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D Yoshikami

Publications and source records attributed to D Yoshikami.

At least 37 records · Page 2Linked to original sources

Biotinylated derivatives of omega-conotoxins GVIA and MVIID: probes for neuronal calcium channels.

The omega-conotoxins are small, disulfide-rich peptides which inhibit voltage-sensitive calcium channels. Biotinylated omega-conotoxins are potentially useful reagents for characterizing distinct subsets of calcium channels. We describe the preparation and characterization of biotinylated derivatives of two specific omega-conotoxins, GVIA and MVIID, which bind different calcium channel subtypes. Eight biotinylated derivatives were tested; all specifically displaced binding of the radiolabeled unbiotinylated omega-conotoxin. In general, the addition of one biotin moiety decreased the apparent affinity for the receptor target site by only approximately 10-fold. However, derivatization of omega-conotoxin MVIID at the Lys10 residue caused a much more marked effect, a ca 500-fold decrease in affinity. These results indicate that the vicinity of the Lys10 residue of omega-conotoxin MVIID may be more critical for binding to the receptor target site than regions around other amino groups in omega-conotoxins GVIA and MVIID. Thus, high affinity biotinylated omega-conotoxin GVIA and MVIID derivatives have been chemically defined; the biotin groups have been shown to be accessible to streptavidin. Given the commercial availability of streptavidin coupled to various reporter groups, the biotinylated omega-conotoxin derivatives described here should be widely useful for fluorescence, electron microscopic or immunological applications.

Amino Acid Sequence↗

Novel alpha- and omega-conotoxins from Conus striatus venom.

Three neurotoxic peptides from the venom of Conus striatus have been purified, biochemically characterized, and chemically synthesized. One of these, an acetylcholine receptor blocker designated alpha-conotoxin SII, has the sequence GCCCNPACGPNYGCGTSCS. In contrast to all other alpha-conotoxins, SII has three disulfide bonds (instead of two), has no net positive charge, and has a free C-terminus. The other two paralytic peptides are Ca channel-targeted omega-conotoxins, SVIA and SVIB. omega-SVIA is the smallest natural omega-conotoxin so far characterized and has the sequence CRSSGSPCGVTSICCGRCYRGKCT-NH2. Although omega-conotoxin SVIA is a potent paralytic toxic in lower vertebrate species, it was much less effective in mammals. The third toxin, omega-conotoxin SVIB, has the sequence CKLKGQSCRKTSYDCCSGSCGRSGKC-NH2. This peptide has a different pharmacological specificity from other omega-conotoxins previously purified from Conus venoms; only omega-conotoxin SVIB has proven to be lethal to mice upon ic injection. Binding competition experiments with rat brain synaptosomal membranes indicate that the high-affinity binding site for omega-conotoxin SVIB is distinct from the high-affinity omega-conotoxin GVIA or MVIIA site.

Amino Acid Sequence↗

Conantokin-G selectively inhibits N-methyl-D-aspartate-induced currents in Xenopus oocytes injected with mouse brain mRNA.

The conantokins are a family of peptides isolated from the venom of predatory marine snails of the genus Conus. Here we demonstrate that one of these peptides, conantokin-G, specifically inhibits the N-methyl-D-aspartate (NMDA) subtype of glutamate receptors that are expressed in mouse brain mRNA-injected Xenopus oocytes. Increasing the concentration of conantokin-G causes the NMDA dose-response curve to shift to progressively higher concentrations. We therefore conclude that conantokin-G interacts with the glutamate binding site of the receptor. In contrast, the peptide does not compete with glycine, and this indicates that conantokin-G does not act at the binding site of this co-agonist of the NMDA receptor. Furthermore, the inhibitory effects of conantokin-G appear to be insensitive to membrane potential.

Animals↗

The inhibitory effects of omega-conotoxins on Ca channels and synapses.

Omega conotoxins are peptides from snail venom. Two variants, omega CgTX and omega CmTX derived from two species of Conus, are the subjects of this report. Part I of this report reviews and discusses the ability of these toxins to inhibit Ca channels and synapses in different tissues from various species of animals. The potencies of these toxins vary depending on the target tissue, consonant with the notion that synaptic Ca channels have changed in the course of evolution. Part II introduces the notion that in contrast to inorganic Ca channel blockers, which act by reducing the amount of Ca2+ ions that can permeate an open channel, omega toxins act by reducing the availability of functional Ca channels. Thus, Ca channel-inhibition by omega toxins and that by inorganic blockers are expected to produce qualitatively different alterations in the distribution of intracellular Ca2+. Consistent with this expectation, the dose-response curves of inorganic blockers and omega CmTX differ. The dose-response curves of inorganic blockers are thought to reflect the cooperativity of Ca2+ ions in mediating transmitter release. In contrast, comparison of experimental and theoretical dose-response curves of omega CmTX leads us to propose the hypothesis that Ca channels normally do not act cooperatively to effect transmitter release.

Amino Acid Sequence↗

Omega Conus geographus toxin: a peptide that blocks calcium channels.

We previously reported that omega Conus geographus toxin (omega CgTX), blocks evoked-release of transmitter at synapses in frog and attenuates the Ca2+ component of the action potential of chick dorsal root ganglion neurons. We report here voltage-clamp experiments on cultured chick dorsal root ganglion neurons which demonstrate that omega CgTX produces a persistent block of voltage-gated Ca2+ currents. Thus, we conclude that omega CgTX inhibits synaptic transmission by blocking Ca2+ channels in the presynaptic nerve terminal. The toxin had no effect on K+ currents; however, in some but not all neurons, omega CgTX reduced Na+ currents by 10-25%. These findings suggest that omega CgTX should be useful as a probe to examine synaptic Ca2+ channels.

Animals↗

Omega-conotoxin: direct and persistent blockade of specific types of calcium channels in neurons but not muscle.

Blockade of Ca2+ channels by omega-conotoxin GVIA, a 27 amino acid peptide from the venom of the marine snail Conus geographus, was investigated with patch-clamp recordings of whole-cell and unitary currents in a variety of cell types. In dorsal root ganglion neurons, the toxin produces persistent block of L- and N-type Ca2+ channels but only transiently inhibits T-type channels. Its actions appear to be neuron-specific, since it blocks high-threshold Ca2+ channels in sensory, sympathetic, and hippocampal neurons of vertebrates but not in cardiac, skeletal, or smooth muscle cells. Block occurs through direct interaction of the toxin with an external site closely associated with the Ca2+ channel, without apparent involvement of a second messenger or dependence on channel gating. The tissue and channel-type specificity and the directness and slow reversibility of the block are features that favor use of omega-conotoxin as a tool for purifying particular neuronal Ca2+ channels and defining their physiological function.

Animals↗

Transmitter release from presynaptic terminals of electric organ: inhibition by the calcium channel antagonist omega Conus toxin.

Cholinergic synaptosomes from electroplax of the ray Ommata discopyge release both ATP and ACh when depolarized with high K+ concentration in the presence of Ca2+. Others have shown that the ATP and ACh are released in the molar ratio found in isolated synaptic vesicles. Thus, it is assumed that the release of ATP reflects exocytosis of synaptic vesicles, and that transmitter release can be indirectly monitored by assaying ATP release. We present further evidence for this assumption and examine the effects of presynaptic neurotoxins on this ATP release. As expected for transmitter release, we find that depolarization-evoked ATP release is supported by Sr2+ and Ba2+ and is inhibited by the Ca channel antagonists Co2+ and Mn2+. Likewise, the presynaptic toxins omega-CmTX and omega-CgTX, omega peptides from the venom of the marine snails Conus magus and Conus geographus, respectively, inhibit 80% of the depolarization-evoked ATP release. Half-maximal inhibition of ATP release occurs with approximately 0.5 microM of either toxin. The toxins' effects are reversible, and when toxin is washed away, the time dependence of recovery of release is approximately first order and half complete within 40 min with omega-CmTX and 15 min with omega-CgTX. The Ca2+ ionophore A23187 induces Ca2+-dependent ATP release from resting synaptosomes. As would be expected of a Ca channel antagonist, omega-CmTX does not affect this ionophore-induced release. Leptinotarsin-d (LPTd), a putative Ca channel agonist from the Colorado potato beetle, evokes Ca2+-dependent ATP release from resting synaptosomes. omega-CmTX does not block LPTd-evoked release of ATP, which suggests that omega-CmTX and LPTd act at different sites.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetylcholine↗

Conus geographus toxins that discriminate between neuronal and muscle sodium channels.

We describe the properties of a family of 22-amino acid peptides, the mu-conotoxins, which are useful probes for investigating voltage-dependent sodium channels of excitable tissues. The mu-conotoxins are present in the venom of the piscivorous marine snail, Conus geographus L. We have purified seven homologs of the mu-conotoxin set and determined their amino acid sequences, as follows, where Hyp = trans-4-hydroxyproline. GIIIA R.D.C.C.T.Hyp.Hyp.K.K.C.K.D.R.Q.C.K.Hyp.Q.R.C.C.A-NH2 [Pro6]GIIIA R.D.C.C. T.P.Hyp.K.K.C.K.D.R.Q.C.K.Hyp.Q.R.C.C.A-NH2 [Pro7]GIIIA R.D.C.C.T.Hyp.P.K.K.C.K.D.R.Q.C.R.Hyp.Q.R.C.C.A-NH2 GIIIB R.D.C.C.T.Hyp.Hyp.R.K.C.K.D.R.R.C.K.Hyp.M.K.C.C.A-NH2 [Pro6]GIIIB R.D.C.C.T.P.Hyp.R.K.C.K.D.R.R. C.K.Hyp.M.K.C.C.A-NH2 [Pro7]GIIIB R.D.C.C.T.Hyp.P.R.K.C.K.D.R.R.C.K.Hyp.M.K.C.C.A-NH2 GIIIC R.D.C.C.T.Hyp.Hyp.K.K.C.K.D.R.R.C.K.Hyp.L.K.C.C.A-NH2. Using the major peptide (GIIIA) in electrophysiological studies on nerve-muscle preparations and in single channel studies using planar lipid bilayers, we have established that the toxin blocks muscle sodium channels, while having no discernible effect on nerve or brain sodium channels. In bilayers the blocking kinetics of GIIIA were derived by statistical analysis of discrete transitions between blocked and unblocked states of batrachotoxin-activated sodium channels from rat muscle. The kinetics conform to a single-site, reversible binding equilibrium with a voltage-dependent binding constant. The measured value of the equilibrium KD for GIIIA is 100 nM at OmV, decreasing e-fold/34 mV of hyperpolarization. This voltage dependence of blocking is similar to that of tetrodotoxin and saxitoxin as measured by the same technique. The tissue specificity and kinetic characteristics suggest that the mu-conotoxins may serve as useful ligands to distinguish sodium channel subtypes in different tissues.

Amino Acid Sequence↗

Effects of kynurenate on root potentials evoked by synaptic activity and amino acids in the frog spinal cord.

The effects of kynurenate (Kyn) on synaptic- and excitatory amino acid-mediated responses in isolated, hemisected spinal cords of frog were examined. Kyn (0.5 mM) rapidly and reversibly blocked greater than 90% of the synaptically mediated ventral root potential (VRP) produced by stimulation of the dorsal root. Spontaneous activities recorded from both ventral and dorsal roots were also reversibly blocked by Kyn. However, Kyn had no effect on action potentials or excitability per se, nor was it a general inhibitor of synaptic transmission since Kyn concentrations as high as 2.5 mM had no effect on synaptically mediated dorsal root potentials produced by stimulation of the ventral root. In addition, Kyn had no effect on synaptic transmission in sympathetic ganglia of frog. Although Kyn (2.5 mM) by itself produced no ventral root response in spinal cords treated with tetrodotoxin, it antagonized those induced by the excitatory amino acids N-methyl-D,L-aspartate, quisqualate, kainate, aspartate, and glutamate. The ventral root responses to all concentrations of quisqualate tested were depressed by 2.5 mM Kyn. In addition, when Kyn was washed out, the rate of recovery from Kyn block was accelerated by the presence of quisqualate. These results indicate that quisqualate and Kyn compete for common binding sites. However, low concentrations of Kyn (e.g. 0.1 mM) potentiated the peak of the response to saturating concentrations of quisqualate by as much as 30%. The durations of the potentiated quisqualate responses were significantly shorter than the control responses. Thus, Kyn does not act simply as a competitive inhibitor of quisqualate.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acids↗

Transmitter sensitivity of neurons assayed by autoradiography.

Ionic conductance channels that are opened by activating nicotinic acetylcholine receptors at synapses of sympathetic neurons are permeable to small organic amines. Uptake of a tritium-labeled amine through these channels can be measured by autoradiography. This provides a simple and direct way to assess the sensitivity of individual neurons to acetylcholine without using microelectrodes.

Acetylcholine↗

Synaptic excitation and inhibition resulting from direct action of acetylcholine on two types of chemoreceptors on individual amphibian parasympathetic neurones.

1. Synaptic transmission was studied in visually identified parasympathetic ganglion cells that modulate the heart beat of the mudpuppy Necturus maculosus).2. The brief pulse of acetylcholine (ACh) released from terminals of the vagus nerve after each impulse can produce two distinct post-synaptic responses in individual principal cells of the ganglion: (i) within a milli-second of release, ACh generates a rapid and strong excitatory post-synaptic potential (e.p.s.p.) that normally initiates a post-synaptic impulse; (ii) this excitation is usually followed by a slow hyperpolarizing inhibitory post-synaptic potential (i.p.s.p.) that lasts for several seconds. The magnitude and time course of the i.p.s.p. depends on the frequency and number of vagal stimuli. When the hydrolysis of ACh is inhibited by prostigmine, a train of nerve stimuli may be followed by an i.p.s.p. lasting half a minute or longer.3. The rapid e.p.s.p. and slow i.p.s.p. result from the direct action of ACh on two different types of chemoreceptors in the post-synaptic membrane of the principal cell. The e.p.s.p. can be preferentially blocked by the nicotinic antagonist dihydro-beta-erythroidine (5 x 10(-7)M), while the i.p.s.p. is selectively blocked by the muscarinic antagonist atropine (5 x 10(-9)M).4. Potentials resembling nerve-evoked e.p.s.p.s and i.p.s.p.s can be produced by iontophoretic release of ACh from micropipettes onto the post-synaptic membrane. Application of the muscarinic agonist bethanechol generates exclusively inhibitory responses.5. The reversal potential for the i.p.s.p. is about -105 mV, which is approximately the equilibrium potential for potassium (E(K)). When the external K(+) concentration is altered, the reversal potential for inhibition is shifted to the new value of E(K) as expected from the Nernst equation. Changes in the external Na(+) and Cl(-) concentrations have no appreciable effect on the reversal potential. Thus, the i.p.s.p. is the result of a conductance increase for K(+).6. The conductance change producing the i.p.s.p. is voltage sensitive. When the membrane potential is shifted from -40 to -60 mV, the i.p.s.p becomes larger and longer. Beyond -60 mV the inhibitory response decreases in proportion to the driving force on K(+) without any further change in time course.7. The inhibitory response produced by an iontophoretically applied pulse of bethanechol has a delayed onset of about 150 msec at 24 degrees C. The early portion of this response, including the delay, is proportional to t(3), where t is time. The proportionality factor (the apparent rate constant) decreases elevenfold when the temperature is lowered by 10 degrees C. This suggests that a multi-step process is involved in the activation of the conductance increase that leads to the inhibitory response. Inhibitory responses with similar kinetics were produced in heart muscles of the mudpuppy upon application of ACh.

Acetylcholine↗

The number of acetylcholine molecules in a quantum and the interaction between quanta at the subsynaptic membrane of the skeletal neuromuscular synapse.

1. Postsynaptic responses to acetylcholine released from nerve terminals and from iontophoretic micropipettes were investigated in skeletal twitch-muscle fibers of the snake. The preparation consists of thin sheets of muscle fibers in which details of the end plate, including the outlines of individual synaptic boutons, are clearly seen in the living state. After treatment with collagenase, the motor nerve and its terminal boutons can be removed to expose the intact subsynaptic membrane to direct application of ACh by iontophoretic pipettes. 2. The number of ACh molecules in a quanta was estimated to be fewer than 10,000. This was done by developing a sensitive bioassay to measure the output of ACh from iontophoretic pipettes needed to produce synaptic responses closely resembling nerve-released miniature postsynaptic potentials. 3. Postsynaptic receptors are not saturated by the ACh in a quantum, since the peak of the quantal response produced by an appropriate background concentration of ACh from a pipette. 4. When acetylcholine esterase is inhibited, two or more quanta can act upon partially overlapping postsynaptic membrane areas and potentiate each other's effects. This potentiation reveals itself as a prolongation of the synaptic current. Postsynaptic potentiation is a consequence of the nonlinear dose-response characteristics of ACh receptors and can also be demonstrated in a model system in which ACh micropipettes substitute for quantal release from the nerve. 5. With AChE fully active, however, each quantum is functionally isolated from its neighbors and no postsynaptic potentiation is seen. 6. It is suggested that postsynaptic potentiation between quantum may play a role in signaling at synapses which have nonlinear dose-response characteristics and where transmitter is not so rapidly inactivated as at the neuromuscular synapse.

Acetylcholine↗

Acetylcholine receptors at neuromuscular synapses: phylogenetic differences detected by snake alpha-neurotoxins.

Phylogenetic differences in acetylcholine receptors from skeletal neuromuscular synapses of various species of snakes and lizards have been investigated, using the snake venom alpha-neurotoxins alpha-atratoxin (cobrotoxin) and alpha-bungarotoxin. The acetylcholine receptors of the phylogenetically primitive lizards, like those from all other vertebrates previously tested, are blocked by these alpha-neurotoxins. In contrast, receptors from snakes and advanced lizards are insensitive to one or both of the toxins. It is suggested that toxin-resistant acetylcholine receptors appeared early in the evolution of Squamata and preceded the appearance of alpha-neurotoxins.

Animals↗

The distribution of acetylcholine sensitivity at the post-synaptic membrane of vertebrate skeletal twitch muscles: iontophoretic mapping in the micron range.

1. The distribution of acetylcholine (ACh) sensitivity was mapped in skeletal twitch muscles of the snake, frog and mudpuppy with iontophoretic methods that provide a resolution in the mum range. 2. The preparations were thin sheets of muscle fibres that were viewed with Nomarski optics, giving sharp definition of cellular detail. The muscles in the snake were especially suitable. Their motor nerves terminate in a compact cluster of synaptic boutons that rest in distinct craters on the muscle surface. After treatment with collagenase the motor nerve and its terminal boutons can be removed, exposing the subsynaptic membrane in the craters. 3. The slopes of dose-response curves obtained by iontophoretic application of ACh were expressed in mV/nC and used as an index of ACh sensitivity. The areas of highest sensitivity, tested either with the terminals in place or removed, were those immediately under the presynaptic terminals. The greatest subsynaptic sensitivities were about 5000 mV/nC, and the time course of the potentials caused by ACh released iontophoretically closely matched that of synaptic potentials set up by ACh released by the nerve. 4. The sensitivity of the extrasynaptic surface less than 2 mum away was at least 50 times lower than that of the subsynaptic membrane. The low extrasynaptic sensitivity declined still further at greater distances. 5. Acetylcholinesterase was shown physiologically to be confined to subsynaptic areas. No activity of the enzyme was detected in extrasynaptic areas beyond about 2 mum from the edge of the synapse. 6. The confinement of high densities of receptors and of acetylcholinesterase to the subsynaptic membrane in muscles is also a feature in parasympathetic neurones. It is suggested that similar specialization may be a widespread property of neurones with chemical synapses.

Acetylcholine↗

Post-synaptic potentiation: interaction between quanta of acetylcholine at the skeletal neuromuscular synapse.

1. Post-synaptic responses to acetylcholine (ACh) released from nerve terminals and from iontophoretic micropipettes were investigated in skeletal muscle fibres of the snake. Each fibre has a compact end-plate consisting of fifty to seventy synaptic boutons. The fibres were voltage clamped, and synaptic currents were recorded from visually identified end-plates. 2. When acetylcholinesterase (AChE) is inhibited, a potentiating interaction is observed between two or more quanta that are released close to each other from a synaptic bouton and act upon partially overlapping postsynaptic areas. The potentiation is expressed as a prolongation of the synaptic current. This potentiation also occurs under normal conditions of release when about 300 quanta are distributed over the entire end-plate, so thet the presynaptic release sites are separated by an average of 2 mum. An analogous potentiating interaction is observed when micropipettes, closely apposed to the subsynaptic membrane, substitute for quantal release sites. ACh from one pipette potentiates the response to ACh from another pipette less than 2 mum away. 3. In contrast, with AChE fully active no post-synaptic potentiation is seen when the normal complement of quanta is released over the entire end-plate. The time course of the synaptic currents in response to a single quantum or to 300 quanta is similar. It is concluded that functionally the quanta act independently of each other, because AChE isolates each quantum from its neighbours by limiting the lifetime of ACh and its lateral diffusion in the synaptic cleft. The estimated area over which a quantum normally acts is less than 2mum2. 4. Post-synaptic receptors are not saturated by the ACh in a quantum, since the peak of the quantal response adds linearly to the response produced by an appropriate background concentration of ACh from a pipette. This conclusion is supported by the observation that upon inhibition of AChE the peak amplitude of the quantal current response increases by about 20% with no change in its time to peak. 5. It is suggested that post-synaptic potentiation between quanta may play a role in signalling at synapses in which non-linear dose-response characteristics have been observed and where transmitter is not as repidly inactivated as the neuromuscular synapse.

Acetylcholine↗

The number of transmitter molecules in a quantum: an estimate from iontophoretic application of acetylcholine at the neuromuscular synapse.

1. The sensitivity of the subsynaptic membrane of twitch muscles of the frog and snake to iontophoretically applied acetylcholine (ACh) was determined. Optimal placement of ACh micropipettes on to the postsynaptic membrane resulted in potentials that were similar, though not identical, to the miniature excitatory post-synaptic potentials (min e.p.s.p.s). A sensitive bio-assay was developed to measure the output of ACh from micropipettes; this allowed an estimate to be made of the upper limit of the number of ACh molecules in a quantum of transmitter that is released from the nerve to produce a min e.p.s.p. 2. The assay to calibrate the output of ACh from micropipettes used the end-plate of the snake muscle as an ACh concentration detector. The end-plate was situated within a few mum of an oil-water interface, and a 0-6 nl. droplet of Ringer solution containing a known concentration of ACh (1 muM or less) was formed in the oil phase. The droplet was brought to the interface and, upon touching it, discharged its contents into the Ringer phase immediately above the end-plate. This resulted in a membrane depolarization that was recorded with an intracellular microelectrode. By applying droplets containing various known ACh concentrations a standard curve was constructed. To measure the ACh output of micropipettes a 0-6 nl. droplet of Ringer solution was suspended in the oil. The ACh pipette tip was inserted into the droplet and several thousand pulses of ACh were then delivered. The ACh content of the test droplet was measured by comparing its effectiveness in depolarizing the end-plate with the standard curve. In this manner the number of ACh molecules released in a single pulse was determined as a function of charge passed through the pipette. The output of ACh was linear and an average of 30,000 molecules of ACh were released per pC. 3. The sensitivity of the subsynaptic membrane to iontophoretically applied ACh, using the linear slopes of dose-response curves, in preparations from frog and snake treated with anticholinesterases was usually about 5 mV/pC. It follows that 6000 molecules of ACh are sufficient to produce a depolarization of 1 mV in the subsynaptic membrane. 4. The mean min e.p.s.p.s of muscle fibres treated with anticholinesterase range from 1 to 3 mV. Since the ACh released from an iontophoretic pipette is less effective than the same amount released from the nerve, it is concluded that a quantum of transmitter consists of less than 10,000 molecules of ACh. 5. It is calculated that for each molecule of ACh released in a quantum there results a minimum net flow of 3000 univalent ions across the synaptic membrane.

Acetylcholine↗

High-resolution shadowing of transfer RNA.

High-resolution shadowing with metals that melt at high temperatures was used to study macromolecules. Molecules of transfer RNA shadowed with tantalum-tungsten are readily visualized in an electron microscope. Mounting procedures for tRNA were perfected that reproducibly gave uniform distributions of both monomeric and dimeric tRNA particles, and allowed a statistical assessment of their gross shapes and sizes. Monomeric tRNA yielded a fairly homogeneous population of rod-shaped particles, with axial dimensions of about 40 x 85 A. Dimers of yeast alanine tRNA held together by hydrogen bonds and dimers constructed by covalent linkage of the amino-acid acceptor (3'-) termini of monomers both gave slightly more heterogeneous populations of particles. Yet, their structures were also basically rod shaped, with their lengths ranging to about twice that of the monomer; this result indicates an end-to-end arrangement of the monomeric units within both dimers. These results suggest that the amino-acid acceptor terminus and the anticodon region are at the ends of the rod-shaped, dehydrated tRNA monomer visible by electron microscopy, consistent with the generally accepted view of tRNA structure in solution suggested by other workers using other methods. This study demonstrates that high-resolution shadowing with tantalum-tungsten provides a means to examine the three-dimensional structures of relatively small biological macromolecules.

Alanine↗