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551.
The Escherichia coli cytoplasmic membrane protein, p12, stimulates the protein translocation activity reconstituted with SecY, SecE and SecA. The gene encoding p12, which is located at 69 min on the E. coli chromosome, was deleted to examine the role of p12 in protein translocation in vivo. The deletion strain exhibited cold-sensitive growth. Pulse-chase experiments revealed that precursors of outer membrane protein A, maltose binding protein and beta-lactamase accumulated at 20 degrees C but not at 37 degrees C. The deletion strain harboring a plasmid which carries the gene encoding p12 under the control of the araBAD promoter was able to grow in the cold when p12 was expressed with the addition of arabinose. Furthermore, the accumulated precursors were rapidly processed to the mature forms upon the expression of p12. Immunoblot analysis revealed the steady-state accumulation of precursor proteins at 20 degrees C, whereas the accumulation was only marginal at 37 degrees C, indicating that the function of p12 is more critical at 20 degrees C than at 37 degrees C. Finally, proteoliposomes were reconstituted with or without p12 to demonstrate that the stimulation of the activity by p12 increases with a decrease in temperature. From these results, we concluded that p12 is directly involved in protein translocation in E. coli and plays a critical role in the cold. We propose the more systematic name, SecG, for p12.  相似文献   
552.
Potassium Lithium Niobate Films Derived from Aqueous Precursor Solution   总被引:2,自引:0,他引:2  
Potassium lithium niobate (KLN) films, which were prepared using an aqueous precursor solution, were characterized in terms of crystallinity, morphology, and electrical properties; 1.0 μm thick KLN films free from cracks and pores could be prepared on MgO(100), Pt(100)/MgO(100), and Pt(111)/Ti/SiO2/Si substrates by multiple coating and heating at 700°C. The films were composed of compact grains and had sintered textures. The films crystallized with (310) and (540) preferred orientations on MgO(100) and Pt(100)/MgO(100) substrates. The KLN film prepared on Pt(100)/MgO(100) substrate had ɛ'= 136 and tan δ= 0.026 at 1 kHz.  相似文献   
553.
A laser-heating zone-drawing and zone-annealing method using a continuous-wave carbon dioxide laser was applied to poly(ethylene terephthalate) (PET) fiber to improve its mechanical properties. The as-spun fiber was zone-drawn under a applied tension (σa) of 4.44 MPa at a laser power density (PD) of 6.08 W cm−2, and then the laser-heated zone-drawn fiber was zone-annealed. The laser-heating zone-annealing was carried out in three steps: the first annealing was carried out under σa = 139 MPa at 4.83 W cm−2; the second annealing was carried out under σa = 283 MPa at 4.83 W cm−2, and the third annealing was carried out under σa = 432 MPa at 3.45 W cm−2. The surface temperature distribution of the fiber irradiated with the CO2 laser was measured by using an infrared thermographic camera equipped with a magnifying lens. The relation between the laser power and the surface temperature of the fiber became clear in the laser-heating zone-drawing and the laser-heating zone-annealing. The fiber obtained finally had a birefringence of 0.239, a degree of crystallinity of 55%, a tensile modulus of 19.8 GPa, and a storage modulus of 25.7 GPa at 25°C. In FTIR measurements, a trans conformation increased with the processing, but a gauche one decreased. The laser-heating zone-drawing and zone-annealing method was found to be effective in producing the PET fiber with high modulus and high strength. © 2001 John Wiley & Sons, Inc. J Appl Polym Sci 82: 2775–2783, 2001  相似文献   
554.
The effect of pH and temperature on hydrogen production from an aqueous alkaline solution with sulfide (HS and S2−) as a reducing agent of water has been studied at pH 9–13 and at temperatures between 230 and 320 °C, under corresponding saturated vapor pressure, in a Hastelloy C-22 reactor. A reaction time of 60 min at all pH values produced a significant amount of hydrogen at ≥280 °C and corresponding saturated vapor pressures. Hydrogen production increased with both pH and temperature, but was more significant with temperature. Sulfide consumption also increased with temperature, but its pH dependence was generally insignificant. The ratio of hydrogen produced to sulfide consumed (mol/mol) was 0.6–3.4, and the amount and/or oxidation state of sulfur product increased with pH and temperature. Results of this study confirm that hydrogen is produced from water reduction by sulfide under the experimental conditions, where the predominant reaction was pH- and temperature-dependent. Results of this study also suggest that optimum hydrogen production conditions via a sulfur redox cycle, based on the sulfide regeneration process, is optimized at 300 °C and pH 13, and at 320 °C and pH 11.  相似文献   
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