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Biomedical subjects

J A Umbach

Publications and source records attributed to J A Umbach.

At least 19 recordsLinked to original sources

Cysteine-string proteins: a cycle of acylation and deacylation?

We used tunicamycin, an inhibitor of protein fatty acylation, to examine the possibility that there is a cycle of acylation and deacylation of cysteine string proteins at nerve terminals. Using both physiological and immunoblot approaches, we obtained no evidence for a cycle of acylation and deacylation that affects these proteins. These data suggest that this lipid modification of cysteine string proteins is relatively more stable than that observed for other nerve ending proteins, like SNAP-25.

Acylation

Cysteine-string proteins as templates for membrane fusion: models of synaptic vesicle exocytosis.

Cysteine-string proteins are relatively small, cysteine-rich components of synaptic vesicle membranes. Recent investigations demonstrated that at least 11 of the 13 cysteine residues of the Torpedo cysteine-string protein are fatty acylated. This exceptional level of fatty acylation occurs along a short stretch (less than 25 residues) of amino acids which are flanked on either side by very polar amino and carboxy termini. This amphipathic structure may have unique capabilities to catalyze events at membrane interfaces. We propose two distinct pathways to explain how these capabilities might subserve membrane fusion and exocytosis.

Animals

Cysteine string proteins and presynaptic function.

A brief review is presented of investigations of a novel family of synaptic vesicle proteins, the cysteine string proteins (csps). Studies of csp mutants in Drosophila reveal that csps are crucial components of the excitation-secretion machinery at nerve terminals. Current data cannot distinguish between a primary role of csps in modulating calcium ion influx at the nerve terminal versus a more-direct role in the exocytotic cascade. In this context, the remarkable post-translational modification of csps, namely the fatty acylation of as many as 12 of the 13 cysteine residues of the Torpedo protein, suggests that csps may participate more directly in the process of membrane fusion that underlies exocytosis. This would be achieved by using the fatty acyl chains of the csps as templates for 'lipid flow' that would allow the fusion of vesicular and plasma membranes. These hypotheses provide a useful framework for empirical tests of the role of csps in nerve terminal function.

Animals

Cysteine string protein immunoreactivity in the nervous system and adrenal gland of rat.

Cysteine string proteins (csps) are a recently discovered class of cysteine-rich proteins. They have been shown to associate preferentially with synaptic vesicle fractions of Torpedo electric organ or rat brain where they have been implicated in events associated with transmitter secretion. However, to date there has been no information concerning the distribution of csps in rat tissues. We investigated the localization of csps in the rat retina and CNS using immunohistochemistry with affinity purified anti-csp antibodies. Specific csp immunoreactivity having a punctate appearance is present throughout the neuraxis. Csp immunoreactivity is particularly abundant in synapse-rich regions including those of the retina, main olfactory bulb, hippocampal formation, and cerebellum. White matter tracts are devoid of csp immunoreactivity. Neuromuscular junctions show strong csp immunoreactivity. This localization of csp immunoreactivity is compatible with a role for csps in presynaptic events at a wide variety of synapses. Immunohistochemical analysis of a non-neuronal, secretory tissue, the adrenal gland, reveals prominent csp immunoreactivity in the chromaffin cells of the adrenal medulla. However, csp immunoreactivity is not detected in adrenal cortical regions. These findings are confirmed and extended by immunoblot and Northern analyses which identify a 35 kDa and a 5 kb product, respectively, in extracts of adrenal. The presence of csps in the adrenal medulla suggests that these proteins may also participate in secretion-related events in certain non-neuronal cells.

Adrenal Glands

Extensive lipidation of a Torpedo cysteine string protein.

Cysteine string proteins are relatively low mass components of synaptic vesicle membranes. Structurally, their primary sequence is distinguished by a remarkable, cysteine-rich motif. Investigations revealed an unprecedented degree of lipidation of these cysteine residues. At least 11 of the 13 cysteines of the Torpedo protein were modified, principally by palmitoyl moieties. This fatty acylation creates a prominent hydrophobic domain flanked by polar amino and carboxyl termini. An amphipathic structure of this type is uniquely suited to mediate events at membrane interfaces. Thus, cysteine string proteins are candidates to participate in exocytotic membrane fusion.

Animals

Cysteine string proteins: a potential link between synaptic vesicles and presynaptic Ca2+ channels.

Presynaptic calcium channels are key regulators of neurotransmitter release. Oocyte expression studies suggest that cysteine string proteins are essential subunits or modulators of these channels. Subcellular fractionation revealed that cysteine string proteins copurify with synaptic vesicles. An average vesicle had eight protein monomers with both the amino and carboxyl termini detected on the cytoplasmic face. Thus, docked synaptic vesicles may regulate presynaptic calcium channels and neurotransmitter release.

Animals

Presynaptic dysfunction in Drosophila csp mutants.

Cysteine string proteins are synapse-specific proteins. In Drosophila, csp deletion mutants exhibit temperature-sensitive paralysis and early death. Here, we report that neuromuscular transmission is impaired presynaptically in these csp mutant larvae. At 22 degrees C, evoked transmitter release is depressed relative to wild type and rescued controls, and high frequency stimulation of the nerve leads to sporadic failures. At 30 degrees C, stimulus-evoked responses decline gradually before failing completely. When the temperature is returned to 22 degrees C, evoked responses recover. Spontaneous release events persist at both 22 degrees C and 30 degrees C. Since nerve conduction and postsynaptic sensitivity are unaffected, these data indicate that csp mutations disrupt depolarization-secretion coupling. This disruption explains the cellular basis of the temperature-sensitive paralysis of these organisms.

Animals

Glia of the cholinergic electromotor nucleus of Torpedo are the source of the cDNA encoding a GAT-1-like GABA transporter.

A PCR-based strategy was used to clone DNAs encoding Na(+)- and Cl(-)-dependent cotransport proteins using DNA from the cholinergic electromotor nucleus of Torpedo californica. This cloning strategy resulted in the isolation of a cDNA clone that shows strong nucleotide sequence homology to the GABA transporter-1 (GAT-1) types of rat and human brain. When expressed in frog oocytes, this transporter mediates the uptake of GABA. Moreover, physiologically and pharmacologically, the Torpedo protein behaves very similarly to the rat and human GAT-1 proteins. However, in contrast to the predominantly neuronal localization of the mammalian GAT-1 proteins, the mRNA for the fish protein is found almost exclusively in glial elements of the electromotor nucleus. This unexpected discovery of a GABA transporter cDNA in a nucleus that has no previously characterized GABAergic innervation raises questions about the role of GABA and this transporter in the electromotor system. Several speculative models for GABA function are proposed.

Amino Acid Sequence

Expression of Ca2+ receptors in Xenopus oocytes injected with poly(A)+ mRNA from a rat calcitonin-secreting cell line.

Poly(A)+ mRNA extracted from rat calcitonin-secreting cells (rMTC 44-2) was injected into Xenopus oocytes. In mRNA-injected oocytes the intracellular Ca2+ concentration ([Ca2+]i), measured with the Ca2+ indicator dye, fura2, increased in response to an elevation of the extracellular Ca2+ ions ([Ca2+]o). In some oocytes [Ca2+]i transiently increased in high [Ca2+]o but it did not respond to the subsequent alterations of [Ca2+]o. The addition of 10 microM carbonyl cyanide m-chlorphenylhydrazone (CCCP) to the extracellular medium restored the dependence of [Ca2+]i on [Ca2+]o in such cells. It was concluded that rMTC 44-2 cells possessed a receptor which recognizes changes in [Ca2+]o and that these receptors can be functionally expressed by microinjection of messenger RNA from rMTC 44-2 cells into Xenopus oocytes.

Animals

Suppression cloning of the cDNA for a candidate subunit of a presynaptic calcium channel.

A novel strategy, termed suppression cloning, was used to identify a 7.4 kb cDNA encoding a putative subunit of the calcium channels that regulate transmitter release at nerve endings of Torpedo californica. The 585 nt open reading frame of this cDNA encodes a polypeptide of about 21.7 kd that is essential for the expression in frog oocytes of omega-conotoxin-sensitive, dihydropyridine-resistant, calcium channels. Sequence analysis reveals that this protein is closely related to two cloned cysteine string proteins of undertermined function that were recently localized to Drosophila nerve terminals using monoclonal antibodies.

Amino Acid Sequence

Alpha-latrotoxin triggers an increase of ionized calcium in Xenopus oocytes injected with rat brain mRNA.

When Xenopus oocytes are injected with rat brain mRNA, they acquire the ability to respond to bath applied alpha-latrotoxin. This spider venom toxin is normally highly selective for nerve endings, where its binding is associated with a high-frequency, quantal discharge of neurotransmitter. By 'transplanting' toxin acceptor sites to Xenopus oocytes, we have observed both a toxin-mediated rise in cellular ionized Ca along with the triggering of a calcium-dependent chloride channel in these cells. This approach may contribute both to a better understanding of the mechanism of action of this toxin and to efforts to clone the cDNA for this binding site.

Animals

Intestinal Na+/glucose cotransporter expressed in Xenopus oocytes is electrogenic.

The cloned rabbit intestinal Na+/glucose cotransporter was expressed in Xenopus oocytes, and transmembrane currents associated with this transporter were monitored using a two-electrode voltage clamp. Addition of D-glucose to a Na(+)-containing solution bathing these oocytes generated a current which was blocked by phlorizin. Water-injected control oocytes did not exhibit any currents under these conditions. The magnitude and shape of the currents were dependent on the extracellular glucose and Na+ concentrations and the membrane potential. At Vhold = -50 mV, the Km values for glucose and Na+ were 14 +/- 2 (N = 4) microM and 17 +/- 1 (N = 3) mM, respectively. These Km values and imax exhibited voltage dependence: increasing the membrane potential from -30 to -150 mV increased KGlcm and imax threefold and decreased KNam eightfold. The reversal potential (VR) of the phlorizin-sensitive, glucose-dependent current varied with log Nao+ (slope 46 +/- 6 [N = 9] mV). In the absence of sugar, a Na(+)-dependent, phlorizin-sensitive (Ki = 3 +/- 0.5 microM) current was detected only in RNA-injected oocytes. The amplitude of this current at -50 mV was 6 +/- 1% (N = 13) of the maximum current measured in the presence of D-glucose. The VR of this sugar-independent current varied with log Nao+ (slope 63 +/- 1 [N = 4] mV), indicating that the cotransporter may carry Na+ in the absence of sugar. We conclude that the Na+/glucose cotransporter is electrogenic and that investigations of currents associated with its operation can yield valuable insights into the mechanisms of solute translocation.

Animals

Mercuric ions are potent noncompetitive antagonists of human brain kainate receptors expressed in Xenopus oocytes.

Kainate receptors are one of the major subtypes of excitatory amino acid receptors in the vertebrate central nervous system. Using Xenopus oocytes injected with RNA from human temporal cortex, it is possible to detect electrophysiologically the expression of this receptor subtype in these cells. Ions of the group IIb elements, particularly mercuric ions, are highly potent, noncompetitive inhibitors of these human brain kainate receptors. Mercury-containing sulfhydryl reagents are also very effective, irreversible blockers of the kainate-gated currents of these oocytes. The recovery of kainate-activated currents after washout of Hg2+ is slow and incomplete relative to that seen after treatment either with Cd2+ or Zn2+. Cysteine or dithiothreitol can accelerate this recovery of kainate-inducible currents after Hg2+ inhibition. Besides the toxicological implications of these results, mercury compounds may be useful for future studies of the structure and physiology of the kainate receptor-channel complex.

6-Cyano-7-nitroquinoxaline-2,3-dione

Barbiturates depress currents through human brain calcium channels studied in Xenopus oocytes.

Barbiturates have had wide use as sedatives, anesthetics and anticonvulsants. Among the sites implicated in the membrane action of barbiturates are the gamma-aminobutyric acidA receptor, receptors for excitatory amino acids and Ca and potassium channels. The expression in Xenopus oocytes of various ligand- and voltage-gated channels offers the opportunity for more-detailed studies of such neuroactive substances as the barbiturates. Using RNA from human temporal cortex, we obtained the expression of an omega-conotoxin-sensitive, dihydropyridine-resistant Ca channel in Xenopus oocytes. Under voltage clamp, barbiturates depressed both the peak current and the steady-state current through this Ca channel. Barbiturates had no effect on the shape of the current-voltage relation, nor did they cause a shift in the voltage-dependence of channel activation. However, both the rate of inactivation of open Ca channels, as well as the proportion of channels inactivated at steady state were increased by barbiturates. The IC50 for these effects was about 0.25 mM for the more potent barbiturates tested. These results are consistent with the hypothesis that sedative and anesthetic effects of barbiturates can be mediated in part by an action to depress Ca currents.

Animals

Expression of an omega-conotoxin-sensitive calcium channel in Xenopus oocytes injected with mRNA from Torpedo electric lobe.

Xenopus laevis oocytes were injected with poly(A)+ RNA isolated from the electric lobe of Torpedo californica. Six to nine days after mRNA injection of the oocytes a cadmium-sensitive inward current could be detected in oocytes bathed in a calcium- and chloride-free solution containing 40 mM barium. This inward current could be distinguished from the native barium current of control oocytes by its high sensitivity to blockade by cadmium ions and its inhibition by omega-conotoxin, a peptide neurotoxin from Conus geographicus. Neither the current of control cells nor that of injected cells was detectably affected by nisoldipine (1 microM) or nitrendipine (1 microM). However, the barium current of control oocytes showed appreciably more inactivation (in the barium solution used for recording) than the omega-conotoxin-sensitive current that develops in mRNA-injected oocytes. Culturing of mRNA-injected oocytes in medium containing actinomycin D failed to prevent the appearance of the omega-conotoxin-sensitive current. These results support the conclusion that mRNA from Torpedo electric lobe is translated to produce an additional calcium channel in Xenopus oocytes. The features of this channel suggest that it may be the same type of calcium channel that controls transmitter release at nerve endings in Torpedo electroplax.

Animals

Calcium buffering in axons and axoplasm of Loligo.

1. Ca-selective micro-electrodes were used to measure free Ca concentration in axons and extruded axoplasm. 2. Free Ca in axons immersed in artificial sea water containing 3 mM-Ca averaged 77 nM in freshly dissected axons and 4.9 microM in cyanide- or azide-poisoned axons. 3. Extruded axoplasm maintained a free Ca only a little higher than that of the axons from which it was obtained. 4. Axoplasmic buffering was investigated by titrating isolated axoplasm with CaCl2 or K-EGTA and monitoring the change in free Ca. Energy-dependent and energy-independent components of Ca binding could be recognized in fresh axoplasm. The energy-dependent fraction could be further subdivided into Ruthenium Red-sensitive and Ruthenium Red-insensitive components and the energy-independent fraction into a component of high affinity and rather low capacity and another component of low affinity and large capacity. 5. The Ruthenium Red-sensitive process could accumulate many millimoles Ca per kilogram axoplasm while still maintaining a free Ca close to 100 nM. After injection of Ruthenium Red into fresh axoplasm, binding is dramatically altered so that it closely resembles that in a metabolically poisoned preparation. 6. The Ruthenium Red-insensitive process has a small capacity and appears to be capable of lowering free Ca to about 200 nM. It can, however, lower free Ca to 50-150 nM if oxalate is also present. 7. Simultaneous measurement of pH and free Ca showed that axoplasmic pH only begins to fall appreciably in response to added Ca when mitochondrial Ca buffering becomes impaired. 8. Raising axoplasmic levels of Na or Li, but not K, tends to bring about a concomitant rise in free Ca.

Adenosine Triphosphate

Calcium clamp of the intracellular environment.

Quantitative analysis of the effects of calcium on cell function requires methods for altering intracellular free Ca in a precise and reproducible manner. Microinjection of Ca is very unreliable largely because of the powerful Ca-binding properties of cytoplasm. Much more satisfactory are microinjection of Ca-buffers - provided enough buffer is introduced - and various forms of intracellular dialysis and perfusion which permit full equilibration of the cell interior with a defined artificial intracellular environment.

Adrenal Medulla