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S S Kelly

Publications and source records attributed to S S Kelly.

31 records · Page 2Linked to original sources

Sustained transmitter output by increased transmitter turnover in limb muscles of old mice.

The ability of neuromuscular junctions in old animals to maintain tetanic output was tested in phasic and tonic limb muscles and the physiologic mechanism of maintenance was elucidated by analysis of the turnover of a false transmitter during prolonged tetani. Transmitter release during and after tetani was compared in limb muscles of young (8-9 month) and old (28-30 month) male CBF-1 mice. Amplitudes of end-plate potentials (epp's) in curarized preparations and of spontaneous miniature end-plate potentials (mepp's) were measured in vitro at 30 degrees C in soleus and extensor digitorum longus (edl) muscles. In both young and old soleus muscles, epp amplitude was maintained at about 45% of resting level during the latter part of trains of 1,200 stimuli at 10 Hz but recovered to about 90% control within a few seconds after stimulation ceased. In edl muscles of young mice, epp amplitudes during a 20 Hz train of 1,200 impulses steadily declined to about 20% of control and gradually recovered over 2 min after the tetanus. In old edl muscles, tetanic decay of the epp's was greater and recovery slower than in young muscles, but absolute epp amplitudes were invariably greater. During trains of 6,000 impulses at 10 Hz, plateau epp amplitude decayed to 40-50% in young soleus muscle and 30-40% control in old muscle, but recovery was similar and absolute epp amplitudes were greater in old soleus muscle. A false transmitter precursor, homocholine (HoCh), was used to investigate the mechanism of this prolonged output, and, therefore, the use of HoCh in this system was first validated.(ABSTRACT TRUNCATED AT 250 WORDS)

Aging↗

Fluorescent staining of living mouse neuromuscular junctions.

A technique for staining living neuromuscular junctions is described and used for electrophysiological recording with both intra- and extra-cellular microelectrodes. This technique may be used on thicker muscles (eg. mouse soleus), has no effect on any of several physiological parameters tested, and should have several useful applications.

Animals↗

Bimodal miniature and evoked end-plate potentials in adult mouse neuromuscular junctions.

Intracellular recordings of spontaneous miniature end-plate potentials (m.e.p.p.s) in muscles from adult CBF-1 mice revealed a population of muscle fibres in which the amplitude distribution of m.e.p.p.s was bimodal. The large mode m.e.p.p.s were similar to those from fibres having unimodal amplitude distributions and the small mode m.e.p.p.s were about one-half to one-quarter the amplitude of the large mode. In five diverse muscle groups (extensor digitorum communis, gluteus maximus, diaphragm, extensor digitorum longus, and soleus) from mice 10-12 or 31 months of age, bimodal m.e.p.p. amplitude distributions were present in about 20% of fibres sampled. In the common bimodal distribution (type 1), the rise times of small mode m.e.p.p.s were similar to those of large mode m.e.p.p.s. A rare class of small mode m.e.p.p.s (type 2) having long rise times was also observed. Amplitudes and half-decay times of type 1 small mode m.e.p.p.s increased in the presence of an anticholinesterase (edrophonium). Increasing extracellular potassium concentration led to an increase in large mode m.e.p.p. frequency but had more variable effects on small mode frequency. In the few cases available for study, type 2 small mode m.e.p.p.s disappeared after addition of edrophonium or increased potassium. When the extracellular calcium/magnesium ratio was reduced, large mode but not small mode m.e.p.p. frequency decreased. In almost all muscle fibres in which end-plate potentials (e.p.p.s) were evoked by nerve stimulation at 20 Hz in low calcium/high magnesium solution, small mode e.p.p.s similar to small mode m.e.p.p.s appeared during 'failures' of large mode m.e.p.p.s. Also, in twelve out of fifteen fibres which had unimodal m.e.p.p. amplitude distributions, small mode e.p.p.s appeared which were similar in amplitude to small mode m.e.p.p.s in fibres with type 1 bimodal m.e.p.p.s. Thus, if both spontaneous and evoked potentials are included, small mode m.e.p.p.s are present at most CBF-1 mouse adult neuromuscular junctions independent of muscle type or animal age. Small and large mode m.e.p.p.s differ in certain responses but both are evoked by nerve stimulation at physiological frequencies and therefore participate in normal neuromuscular synaptic activity. The possible origin of small mode m.e.p.p.s is discussed.

Aging↗

Neuromuscular transmission and correlative morphology in young and old mice.

1. Age changes in spontaneous and evoked transmitter release, in receptor number and in ultrastructure at the neuromuscular junction were studied in the CBF-1 mouse strain, which stays physically active and relatively free of organ pathology into advanced age.2. Spontaneous miniature end-plate potentials (m.e.p.p.s) were recorded in the following young (8-12 months) and old (29-33 months) mouse muscles: extensor digitorum longus (e.d.l.), soleus (sol.), gluteus maximus (g.m.), diaphragm (diaph.) and extensor digitorum communis (e.d.c.).3. M.e.p.p. amplitudes were unchanged with age in four muscle groups despite increases in input resistance (in e.d.l., sol. and g.m.). M.e.p.p. amplitude in old diaph. increased 54% with no change in input resistance. Bimodal distributions of m.e.p.p. amplitudes were observed in 6-23% of muscle fibres but were not more prevalent in old mice. There was little or no change in resting membrane potential with age.4. Numbers of junctional acetylcholine receptors (measured with (125)I-alpha-bungarotoxin) were the same in all young and old muscles except e.d.l., where a 30% decrease was noted. Extrajunctional receptors and other indicators of denervation (decreases in resting potential, twitch tension or muscle fibre diameter) were absent or minimal.5. M.e.p.p. frequency decreased in e.d.l., sol. and e.d.c. but not in g.m. or diaph. There was no correlated change in the cholinesterase-positive end-plate area.6. It is concluded that m.e.p.p. amplitude is maintained in old muscles by a combination of compensatory changes. The decline in m.e.p.p. frequency varies between muscle groups and is independent of the length of the motoneurone axon or level of innervation.7. Evoked end-plate potentials (e.p.p.s) were recorded in e.d.l., sol. and diaph. from young (11-13 months) and old (29-30 or 34-35 months) male CBF-1 mice in curarized preparations stimulated at 2 or 20 Hz. The amplitude of the initial e.p.p. of the trains was increased by 122% in old e.d.l. and 93% in old sol., and plateau e.p.p. amplitudes were also increased by about 100% (e.d.l.) and 67% (sol.). This, combined with the absence of change in m.e.p.p. amplitude with age, suggests that the number of quanta released per nerve impulse was increased. In diaph. there was no change with age.8. In all muscle groups, the threshold for initiation of the muscle action potential was unchanged with age. Thus, the relative safety factor of transmission was increased in curarized old e.d.l. and sol. (but not diaph.).9. Depression of the indirect twitch in solutions with a decreased calcium: magnesium ratio was also used as a relative measure of synaptic efficacy. Old sol. and e.d.l. but not diaph. muscles showed less depression of indirect twitch amplitude than did young muscle under these conditions.10. In cut-fibre preparations of sol. and diaph. stimulated at 20 Hz, there was no age-dependent difference in e.p.p. amplitude, in directly measured quantal content, or in curare sensitivity. In view of other results, these findings require careful interpretation.11. Ultrastructural morphometry was carried out in e.d.l. The nerve terminals in old (30 and 34 months) e.d.l. muscles exhibited pronounced loss of synaptic vesicles. In 34-month animals, decreased nerve terminal area and post-synaptic folds devoid of nerve terminals were often observed. Since no evidence of denervation was found by physiological criteria, it is concluded that in 34-month mice, nerve terminals withdraw from some synaptic gutters but do not abandon any junction entirely. The large presynaptic ultrastructural changes contrast with the physiological data showing no deficit and even increases in transmitter release. Therefore, under these conditions, these profound structural changes are either not functionally significant or are well compensated.

Acetylcholine↗

Progression of age changes in synaptic transmission at mouse neuromuscular junctions.

The progression of age-related changes in neuromuscular function was investigated in muscles from CBF-1 mice between 7 and 32 months of age. End-plate potentials (e.p.p.s) were recorded in extensor digitorum longus (e.d.l.), soleus, and diaphragm muscles after neuromuscular transmission was blocked with either (+)-tubocurarine chloride (curare) or high-Mg/low-Ca Krebs solutions. Between 10 and 31 months of age in e.d.l. and soleus but not in diaphragm, there was an increase in e.p.p. amplitude with age. In soleus this increase was approximately two-fold in curare and three-fold in high-Mg solution. Increase in e.p.p. amplitude in curarized preparations took place between 20 and 28 months of age in e.d.l. and between 28 and 31 months of age in soleus. Indirectly elicited twitch responses were used to determine the time course of age-related changes in sensitivity to Mg block. Increased resistance to block appeared between 15 and 19 months of age in both e.d.l. and soleus (in which the increase was more gradual). E.d.l. muscles from 25-month-old CFW mice also showed an increased resistance to Mg block compared to those from 7-8-month-old animals. In Mg-blocked preparations, increased quantum content (measured directly) accounted for the increased e.p.p. amplitude. Spontaneous miniature end-plate potential (m.e.p.p.) frequency in old soleus muscles was not sensitive to low-Ca/high-Mg solutions although frequency in young soleus and young and old diaphragm was significantly reduced. It is concluded that age-related changes in evoked transmitter release begin in mid life and take place more rapidly in e.d.l. than in soleus.(ABSTRACT TRUNCATED AT 250 WORDS)

Aging↗

Quantitative study of motor endplates in muscle fibres dissociated by a simple procedure.

Large numbers of single muscle fibres can be obtained reproducibly from glutaraldehyde-fixed skeletal muscle by the method described here. With suitable modifications, one can estimate acetylcholine receptor number (alpha-bungarotoxin binding sites) and endplate area in parallel portions produced from the same muscle sample, so that small differences (e.g. with growth or between muscle types) become detectable. Microdissection further increases the precision of evaluation of junctional, perijunctional and extrajunctional binding sites. Other applications are illustrated.

Acetylcholinesterase↗

The effect of nutritional state on neuromuscular transmission in the rat.

1. Evoked end-plate potentials (e.p.p.s) were recorded in phrenic nerve-hemidiaphragm preparations from rats which had been subjected to periods of dietary restriction. 2. The mean quantum content of the first e.p.p. of trains of e.p.p.s was significantly increased after 1 week of dietary restriction in 30-day-old but not in 110-day-old rats. 3. The mean quantum content of plateau e.p.p.s elicited at a frequency of 10 Hz was not significantly affected by brief periods of dietary restriction in either 30-day-old or 110-day-old rats. 4. In the younger animals there was found to be a decrease in the safety factor of neuromuscular transmission following dietary restriction when this parameter was calculated using previously reported values for the amplitude of spontaneous miniature end-plate potentials (m.e.p.p.s) after such a restricted diet. 5. Such rapid changes in neuromuscular transmission following brief periods of dietary restriction indicate that great care is required in the choice of adequate control animals when food intake is altered by experimental procedures.

Age Factors↗

The effect of age on neuromuscular transmission.

1. Resting membrane potentials (RMPs), spontaneous miniature end-plate potentials (m.e.p.p.s), and evoked end-plate potentials (e.p.p.s) were recorded in phrenic nerve-hemidiaphragm preparations from rats at ages from 11 to 375 days. 2. The mean RMP increased from -64.1 +/- 1.2 mV (mean +/- S.E.) at age 11 days to -71.3 +/- 1.0 mV at age 30 days, after which there was no significant change with age. 3. The mean amplitude of m.e.p.p.s decreased from 1.088 +/- 0.070 mV at 11 days of age to 0.405 +/- 0.030 mV at 175 days of age, after which there was no significant change. 4. There was a rpaid, large increase in the frequency of m.e.p.p.s from 0.02/sec to 0.97/sec (geometric means) between 11 and 23 days of age, followed by a slower increase to 3.19/sec at 175 days of age. Subsequently there was a decrease by 2.58/sec at 375 days of age. 5. The mean of quantum content of plateau e.p.p.s elicited at a frequency of 10 Hz increased from 20.5 quanta/e.p.p. to 169.9 quanta/e.p.p. (geometric means) between 11 and 175 days of age and then decreased to 120.4 quanta/e.p.p. at 375 days of age. 6. The mean quantum content of the first e.p.p.s of trains of e.p.p.s increased from 44.2 quanta/e.p.p. to 468.8 quanta/e.p.p. (geometric means) between 11 and 175 days of age and then decreased to 358.1 quanta/e.p.p. at 375 days of age. 7. The calculated safety factor of neuromuscular transmission increased with age up to 110-175 days and subsequently decreased. 8. The change in all the above parameters occurred most rapidly in the first 6 weeks of life. The rapidity of these changes indicates that great care must be taken to ensure that control and experimental animals are adequately matched according to age, especially when rats weighing less than about 300 g are used.

Aging↗

The effect of age on the safety factor in neuromuscular transmission in the isolated diaphragm of the rat.

An analysis of neuromuscular transmission has been made in phrenic nerve/diaphragm preparations from male rats aged 30 days or 110 days. The amplitude of miniature end-plate potentials was found to decrease with age, being 0.969 +/- SEM 0.058 mV at 30 days and 0.510 +/- SEM 0.031 mV at 110 days. Over the same period, the quantum content of the first end-plate potential of a train of 40 at 10 Hz, increased from 144.5, SEM + 11.1, -10.4 to 346, SEM +41.4, -37.0. A corresponding change was observed also in the average quantum contents of the last 30 end-plate potentials of each train; from 50.6, SEM +3.5, -3.2, to 138.9, SEM + 15.0,--13.6. The safety factor for neuromuscular transmission, calculated from these measured parameters, was found at 30 days to be only 70-80% of that at 110 days. It was estimated that the lower safety factor found in young rats was approximately equivalent to the neuromuscular blocking action of a dose of, at least, 0.0225 mg/kg of d-tubocurarine. Extrapolation of these results to man would support previous reports of increased sensitivity to d-tubocurarine in neonates.

Aging↗

Determination of diarrheic shellfish toxins in mussels by microliquid chromatography-tandem mass spectrometry.

A fast, sensitive, and specific procedure for determining toxins that cause diarrheic shellfish poisoning (DSP) using microliquid chromatography coupled with tandem mass spectrometry (micro-LC-MS-MS) is reported. The lipophylic polyether acidic toxins okadaic acid (OA), its isomer dinophysistoxin-2 (DTX-2), the 35-methylokadaic acid dinophysistoxin-1 (DTX-1), and the novel toxin dinophysistoxin-1B (DTX-2B; recently isolated from Irish mussels) were extracted from shellfish tissues with acetone and chromatographed by isocratic elution at 10 microL/min with CH3 CN-H2O, 80 + 20 (v/v), containing 0.1% trifluoroacetic acid, through a C18 reversed-phase column (1.0 mm id). The chromatograph is coupled via an ion spray interface to an atmospheric pressure ionization source. Collision-induced-dissociation (CID) ion mass spectra of the protonated molecule, [M + H]+, at m/z 805 for OA, DTX-2, and DTX-2B and at m/z 819 for DTX-1, were obtained in MS-MS experiments to identify 2 diagnostic fragment ions for each analyte that could be used for selected-reaction-monitoring (SRM) micro-LC-MS-MS analysis. The CID spectrum of DTX-2B confirmed it to be a new OA isomer, like DTX-2. Standard curves obtained by SRM micro-LC-MS-MS were linear (r2 > or = 0.9992) over the range 0.05-1.00 micrograms/mL (i.e., 0.10-2.00 micrograms toxin/g hepatopancreas), and a detection limit of 15 pg/injection was obtained for each DSP toxin. Average recoveries ranged from 95 to 101%, and coefficients of variation ranged from 1.8 to 3.4%. This novel SRM micro-LC-MS-MS method was used to confirm acidic DSP toxins in Irish and Italian toxic mussels. It offers a high degree of specificity because analyte confirmation is based on retention time, molecular weight, structural information obtained from the presence of 2 diagnostic fragments for each analyte, and ion ratios. OA was found in both Irish (< or = 0.7 micrograms/g hepatopancreas) and Italian (< or = 1.5 micrograms/g hepatopancreas) mussels. DTX-1 was found only in Italian mussels (< or = 0.3 micrograms/g hepatopancreas). DTX-2 (< or = 6.1 micrograms/g hepatopancreas) and DTX-2B (< or = 0.08 micrograms/hepatopancreas) were unique to Irish shellfish.

Animals↗