Search PubMed⌕ Search

Biomedical subjects

J Murphy-Boesch

Publications and source records attributed to J Murphy-Boesch.

25 records · Page 2Linked to original sources

Cerebral intracellular ADP concentrations during hypercarbia: an in vivo 31P nuclear magnetic resonance study in rats.

Qualitatively different responses of ADP levels have previously been observed in the brain during hypercarbia. One investigation has found that cerebral ADP stayed constant during hypercarbia in rats that were anesthetized with halothane, while another observed that ADP decreased during supercarbia in rats that received no supplemental anesthesia. This article reports an in vivo 31P nuclear magnetic resonance study to test the hypothesis that halothane anesthesia accounts for the discrepant observations. Isoflurane anesthesia was also studied in a second group of rats to see if a different general anesthetic agent would cause the same effects that halothane causes. The two groups of five rats underwent dual episodes of hypercarbia that were separated by a 45-min recovery period. General anesthesia, either 0.5% halothane or 1.0% isoflurane, was administered during the first episode but not during the second. Hypercarbia during halothane anesthesia caused the measured phosphocreatine (PCr) to decrease by 40%, while the calculated change in ADP was 10%, in agreement with the former investigation. In contrast, hypercarbia during either isoflurane anesthesia or no anesthesia caused a decrease of only 10% in PCr, which meant that the calculated decrease in ADP was 60%, in agreement with the results of the second investigation. We conclude that during hypercarbia, clinical concentrations of halothane, unlike clinical concentrations of isoflurane, interfere with the regulation of ATP metabolism.

Adenosine Diphosphate↗

In vivo sodium-23 magnetic resonance surface coil imaging: observing experimental cerebral ischemia in the rat.

Sodium-23 magnetic resonance imaging can be used to detect and assess experimental cerebral ischemia in the rat. An imaging technique utilizing a surface coil is described to produce sodium magnetic resonance images of good quality and resolution within 10 min. A novel method of hemispheric occlusion showed edema in the right brain of the rat head within 3 hr after injury. The edema was especially pronounced by 12 hr with effects in the right brain, eye and surrounding muscle evident.

Animals↗

Cerebral intracellular changes during supercarbia: an in vivo 31P nuclear magnetic resonance study in rats.

31P nuclear magnetic resonance (NMR) spectroscopy was used noninvasively to measure in vivo changes in intracellular pH and intracellular phosphate metabolites in the brains of rats during supercarbia (PaCO2 greater than or equal to 400 mm Hg). Five intubated rats were mechanically ventilated with inspired gas mixtures containing 70% CO2 and 30% O2. Supercarbia in the rat was observed to cause a greater reduction in cerebral intracellular pH (pHi) and increase in PCO2 than observed in other experiments with rats after 15 min of global ischemia. Complete neurologic and metabolic recovery was observed in these animals, despite and average decrease in pHi of 0.63 +/- 0.02 pH unit during supercarbia episodes that raised PaCO2 to 490 +/- 80 mm Hg. No change was observed in cerebral intracellular ATP and only a 25% decrease was detected in phosphocreatine. The concentration of free cerebral intracellular ADP, which can be calculated if one assumes that the creatine kinase reaction is in equilibrium, decreased to approximately one-third of its control value. The calculated threefold decrease in the concentration of free ADP and twofold increase in the cytosolic phosphorylation potential suggest that there is increased intracellular oxygenation during supercarbia. Because a more than fourfold increase in intracellular hydrogen ion concentration was tolerated without apparent clinical injury, we conclude that so long as adequate tissue oxygenation and perfusion are maintained, a severe decrease in intracellular pH need not induce or indicate brain injury.

Adenosine Diphosphate↗

Deuterium NMR in the solid-state and in solution of the molecular motion of the bases in poly(I) and poly(I) . poly(C).

To provide information regarding the conformational flexibility of nucleic acids, in particular the rate and amplitude of base motions, we have observed the deuterium NMR from single-stranded and double-stranded polynucleotides. Poly(I) was deuterated at the 8-position of the base, and the deuterium NMR was examined in solution (at 23.0 and 55.4 MHz) and for hydrated and dry fibers (at 23.0 MHz). In the solid state, the deuterium signal of dry poly(I) exhibits a powder pattern with the maximal expected quadrupolar splitting, while the relatively short spin-lattice relaxation time indicates the presence of a rapid internal reorientation of the C-D bond with an amplitude of that motion of at least +/- 2.4 degrees. Hydrating the poly(I) fibers to the extent of eight molecules of water per nucleotide results in the disappearance of the deuterium signal, apparently due to a decreased spin-spin relaxation time shorter than the instrumental dead-time (even using the quadrupolar echo technique); this could occur if conformational fluctuations are occurring at a rate comparable to the deuterium quadrupole interaction strength, i.e., 175 kHz. In solution, a theoretical fit to the measured Lorentzian linewidths and spin-lattice relaxation times necessitates the inclusion of at least two motional correlation times, with a subnanosecond internal motion. Double-stranded poly(I) . poly(C) yielded a solid state spectrum similar to poly(I), albeit with a longer T1, which reduced the lower limit for the amplitude of an internal motion to +/- 1.9 degrees. The 2H signal from the poly(I) . poly(C), hydrated to a degree of approx. eight molecules of water per base pair, retained its solid-state lineshape (with a reduced T1 value, indicating increased internal mobility of the bases with a lower limit on amplitude of +/- 4.7 degrees). In solution, however, the 2H-NMR signal from poly(I) . poly(C) became virtually undetectable, even in solid-echo experiments, when the echo was observed after 52 microseconds. This indicates that the spin-spin relaxation time of the deuterium nucleus must be close to its theoretical minimum of about 9 microseconds, and the correlation time for an isotropic reorientation of the C-D vector can be estimated to be between 0.2 and 200 microseconds.

Magnetic Resonance Spectroscopy↗

31P NMR spectroscopy of rat organs, in situ, using chronically implanted radiofrequency coils.

A technique for making 31P NMR spectroscopic measurements in rat kidney, heart, and liver in vivo is presented. Two-turn solenoid coils were surgically implanted around the organ sufficiently in advance of NMR experiments to allow recovery of the animal. These chronically implanted coils allowed acquisition of high-resolution spectra at 40.5 and 97.3 MHz. No resolution improvement occurred at the higher field. Spectra were stable for up to 24 hr, during which time a variety of experiments could be performed. By accumulating spectra at 10-min intervals, the effects of intraperitoneal fructose injections were monitored; in kidney and liver, a rapid increase in sugar phosphates at the expense of Pi and ATP resulted. Fructose had no effect on heart metabolite levels. Spectra from the heart in vivo were obtained at systole and diastole by gating the spectrometer to the aortic pressure wave; no differences in phosphate metabolites were detected. Finally, saturation transfer techniques were used to monitor the rate of ATP synthesis in the kidney. The unidirectional rate constant for the conversion of Pi to ATP was 0.12 +/- 0.03 sec-1.

Adenosine Diphosphate↗

Proton-decoupled 31P chemical shift imaging of the human brain in normal volunteers.

Proton-decoupled, 31P three-dimensional (3-D) chemical shift imaging (CSI) spectra have been acquired from the entire human brain using a new dual tuned resonator. The resonator operates in quadrature mode to provide improved sensitivity, excellent B1 homogeneity and reduced power deposition at both frequencies. Proton-decoupled and fully NOE enhanced, 31P spectra were acquired from normal volunteers using Waltz-4 proton decoupling with continuous wave bi-level excitation applied through a second radio frequency channel. Well resolved peaks in the phosphomonoester (PME) and phosphodiester regions were obtained from nonlocalized FIDs and spectra localized with 3-D CSI without processing for resolution enhancement. pH measurements made over large regions of the brain using the P(i) resonance show no significant variations (6.9 +/- 0.02) for a single individual. The improved spectral resolution and sensitivity of the PME resonances results in more well defined metabolite images of the PME peak region.

Brain↗

Phospholipid metabolites in 1H-decoupled 31P MRS in vivo in human cancer: implications for experimental models and clinical studies.

The use of 31P MRS in clinical cancer research has been hampered by both poor anatomic localization of spectra and poor resolution of overlapping signals. We found that accurate localization using 3D chemical shift imaging and improved resolution using 1H-decoupling and nuclear Overhauser-enhancement (NOE) increased signal-to-noise and permitted resolution of separate components within phosphomonoester (PME) and phosphodiester (PDE) regions. Fifty-three cancers of different types (lymphoma, sarcoma, adenocarcinoma) had the following common features: (1) phosphoethanolamine the dominant PME; (2) glycerophosphoethanolamine and -choline rarely detected; (3) a broad PDE signal probably from membrane phospholipids; and(4) prominent nucleoside triphosphates. 1H-decoupling with NOE-enhancement permitted us to obtain new information about in vivo metabolism in human cancers; generate new hypotheses and help guide development of experimental models appropriate to test them; and provide a firm basis with which to examine clinical uses of 31P MRS.

Humans↗