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M S Berry

Publications and source records attributed to M S Berry.

17 recordsLinked to original sources

Modulation of inwardly rectifying Na(+)-K+ channels by serotonin and cyclic nucleotides in salivary gland cells of the leech, Haementeria.

The electrically excitable salivary cells of the giant Amazon leech, Haementeria, display a time-dependent inward rectification. Under voltage clamp, hyperpolarizing steps to membrane potentials negative to about -70 mV were associated with the activation of a slow inward current (Ih) which showed no inactivation with time. The time course of activation of Ih was described by a single-exponential function and was strongly voltage dependent. The activation curve of Ih ranged from -72 to -118 mV, with half-activation occurring at -100 mV. Ion-substitution experiments indicated that Ih is carried by both Na+ and K+ ions. 5-Hydroxytryptamine (5-HT) increased the amplitude of Ih and its rate of activation. It also produced a positive shift of the activation curve of the conductance underlying Ih (Gh) without altering the slope factor, thus indicating that the voltage dependence of Ih was modulated by 5-HT. Cs+ blocked both Ih and the 5-HT-potentiated current in a voltage-independent manner, whereas Ba2+ had little effect. It is concluded that 5-HT increases Ih by modulating the inwardly rectifying Na(+)-K+ channels in the salivary cells. The effect of 5-HT may be mediated by an increase in adenylate cyclase activity since Ih was increased by 8-bromo-cyclic AMP and by the phosphodiesterase inhibitor, 3-isobutyl-1-methylxanthine. In contrast, Ih was reduced by 8-bromo-cyclic GMP and by zaprinast (an inhibitor of cyclic GMP-sensitive phosphodiesterase). Cyclic GMP itself also reduced Ih, and the effect was specific to the 3',5' form; 2',3'-cyclic GMP was inactive. The results suggest that the inward-rectifier channel may be modulated in opposite directions by cyclic AMP and cyclic GMP.

Animals

Adriamycin, bleomycin and vincristine chemotherapy with recombinant granulocyte-macrophage colony-stimulating factor in the treatment of AIDS-related Kaposi's sarcoma.

OBJECTIVE: To determine the maximum tolerated dose of granulocyte-macrophage colony-stimulating factor (GM-CSF) that would reduce the severity and duration of neutropenia from combination cytotoxic chemotherapy in the treatment of AIDS-related Kaposi's sarcoma (KS). DESIGN: Phase I, dose escalation. SETTING: Outpatient clinic of a university hospital. PATIENTS: HIV-seropositive patients with advanced KS. INTERVENTIONS: Combination chemotherapy consisting of adriamycin, bleomycin, and vincristine (ABV), with escalating doses of recombinant human GM-CSF (rhGM-CSF). Patients were treated for a median of six cycles (range, between two and seven cycles) of biweekly chemotherapy with GM-CSF administered in divided daily subcutaneous doses on days 2-12. Serum cytokine levels of interleukin (IL)-1 beta, IL-6, and tumor necrosis factor (TNF)-alpha were measured before, during, and after therapy to correlate with response to therapy. RESULTS: A GM-CSF dose of 250 micrograms/m2 was well tolerated, whereas the next dose escalation, of 500 micrograms/m2, was associated with dose-limiting toxicities, including grade 3 fever, fatigue, and diarrhea. GM-CSF produced predictable cyclic increases in granulocytes, allowing for delivery of full-dose chemotherapy on schedule. All patients were HIV-p24-antigen-negative at study entry; no activation of p24 antigenemia was observed after repeat testing. Consistent changes in cytokine levels were not observed. Responses included one complete and three partial responses, and two patients with stable disease parameters. CONCLUSIONS: We conclude that GM-CSF can be administered safely to patients with AIDS-related KS receiving myelosuppressive chemotherapy, resulting in granulocytic response, without up-regulation of HIV p24 antigen levels in serum.

Acquired Immunodeficiency Syndrome

Ionic basis of different synaptic potentials mediated by an identified dopamine-containing neuron in Planorbis.

A specified dopamine neuron in Planorbis corneus produces dopamine-mediated e.p.s.ps, i.p.s.ps or biphasic, depolarizing-hyperpolarizing p.s.ps in different follower neurons. The excitatory potentials were of three types. Some follower neurons exhibited slow e.p.s.ps (ca 1 s), and a long-lasting, slowly desensitizing, depolarizing response to iontophoresed dopamine. Others showed rapid (ca. 150 ms) e.p.s.ps, often of variable amplitude, and a rapid, quickly desensitizing, response to iontophoresed dopamine. The rapid e.p.s.ps were sometimes followed by the inhibitory response (biphasic potential). The e.p.s.ps were potentiated by hyperpolarization and reduced by depolarization, though they could not be inverted. The slow e.p.s.p. was shown to be associated with an increase in membrane conductance, but it has proved difficult to elucidate the ions involved. A third type of e.p.s.p. was produced by electrical transmission. The inhibitory potentials were generally reduced in amplitude by artificial hyperpolarization but could rarely be inverted. This is probably due in part to the presence of of electrotonic coupling between these follower neurons. The i.p.s.ps were associated with an increase in conductance which appeared small when measured in the cell body. However, the i.p.s.ps produced considerable shunting of electrotonic transmission between coupled followers indicating a large increase in conductance at the synapse. I.p.s.ps were unaffected by Cl-free solution but they were greatly reduced, though rarely inverted, by increasing the external K concentration. They were blocked by intracellular tetraethylammonium, or cooling. The effects on corresponding responses to iontophoresed dopamine were in each case the same as on the i.p.s.ps. It is concluded that the i.p.s.ps mediated by the dopamine neuron are produced by an increase in permeability to K+. On a few occasions i.p.s.ps mediated by the dopamine neuron were potentiated by hyperpolarization. This appeared to be caused by a sharp increase in membrane resistance with hyperpolarization of these particular neurons. However, mediation by a mechanism of conductance decrease could not be completely excluded.

Animals

Radioautographic study of 5-hydroxytryptamine-containing nerve terminals in central ganglia of Planorbis corneus: comparison with other species and characteristics of the serotoninergic nerve terminal.

Central ganglia from Planorbis corneus were incubated with [3H]5-hydroxytryptamine and [3H]-leucine. After fixation, sections were examined by light and electron microscopic autoradiography. With [3H]5-hydroxytryptamine there was a high level of uptake into a small number of axons and terminal processes in the neuropil. The terminal processes contained granular vesicles (diameter 50--120 nm), some of which possessed eccentrically placed cores, and agranular vesicles (mean diameter 60 nm). No membrane synaptic specializations were observed. With [3H]leucine there was a general distribution of radioactivity throughout the ganglia. The vesicular inclusions and non-specialized nature of the labelled terminal processes were very similar to presumed 5-hydroxytryptamine-containing terminals in other invertebrates and in the mammalian brain. It appears that several anatomical features of serotoninergic nerve terminals are common in all animals studied, although there is no specific characteristic which allows positive identification.

Animals

Electrotonic synapses in the visceral ganglion of Planorbis.

In the visceral ganglion of Planorbis the postsynaptic neurones of the characterized dopamine neurone are connected by non-rectifying electrotonic junctions. The coupling, which is reduced by stimulation of the dopamine neurone and by applied dopamine, may be important in the generation of burst activity. Specialized areas of close apposition of membranes in the neuropile are considered to be the morphological correlate of electrotonic coupling.

Animals

Potentiation of dopaminergic transmission by phosphodiesterase inhibitors and cyclic nucleotides.

Experiments were made to determine whether cyclic AMP plays a role in transmission at identified dopaminergic synapses in the water snail Planorbis corneus. Intracellular stimulation of a specific dopamine neuron produces direct inhibitory postsynaptic potentials (ipsps) in a number of other neurons. These ipsps, which are mediated by dopamine, were potentiated by as much as 120% by caffeine, theophylline or dibutyryl cyclic AMP, although they were unaffected by cyclic AMP and prostaglandin E1. Caffeine and theophylline also potentiated the inhibitory response to dopamine, applied to the postsynaptic neurons by perfusion or iontophoresis, but the effects were generally much smaller (maximum potentiation 30%). The results provide evidence that postsynaptic cyclic AMP is involved in transmission at these synapses, but that the phosphodiesterase inhibitors may also have a presynaptic effect.

Action Potentials

Properties of a symmetric pair of serotonin-containing neurones in the cerebral ganglia of Planorbis.

1. There is a bilaterally symmetric pair of large serotonin-containing neurones in the cerebral ganglia of Planorbis corneus. 2. In some animals these neurones are connected by a non-rectifying electrotonic synapse, and fire in synchrony even at prolonged high frequency. In other animals the neurones are not coupled, and fire independently except when driven by common input. Occasionally the coupling is weak. 3. Both coupled and non-coupled serotonin neurones have processes in the major nerve trunks of both buccal ganglia. 4. Synapses are made with many neurones in the buccal ganglia. The serotonin neurones can initiate firing in several motoneurones and thus produce movements of the buccal mass. 5. During spontaneous feeding cycles the input and firing pattern of the serotonin neurones do not bear any obvious relation to the movements of the buccal mass. 6. The data suggest that the serotonin neurones are modulatory cells, altering the level of excitability of buccal ganglion neurones.

Action Potentials

Nerve-ending specializations in the central ganglia of Planorbis corneus.

The neuropile in the central ganglia of Planorbis corneus was studied by electron microscopy, using different fixatives. Several types of specialization were observed in the membranes of adjacent axonal processes, varying from only slight membrane thickenings to structures resembling desmosomes. Specialized structures similar to the 'spinule complexes' in mammalian brain are widely distributed in certain areas of neuropile. They consist of a small projection which invaginates a neighbouring neurone; the membranes are closely apposed and there is associated electron-dense material. The problem of identifying chemical synapses in this tissue is discussed. Many axonal processes are varicose, and it is suggested that varicosities may also be sites of transmitter release.

Animals

Ultrastructure of the terminals of an identified dopamine-containing neurone markedby intracellular injection of radioactive dopamine.

The terminal processes of an identified dopamine-containing neurone in the central nervous system of the water snail were located for study with the electron microscope. This was achieved by intracellular injection of 3-H-dopamine followed by light and electron microscope autoradiography. The neurone showed extensive branching in ganglia whereprevious electrophysiological work had shown the presence of postsynaptic neurones. The terminal processes in these ganglia contained dense-cored vesicles of 50-250 nm diametersimilar to those in the perikaryon. Vesicles were found in large numbers in certain lacalized regions which may be synaptic terminals. The vesicles, which appear to take updopamine, tended to be smaller in the presumed terminal regions than in the preterminals and the perikaryon. No membrane specializations associated with typical synapses were observed.

Animals

Excitatory, inhibitory and biphasic synaptic potentials mediated by an identified dopamine-containing neurone.

1. A giant dopamine-containing cell, situated in the left pedal ganglion of the water snail Planorbis corneus, was identified in isolated living preparations of the central nervous system. Spectrophotofluorimetric analysis confirms that the cell contains dopamine, whereas noradrenaline appears to be absent. The cell is unique in being a repeatedly identifiable dopamine-containing neurone. 2. Stimulation of the giant dopamine-containing cell resulted in excitatory, inhibitory or biphasic (depolarizing-hyperpolarizing) synaptic potentials in a number of follower neurones. The duration of the e.p.s.p.s and i.p.s.p.s was 0-3-5 sec; they ranged from barely detectable responses to ones 7 mV in amplitude in different cells. The depolarizing phase of a biphasic synaptic potential (b.p.s.p.) was usually less than 1 mV in amplitude (max. 3mV) and lasted 40-400 msec. The latency of i.p.s.p.s was long (70-120 msec) compared with that of e.p.s.p.s and b.p.s.p.s (20 msec). Abolition of the depolarizing phase of b.p.s.ps. by tubocurarine left a long-latency (70-120 msec) i.p.s.p. All responses showed summation and marked facilitation. 3. Evidence is presented that the post-synaptic potentials are produced by direct connections from the giant cell and result from a release of dopamine. Of eight putative transmitter substances tested on these different groups of neurones, only dopamine produced a potential change which in each case was of the same polarity as the post-synaptic potential when this was monophasic. However, generally applied dopamine produced only a hyperpolarization in follower cells showing b.p.s.p.s. This result is probably partly due to rapid desensitization of the receptors mediating the depolarization and also to a masking of the depolarization by the more effective hyperpolarizing response. 4. Erogometrine and 6-hydroxydopamine specifically antagonized the i.p.s.p.s and dopamine receptors mediating inhibition. Neither the e.p.s.p.s nor the excitatory dopamine response were blocked by high concentrations of hexamethonium. Hexamethonium was also ineffective in blocking the depolarizing phase of a b.p.s.p., which was, however, selectively eliminated by tubocurarine. 5. It is suggested that dopamine is the transmitter released from the giant cell and that it can mediate excitatory, inhibitory or biphasic responses in different follower neurones.

Acetylcholine

Problems associated with the use of tetraethylammonium to test for monosynaptic connexions.

Several investigators of the molluscan nervous system have used TEA, injected into presynptic neurones, to determine whether the connexions made by these neurones are monosynaptic. The increase in spike duration produced by the TEA causes an increase in transmitter release, and hence an increase in the amplitude of the postsynaptic potential if the connexion is direct. If the connexion is indirect, the spike in an intercalated neurone will not be affected by the TEA, and the postsynaptic response will remain constant. Experiments described here show that TEA can cross electrotonic junctions in the gastropod mollusc Planorbis corneus. They also show that each TEA-prolonged presynaptic impulse may produce more than one postsynaptic impulse. A larger postsynaptic potential could therefore be produced by presynaptic injection of TEA in the case of an indirect connexion. This indicates that care must be taken when interpreting the results of experiments using TEA to test for monosynaptic connexions.

Animals