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W Tamura-Lis

Publications and source records attributed to W Tamura-Lis.

8 recordsLinked to original sources

Real-time X-ray diffraction study at different scan rates of phase transitions for dipalmitoylphosphatidylcholine in KSCN.

Multibilayer arrays of dipalmitoylphosphatidylcholine (DPPC) in 1 M KSCN were characterized using real-time X-ray diffraction and differential scanning calorimetry. A phase transition sequence was observed as a function of increasing temperature which involved changes from the interdigitated subgel (Lc(inter)) to interdigitated gel (L beta(inter)) to disordered (L alpha) bilayer states. The phase transition mechanisms were unambiguously determined by comparison of results from fast and slow scans. The Lc(inter)-->L beta(inter) phase transition was shown to involve a continuous change in acyl chain spacing between the rectangular subgel acyl chain unit cell into an hexagonal gel acyl chain unit cell. The mechanism is similar to that for subgel to gel state transitions involving non-interdigitated DPPC bilayers.

1,2-Dipalmitoylphosphatidylcholine↗

Phase structures and transitions in fully hydrated diacyltrehalose.

Real time X-ray diffraction was used to examine the gel bilayer to disordered bilayer phase transition in fully hydrated dipalmitoyltrehalose. The L beta to L alpha phase transition was shown to proceed via a second-order thermodynamic process involving incommensurate mesophase bilayer repeat structures and the formation of an intermediate rectangular acyl chain packing subcell. This phenomenon has only been previously shown to occur for dihexadecylphosphatidylcholine (DHPC) and dipalmitoylphosphatidylcholine (DPPC) dihydrates undergoing stepwise (i.e., noncontinuous) temperature changes. It can thus be inferred that the presence of trehalose-trehalose intra-bilayer interactions is a sufficient condition to modify the acyl chain structural rearrangements within the bilayer as a function of temperature.

1,2-Dipalmitoylphosphatidylcholine↗

Structures and mechanisms of lipid phase transitions in nonaqueous media. Dipalmitoylphosphatidylethanolamine in fused salt.

The phase transitions for dipalmitoylphosphatidylethanolamine (DPPE) dispersed in water and in N-ethylammonium nitrate (EAN) were examined using differential scanning calorimetry and time-resolved x-ray diffraction. Subgel, pre-, and main-phase transitions were observed for DPPE in water, whereas only the pre- and main transitions were observed for DPPE in EAN. Hysteresis was observed for both dispersions upon cooling. In addition, the lamellar (L alpha) to hexagonal (H alpha) phase transition was observed for DPPE dispersed in EAN when using time-resolved x-ray diffraction but not when using calorimetry. This low enthalpy process occurred at 73-77 degrees C, which is significantly lower than that observed for DPPE in water. The presence of EAN stabilizes the existence of the H alpha phase in DPPE by its influence on the bilayer interfacial properties, primarily on the area per lipid head group.

Calorimetry, Differential Scanning↗

Cyanide- and carbon monoxide-resistant mutants of Vitreoscilla: altered cytochromes and respiratory properties.

Two respiratory mutants of the aerobic bacterium, Vitreoscilla, have been studied: a CO-resistant mutant that can grow in 50% CO-50% oxygen, and a cyanide-resistant mutant that can grow in 1 mM KCN. Wild-type cells are unable to grow under either condition. This report presents evidence that the resistance of the CO mutant is due to an altered membrane-bound cytochrome o [cytochrome o(m)], and that of the cyanide mutant is due to the presence of an increased amount of cytochrome d, which has a lower affinity for cyanide than cytochrome o(m). The evidence was obtained from spectral studies on the three types of intact cells as well as enzymatic and ligand-binding techniques on the cytoplasmic cytochromes o[cytochrome o(s)] and the respiring membrane vesicles isolated from these cells. Carbon monoxide difference spectra of intact cells revealed a 5-nm shift in an absorption maximum of a CO-binding pigment in the CO mutant relative to that of the wild type. The formation of oxygenated cytochrome o(s) and its conversion to the reduced form when the cells became anaerobic due to cellular respiration were inhibited when 1 mM KCN was added to a cell suspension of wild-type cells; the cyanide mutant cells showed resistance to cyanide in this experiment. Cytochrome o(s) purified from all three cell types had identical physical, electron transferring, and ligand binding properties within experimental error. Respiring membrane vesicles isolated from the two mutants showed more resistance to inhibition by cyanide and carbon monoxide than those from the wild type. Carbon monoxide difference spectra of these membrane vesicles revealed that there was a fivefold increase in the amount of cytochrome d in the cyanide mutant relative to the wild type. A CO absorption band of the membrane-bound cytochrome o in the CO mutant membrane vesicles showed a 5-nm shift relative to that of the wild type.

Carbon Monoxide↗

Ca2+ induced phase separations in phospholipid mixtures.

We have probed the character of the observed phase separation in mixtures of phosphatidylcholines (PC) and/or phosphatidylethanolamines (PE) in the presence of CaCl2 solutions. Egg yolk phosphatidylethanolamine (EYPE) and a 1:1 molar ratio of dioleoylphosphatidylcholine/dioleoylphosphatidylethanolamine (DOPC/DOPE) were observed to undergo phase separation in CaCl2 solutions, as was previously observed for egg yolk phosphatidylcholine (EYPC) (L.J. Lis et al. Biochemistry, 20 (1981) 1771-1777). However, the mixed chain lipid, palmitoyloleoyl-PC, yielded only a single phase in water or CaCl2 solution. We hypothesize that two lipid species are necessary for the observed phase separation to occur, but that the separation itself is not a function of the individual lipid species, but of the mixture.

Calcium↗

The influence of ion species on phosphatidylcholine bilayer structure and packing.

The effects of various monovalent cations and anions on the bilayer packing and structure of dipalmitoylphosphatidylcholine were studied using X-ray diffraction and differential scanning calorimetry. It was observed from the X-ray diffraction studies that monovalent salts, in general, have no effect on bilayer packing. The results of DSC studies on metal chloride systems are consistent with the interpretation that cations in general and Li+ in particular bind to DPPC bilayers. The effect of potassium salts on pre- and main-transition temperatures suggest that anions, such as Acetate-, also significantly bind to DPPC head groups.

Anions↗

The influence of oxygenated sterol compounds on dipalmitoylphosphatidylcholine bilayer structure and packing.

Fourier Transform Infra-red and Raman Spectroscopies indicate that 7 alpha-hydroxycholesterol and 7-ketocholesterol have a diminished capacity to condense (increase the packing order of) fluid-state dipalmitoylphosphatidylcholine (DPPC) acyl chains when compared with the effects of cholesterol and the other oxidized sterols studied. DPPC head groups were also more ordered by 7-ketocholesterol over the temperature range 10 degrees - 70 degrees C. Primary effects of these sterols appear to be associated with the hydrophillic regions of the DPPC bilayer, although packing arrangements with acyl chains are also involved. Phosphate and acyl chain ester groups were observed to possess a packing order which was invariant which indicates that these may be the target groups in the interaction with 7-ketocholesterol. A surprising observation was the synergistic amplification of the effects of 7-ketocholesterol by the presence of cholesterol in the DPPC bilayer.

1,2-Dipalmitoylphosphatidylcholine↗

Effect of culture conditions on diploid to giant-cell transformation in postimplantation mouse trophoblast.

Diploid extraembryonic ectoderm and ectoplacental cone from the 7.5-day mouse embryo were grown in vitro under a variety of culture conditions in an attempt to discover conditions which maintain trophoblast in a diploid state and prevent giant-cell formation. It was found that maintenance of tissue integrity was not enough to keep the tissues dividing and diploid, but that the presence of inner-cell-mass derivatives did have some effect. This effect was only apparent when trophoblast cells were entirely enclosed by embryonic tissues. Monolayers of embryonic or embryonal carcinoma cells did not prevent giant-cell formation. Diploid extraembryonic ectoderm and ectoplacental cone responded differently: ectoplacental cells eventually formed trophoblast giant cells even when enclosed by embryonic cells whereas extraembryonic ectoderm cells apparently could be maintained in a diploid condition. This and other differences in properties between extraembryonic ectoderm and ectoplacental cone are discussed with reference to a new model for the postimplantation trophoblast lineage in the mouse.

Animals↗