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Biomedical subjects

H G Mautner

Publications and source records attributed to H G Mautner.

At least 19 recordsLinked to original sources

Single potassium channels with delayed rectifier behavior from lobster axon membranes.

Single-channel potassium currents from lobster axon membranes were studied in planar bilayers made from monolayers. Channel-opening events are grouped by time, forming bursts with an average duration of 4.5 ms. The mean open time at 0 mV is 1.8 ms. The frequency of bursts is voltage dependent, increasing e-fold per 12-16 mV. At sufficiently high positive voltages, channels inactivate. Measured from reversal potentials, channels discriminate against Na+ by a permeability ratio PNa/PK of 1:30. The channel is blocked by tetraethylammonium and nonyltrimethylammonium in a voltage-dependent manner and at concentrations similar to those used in whole-axon experiments. Voltage-dependent block by Cs+ suggests that more than one ion may occupy the channel simultaneously. The kinetics and selectivity of this channel suggest that purified axolemma contains active K+ channels that are likely to participate in delayed rectification in the lobster axon membrane.

Animals↗

The labelling of an axonal membrane component with 4-(N-maleimido) benzyltrimethylammonium, a reagent capable of affinity-labelling the alpha-subunit of the nicotinic acetylcholine receptor.

Membrane vesicles, isolated from crustacean axons, were treated, following disulfide reduction, with 3H-NEM or with 3H-MBTA. SDS polyacrylamide gel electrophoresis showed that exposure to NEM (a nonspecific thiol reagent) resulted in the labelling of several peptide bands, while with MBTA only a single band with a molecular weight of 50,000 was labelled. Reaction with MBTA (believed to be a specific label for the nicotinic acetylcholine receptor) could be largely prevented by preincubation with d-tubocurarine or bromacetylcholine.

Affinity Labels↗

Local anesthetics noncompetitively inhibit terbium binding to the exterior surface of nerve membrane vesicles.

It has previously been shown that terbium binds to membrane vesicles prepared from the walking leg nerve of the lobster (Homarus americanus) with a high affinity Kd of 2.2 microM. Fluorescence of bound Tb3+ occurs via energy transfer from the aromatic residues of proteins (gamma ex = 280 nm; gamma em = 546 nm), and calcium inhibits Tb3+ binding competitively with a Ki of 1.8 mM. Displacement studies with EDTA demonstrate that more than 95% of the bound Tb3+ is at the vesicle exterior and is not being taken up by the vesicles. To investigate the putative role of Ca2+ in the interaction of local anesthetics with axonal membranes, lidocaine and the analogs GX-HCl and QX-314 were tested as inhibitors of Tb3+ binding. Inhibition by lidocaine is seen only at considerably higher doses (25 mM) than are required for conduction block of intact nerves (5 mM). Inhibition by lidocaine and the primary amine analog GX-HCl is entirely noncompetitive, whereas the quaternary ammonium derivative QX-314 appears to be a mixed competitive-noncompetitive inhibitor of Tb3+ binding. These data are not compatible with the hypothesis that there is a functionally essential cation binding site on the axonal membrane surface for which Ca2+ and local anesthetics compete, although local anesthetic action may be modified indirectly by altered calcium concentrations. Evidence is presented for a mechanism by which local anesthetics indirectly displace Tb3+ by altering the physical state of the axonal membrane.

Animals↗

Terbium binding to axonal membrane vesicles from lobster (Homarus americanus) peripheral nerve. A probe of calcium binding sites.

Tb3+, a fluorescent trivalent cation with physicochemical properties similar to Ca2+, binds to peripheral nerve membrane vesicles prepared from the walking leg nerve bundle of the lobster (Homarus americanus). Saturable binding is measured for at least two classes of binding site. Bound Tb3+ can be displaced by other cations in the order: Ca2+ greater than Mg2+ = Zn2+ greater than NH4+. The binding of Tb3+ to the lower affinity site (KD(app) = 6.0 microM) is inhibitable by Na+, Mg2+ and Ca2+, whereas the higher affinity site (KD(app) = 2.2 microM) is only sensitive to Ca2+. Using this spectral probe the role of Ca2+ in peripheral nerve membrane function can be investigated.

Animals↗

Interaction of aromatic dyes with the coenzyme A binding site of choline acetyltransferase.

The interaction of a series of aromatic dyes with the coenzyme A binding site of choline acetyltransferase was studied. Several of the dyes were very potent inhibitors of the enzyme. With few exceptions, inhibition was competitive with respect to acetylcoenzyme A and noncompetitive with respect to choline. It appears likely that inhibition by dyes such as Reactive Blue 2 (Cibacron Blue F3GA) or Congo Red, as in the case of coenzyme A interactions, involves hydrophobic bonding, as well as a coulombic interaction with an arginine residue.

Animals↗

Evidence for presence of an arginine residue in the coenzyme A binding site of choline acetyltransferase.

Choline acetyltransferase (acetyl-CoA:choline O-acetyltransferase, EC 2.3.1.6) may be inactivated by arginine-specific reagents such as butanedione, phenylglyoxal, and camphorquinone-10-sulfonic acid. The enantiomers of the latter compound were prepared, but inactivation was not stereospecific. Protection against inactivation by the arginine-specific reagents was provided by CoA and, to a lesser extent, by 3'-dephospho-CoA. No protection was provided by choline, NAD+, NADH, NADP+, or NADPH. Sodium chloride could protect, to some extent, against inactivation by arginine-specific reagents; this protection showed no cation or anion specificity. The data are compatible with the postulate that the salt anion competes with the attachment of the 3'-phospho group of CoA to an active site arginine residue.

Acetyl Coenzyme A↗

On the specificity of 125-I-alpha-bungarotoxin binding to axonal membranes.

125I-alpha-Bungarotoxin (alpha-BGT) was used to characterize the binding sites for cholinergic ligands in lobster walking leg nerve membranes. The toxin binding component has been visualized histochemically on the external surfaces of intact axons and isolated axonal membrane fragments. Binding of alpha-BGT to nerve membrane preparations was demonstrated to be saturable and highly reversible (KappD congruent to 1.7 +/- 0.32 X 10(-7) M; Bmax congruent to 249 +/- 46 pmol/mg protein) at pH 7.8, 10 mM-Tris buffer. Binding showed a marked sensitivity to ionic strength that was attributable to the competitive effects of inorganic cations (particularly Ca2+ and Mg2+) in the medium. 125I-alpha-BGT binding could be inhibited by cholinergic drugs (atropine congruent to d-tubocurarine greater than nicotine greater than carbamylcholine congruent to choline) and local anesthetics (procaine greater that tetracaine congruent to lidocaine), but was unaffected by other neuroactive compounds tested (e.g., tetrodotoxin, 4-aminopyridine, quinuclidinyl benzilate, octopamine, bicuculline, haloperidol, ouabain). The pharmacological sensitivity of toxin binding resembles that of nicotine binding to axonal membranes, but differs significantly from nicotinic cholinergic receptors described in neuromuscular junctions, fish electric organs, sympathetic ganglia, and the CNS. The possible physiological relevance of the axonal cholinergic binding component and its relationship to alpha-BGT binding sites in other tissues are discussed.

Animals↗

Synthesis and study of conformationally defined enantiomers of local anesthetics and conformationally defined enantiomers of fluorescent dyes designed to label electrically excitable membranes.

Conformationally defined enantiomeric local anesthetics and fluorescent dyes were synthesized. Neither the local anesthetics nor the fluorescent probes showed stereospecificity in interacting with nerve membranes. The fluorescence signals generated by the dyes showed excellent correlation with the time course and shape of the nerve action potential.

Action Potentials↗

Localization of horseradish peroxidase-alpha-bungarotoxin binding in crustacean axonal membrane vesicles and intact axons.

A conjugate of alpha-bungarotoxin with horseradish peroxidase was used to visualize alpha-bungarotoxin binding sites at the fine structural level in isolated axonal membrane vesicles from lobster walking leg nerve. These plasma membrane vesicles have previously been shown to exhibit saturable binding of [3H]nicotine and [3H]acetylcholine. Binding of the toxin was identified in the axon plasma membrane and could be blocked by pretreatment with excess free alpha-bungaratoxin or d-tubocurarine. Binding sites for alpha-bungarotoxin were identified by the same technique in sections of intact nerve fibers from both lobster and spider crab and were found to be localized primarily in the axolemma rather than in the Schwann cell membrane.

Acetylcholine↗

Interaction of analogues of coenzyme A with choline acetyltransferase.

The finding that methyl methanethiolsulfonate appears to inhibit choline acetyltransferase from squid ganglia not by reacting with a thiol group of the enzyme but by reacting with the thiol group of coenzyme A to form a competitive inhibitor of acetyl coenzyme A led to the synthesis of the ethyl, propyl, and 3-carboxy-4-nitrophenyl disulfides of CoA. The methyl disulfide of 1,N6-etheno-C0A, a fluorescent ligand, was also prepared. All the disulfides are powerful inhibitors of ChA, their Ki values being very similar. The Km values for acetylpropionyl-, and butyryl-CoA were also found to be similar; however, modification of the acyl group alter the Km values for choline. CoA, and dethia-CoA, showed similar abilities to be bound to ChA; however, the 3'-phospho groups of acetyl CoA and CoA appear to be of importance in interacting with the enzyme. 8-Anilino-1-naphthalenesulfonate is a competitive inhibitor of acetyl-CoA binding.

Acetyltransferases↗

Interaction of cholinergic ligands and local anesthetics with plasma membrane fragments from lobster axon.

Isologous local anesthetics containing the ester, thiolester, or selenolester grouping and their quaternary ammonium analogs were studied for their ability to displace [3H]nicotine from plasma membrane fragments of lobster nerve. Tertiary and quaternary analogs were equiactive. The relative ability of oxo, thio, and seleno analogs to displace nicotine was the same as their relative ability to block axonal conduction and synaptic transmission. Among cholinergic ligands, choline and aminocholine, previously shown to be inactive as depolarizing agents, were uniquely unable to displace nicotine. The findings are compatible with the presence of a biopolymer capable of binding cholinergic ligands in axonal membranes and support the postulate that the relative inactivity of quaternary compounds in intact axons is due to permeability barriers.

Acetylcholinesterase↗

Choline acetyltransferase.

Acetylcholine is essential to neural function. It synthesis is catalyzed by choline acetyltransferase, the enzyme responsible for the acetylation of choline by acetyl coenzye A, a reaction favored slightly thermodymodynamically and not at all kinetically. An analytically pure enzyme still has not been obtained; however, method of purification have been greatly improved recently. Numerous inhibitors of the enzyme have been synthesized and their structure-action relationships examained. Evidence has been accumulated showing the essential involvement of an imidazole group in the active site of choline acetyltransferase. The literature regarding the controversial role to thiol groups in choline acetyltransferase is reviewed. Recently, derivatives of coenzyme A have been introduced as inhibitors of this enzyme and the specificity of coenzyme A binding has been examined. Possible mechanisms responsible for the control fo acetylcholine synthesis are discussed.

Acetylcholine↗