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P F Dillon

Publications and source records attributed to P F Dillon.

11 recordsLinked to original sources

Multisite saturation transfer using DANTE and continuous wave.

The DANTE pulse sequence was modified to produce selective resonance saturation similar to that produced by the continuous wave (CW) technique. A combined DANTE and CW saturation technique can be used to perform multisite saturation transfer experiments because of the similar saturation produced by the two techniques.

Adenosine Triphosphate

Effect of decreased pH on force and phosphocreatine in mammalian skeletal muscle.

Phosphocreatine (PCr) and intracellular pH changes were monitored by 31P-NMR spectroscopy in isolated, arterially perfused cat biceps and soleus muscles, while the pH of the CO2-bicarbonate buffered perfusate was decreased from 7.1-7.4 to 6.4-6.7 by increasing the CO2 in the equilibrating gas from 5 to up to 70%. In biceps (fast twitch) muscles, intracellular pH decreased from 7.0 to 6.6 (30% CO2, 30 degrees C), peak tetanic force decreased by 8%, but the rise and relaxation times of tetanic were not significantly changed. In soleus muscles, intracellular pH decreased from 7.0 to 6.6 (30% CO2, 30 degrees C), peak tetanic force was unchanged, but the rise and relaxation times of tetani were increased by 27 and 112%, respectively. In both muscles greater decreases in tetanic force were observed during repetitive or ischemic stimulation, which resulted in intracellular pH similar to that produced by hypercapnia. Contrary to previous reports, there was no significant decrease in PCr level in either muscle type with decreased intracellular pH. In the soleus at 30 degrees C there was a significant increase in PCr level with decreased pH.

Animals

The theory of diazymes and functional coupling of pyruvate kinase and creatine kinase.

The physical-chemical principles governing the interactions of enzymes having common metabolic products are presented. Methods for comparing the dissociation rates of the metabolic product and the rates of enzyme-enzyme interaction are given. Using muscle pyruvate kinase (PK) and creatine kinase (CK) as an example, it is shown that the probability of forming an enzyme-product-enzyme complex is much greater than the rate of ATP dissociation from either enzyme. Experimental evidence using 31P-NMR demonstrates that in the presence of both pyruvate kinase and creatine kinase, there is exchange of phosphate between phosphocreatine and phosphoenolpyruvate without a change in the intermediate, ATP. This confirms the formation of a PK.ATP.CK complex in an aqueous solution without enzyme attachment to a substructure. Enzymes capable of forming these mobile clusters are defined as diazymes, and the criteria for their formation are given. The metabolic implications of diazymes are discussed.

Adenosine Diphosphate

Mechanical and metabolic toxicity of 3-(trimethylsilyl)propanesulfonic acid to porcine carotid arteries.

3-(Trimethylsilyl)propanesulfonic acid (TMSPS) is used as a water-soluble NMR frequency marker. It has its major resonance at 0.00 ppm relative to trimethylsilane, and smaller resonances at 0.62, 1.77 and 2.85 ppm. Its toxicity was tested by exposing contracted porcine carotid strips to increasing concentrations of TMSPS. Up to 3 mM, no statistical change in tension was found. Tension decreased 94 +/- 2% (S.E.) after 30 min in 10 mM TMSPS. An intermediate concentration of TMSPS (6 mM) caused a small fall in phosphocreatine in unstimulated perfused porcine carotid arteries (82 +/- 2% S.E.). A larger decrease (59 +/- 6% S.E.) occurred during K+ contractures in the presence of 6 mM TMSPS. From those experiments it appears the TMSPS is non-toxic in concentrations up to 3 mM, but at greater concentrations inhibits both contraction and phosphorus metabolism.

Alkanesulfonates

31P NMR study of insulin effects on the isolated perfused rabbit urinary bladder.

Insulin stimulates hexose transport, intermediary metabolism, and cell growth and development. These effects are well-documented in skeletal but not smooth muscle. 31P NMR spectroscopy was performed on rabbit urinary bladders (n = 4) to characterize insulin's actions on smooth muscle. The bladder and its vasculature were surgically isolated from the animal and perfused with a PSS/red blood cell perfusate. After a control steady state was achieved (approx 1-2 h), insulin (0.100 mU/ml) was added to the perfusate. Relative levels of intracellular phosphorylated compounds, pH, and free Mg2+ were measured and compared to control values. Also, extracellular pH and fractional volume were assessed using phenylphosphonate, a 31P NMR extracellular pH and volume indicator. Insulin induced significant increases in PCr (16 +/- 9%) at the expense of Pi, intracellular pH (delta pH 0.24 +/- 0.07), and fractional extracellular volume (49 +/- 1%). Intracellular free Mg2+ and extracellular pH did not change. These results indicate that in situ smooth muscle is sensitive to physiological levels of insulin. In fact, insulin improves the energy state of smooth muscle cells and the overall tissue perfusion.

Adenosine Triphosphate

NIH funding.

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National Institutes of Health (U.S.)

Glucose dependence of sequential norepinephrine contractions of vascular smooth muscle.

The effects of successive, norepinephrine (NE)-stimulated, contractions of porcine carotid artery intima-media strips as a function of recovery medium were studied. Recovery following NE stimulation required the presence of glucose in the bathing medium for subsequent force production in response to NE stimulation. Potassium stimulation following failed NE contractions produced maximal contractions. Phosphorous nuclear magnetic resonance studies under similar conditions indicated that the energy state of the tissue was not impaired during and after recovery from NE stimulation without glucose. This study shows that the phasic phase of norepinephrine-stimulated contractions is dependent on the availability of extracellular glucose during the poststimulation recovery period for successive NE contractions.

Adenosine Triphosphate

The use of 31P-NMR to study smooth muscle.

The use of 31P NMR to study smooth muscle is hindered by low metabolite concentrations and low tissue mass. These disadvantages can be overcome due to low rates of energy utilization and the temporal stability of smooth muscle. Smooth muscle free Mg++, ADP, and the creatine analogue beta-guanidinopropionate can be studied in ways distinctive from 31P NMR of striated muscle. The pharmacological effects of naturally occurring agents such as insulin, glucose, or norepinephrine, and of NMR markers such as phenylphosphonate or 3-(trimethylsilyl)-1-propane-sulfonate on both vascular smooth muscle and perfused smooth muscles can be measured. Given sufficient collection time, 31P NMR is as useful in assessing the behavior of smooth muscle as it is of other muscle types.

Adenosine Triphosphate

Direct determination of ADP in hypoxic porcine carotid artery using 31P NMR.

31P-NMR spectroscopy was performed on vascular smooth muscle (VSM; porcine carotid artery) superfused with a substrate-free high K(+)-PSS. Scans were collected before (control), during (hypoxia), and after (post-control) hypoxia, and chemical measurements of ATP (0.070 +/- 0.13 mumoles/g wet wt.) and creatine (2.04 +/- 0.14 mumol/g wet wt.) were made. During hypoxia, well-defined beta-ADP signals were consistently resolved. Their areas indicated that after 30, 60, and 90 min of hypoxia, free ADP was 0.05 +/- 0.01, 0.09 +/- 0.01, and 0.12 +/- 0.01 mumol/g wet wt., respectively. The apparent tissue equilibrium constant (Kck) for creatine kinase (CK) was calculated using 90 min hypoxic data and was 7.6 +/- 0.6 x 10(8) M-1. It was used to compute free ADP levels (mumol/g wet wt.) for control (0.028 +/- 0.002) and post-control (0.23 +/- 0.003) periods, since ADP signals could not be directly detected, and for the 30 and 60 min hypoxic periods (0.05 +/- 0.01 and 0.08 +/- 0.01, respectively). The Kck-dependent ADP values for the 30 and 60 min hypoxic periods periods were the same as the ADP values determined directly from the beta-ADP peak areas, suggesting that the CK reaction is in equilibrium in smooth muscle. These data show that 31P-NMR provides a means of directly measuring free ADP in hypoxic smooth muscle and a more accurate means of computing free ADP levels in normoxic VSM through the use of an in situ tissue Kck vs an assumed or in vitro Kck.

Adenosine Diphosphate

Phenylphosphonate: a 31P-NMR indicator of extracellular pH and volume in the isolated perfused rabbit bladder.

31P-NMR has been used extensively to estimate intracellular pH. It also can be used to measure extracellular pH and volume when an NMR-detectable extracellular phosphorous probe is used. Phosphonic acids have been suggested as useful 31P-NMR extracellular markers. The present study was designed to assess the utility of phenylphosphonic acid (PPA) as a 31P-NMR extracellular marker in perfused smooth muscle. Rabbit bladder strips were exposed to PPA concentrations of 1-20 mM. Tension development in response to maximal carbachol challenges (10 microM) was independent of PPA concentration. Addition of PPA (6 mM) to the perfusate supplying the isolated resting rabbit bladder had no effect on 31P-NMR-detectable phosphatic compounds. PPA's resonance frequency was distinctly downfield from endogenous phosphates and demonstrated a pH-dependent chemical shift of +/- 1.12 ppm/pH unit over the range of 6.4 to 7.6 with a pK' of 7.09 at 23 degrees C. The time courses for washing PPA in and out of the resting bladder were best described by monotonic exponential growth (r = 0.972; n = 3) and decay (r = 0.972; n = 3) equations, respectively. Rate and time constants for PPA wash-in (0.039 +/- 0.004 min-1 and 25.7 +/- 2.3 minutes) and washout (0.038 +/- 0.000 min-1 and 26.3 +/- 0.0 minutes) were not significantly different. Using steady state PPA and ATP peak intensities and concentrations, an extracellular-to-intracellular ratio was calculated to be 0.31 +/- 0.03 (n = 3). These data indicate that PPA remains distributed exclusively in the extracellular spaces.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals