PubMed Health⌕ Search

Biomedical subjects

I Ueda

Publications and source records attributed to I Ueda.

249 records · Page 14Linked to original sources

An in vivo 19F NMR study of isoflurane elimination as a function of age in rat brain.

In vivo 19F NMR at 4.7 T has shown that the biphasic elimination of the vapor anesthetic isoflurane from rat brain is ca 15% slower in old (23-24 months) animals compared with young (5-6 months) animals. The fast kinetic component has a t1/2 of ca 7-9 min and the slow event, 100-115 min. Gas chromatographic measurement of arterial blood elimination displays age attenuation to the same extent, although a monophasic kinetic process (6-7 min). The slow wash-out from brain is thought to involve elimination from intracranial fatty tissue as postulated by others in rabbit brain. Longitudinal relaxation time measurements show monoexponential recovery and essentially identical values for young (1.09 + 0.11 s) and old (1.04 +/- 0.09 s) animals. For dipalmitoylphosphatidylcholine vesicles the monoexponential recovery also suggests rapidly exchanging averaged homogeneous lipid environments for the anesthetic, but the longer T1s (2.75 +/- 0.25 s) imply less restricted mobility compared with brain. Single T2 values were obtained in vivo, indicating either a single compartment or rapid exchange between multiple environments. These measurements were inconsistent, undoubtedly as a result of B1 inhomogeneity. The age-attenuated elimination kinetics for isoflurane are consistent with poorer cardiopulmonary function, whereas the T1 data suggest similar environments for the anesthetic in young and old brain tissue.

1,2-Dipalmitoylphosphatidylcholine↗

Interfacial dehydration by alcohols: hydrogen bonding of alcohols to phospholipids.

The interaction between alcohols (ethanol and n-butanol) and dipalmitoylphosphatidylcholine (DPPC) in carbon tetrachloride was studied by Fourier transform infrared spectroscopy (FTIR). Upon addition of the alcohols, the P = O stretching band of DPPC at 1260 cm-1 shifted to lower frequency (red-shift). The red-shift indicates that the P = O vibration became slower possibly because the heavier alcohol molecules replaced the water molecules hydrogen bonded to the PO2 moiety. The formation constants between the PO2 group and ethanol or n-butanol (n-butanol data in parenthesis) were 19.0 M-1 (7.1 M-1) when estimated from the spectral change. A new absorbance peak appeared at 3265 cm-1 (3275 cm-1) representing the DPPC-alcohol complex. The formation constant of this complex was also 19.0 M-1 (7.1 M-1). The identical formation constant suggests that the DPPC-alcohol complex was formed at the PO2 moiety of DPPC with hydrogen bonding to the alcohol OH. At higher alcohol concentrations, the absorbance peak of DPPC-alcohol complex shifted to 3225 cm-1 (3235 cm-1). Apparently, the lower frequency shift at higher alcohol concentration occurred by the formation of alcohol multimers (dimer, trimer, and tetramer) interacting with DPPC.

1,2-Dipalmitoylphosphatidylcholine↗

Hydrogen ion concentration versus pH.

There appears to be a tendency to convert pH values into "hydrogen ion concentrations" using the antilog of negative pH values. The present communication describes the thermodynamic basis of pH to explain that the above procedure is erroneous and that pH values should be treated as primary variables. Acidity expressed by the hydrogen ion concentrations measured by titrations (base excess or base deficit) has no bearing with the "hydrogen ion concentrations" derived by the antilog of negative pH.

Acid-Base Equilibrium↗