voltage relations were quantitatively similar to those of the wild type. 5. Injection of EGTA to a final concentration of 10 mM into wild type cells neither modified the resting frequency nor blocked the frequency increase which normally accompanies hyperpolarization. 6. Transient ciliary reversal in both pawn and wild type produced by injection of Ca2+ could be terminated by the passage of inward current. The power stroke returned to the normal forward-swimming direction and the ciliary beating frequency increased. Upon termination of the inward current the cilia of Ca2+-injected cells again beat in reverse for many seconds. 7. The results support previous reports that increased frequency of beating and ciliary reversal seen in response to depolarization both require the entry of Ca2+ through the surface membrane. On the other hand, the results indicate that frequency increase with hyperpolarization is independent of an altered rate of Ca2+ entry. 8. Increased frequency during hyperpolarization appears to be related more closely to electrotonic membrane current than to membrane potential. It is proposed that inward current might activate high frequency beating by altering the ionic environment of the axoneme within the restricted volume of the cilium by electrophoretic means.

Animals

Localization and characterization of luminescent cells in ophiopsila californica and Amphipholis squamate (echinodermata: ophiuroidea).

1. The distribution of luminescence in Ophiopsila californica and Amphipholis squamata is described on the basis of image intensification, fluorescence microscopy, and histological techniques. 2. Luminescence appears to be intracellular. 3. The photogenic cells, termed photocytes, can be identified in histological sections by observation of 460 nm excited fluorescence and appear to have two components: varicosities and processes. The processes are morphologically similar to the neurons of the peripheral nervous system and the radial nerve cord. 4. The theory of gland cells as sites of luminescence in Ophiopsila spp. and Amphipholis squamata is not supported. 5. The emission spectra of luminescence in O. californica and A. squamata are broad with a half band width of 71 nm and an approximate emission maximum at 510 nm. 6. Fluorescence appears only after the onset of luminescence.

Animals