Showing 5,581 - 5,600 results of 30,730 for search '(( 50 ((we decrease) OR (((mean decrease) OR (a decrease)))) ) OR ( 2 step decrease ))', query time: 0.66s Refine Results
  1. 5581

    Figures. by Yanyu Cui (19173181)

    Published 2025
    “…As temperature rises from 0°C to 50°C, liquid film thickness decreases, with a reduction of 14.6% for low-blending fuel and 52.8% for high-blending fuel.…”
  2. 5582

    Summary of solver settings. by Yanyu Cui (19173181)

    Published 2025
    “…As temperature rises from 0°C to 50°C, liquid film thickness decreases, with a reduction of 14.6% for low-blending fuel and 52.8% for high-blending fuel.…”
  3. 5583

    Simulation parameters. by Yanyu Cui (19173181)

    Published 2025
    “…As temperature rises from 0°C to 50°C, liquid film thickness decreases, with a reduction of 14.6% for low-blending fuel and 52.8% for high-blending fuel.…”
  4. 5584

    Geometric parameters of the centrifugal nozzle. by Yanyu Cui (19173181)

    Published 2025
    “…As temperature rises from 0°C to 50°C, liquid film thickness decreases, with a reduction of 14.6% for low-blending fuel and 52.8% for high-blending fuel.…”
  5. 5585

    Data. by Yanyu Cui (19173181)

    Published 2025
    “…As temperature rises from 0°C to 50°C, liquid film thickness decreases, with a reduction of 14.6% for low-blending fuel and 52.8% for high-blending fuel.…”
  6. 5586

    Cross-sectional velocity distribution contour. by Yanyu Cui (19173181)

    Published 2025
    “…As temperature rises from 0°C to 50°C, liquid film thickness decreases, with a reduction of 14.6% for low-blending fuel and 52.8% for high-blending fuel.…”
  7. 5587

    Mesh generation details. by Yanyu Cui (19173181)

    Published 2025
    “…As temperature rises from 0°C to 50°C, liquid film thickness decreases, with a reduction of 14.6% for low-blending fuel and 52.8% for high-blending fuel.…”
  8. 5588
  9. 5589
  10. 5590
  11. 5591
  12. 5592
  13. 5593
  14. 5594

    Piperhancins A and B, Two Pairs of Antineuroinflammatory Cycloneolignane Enantiomers from <i>Piper hancei</i> by Fan Yang (1413)

    Published 2021
    “…Among all of the isolates, compounds (+)-<b>1</b>, (−)-<b>1</b>, (+)-<b>2</b>, (−)-<b>2</b>, and (+)-<b>3</b> could significantly inhibit the production of nitric oxide secreted by lipopolysaccharide (LPS)-induced neuroinflammation in BV-2 microglial cells, with IC<sub>50</sub> values of 1.1–26.3 μM. In addition, compound (−)-<b>1</b> could decrease the mRNA levels of iNOS, IL-6, and TNF-α induced by LPS in BV-2 microglial cells.…”
  15. 5595
  16. 5596

    Expression and distribution of p-JNK and JNK proteins in the P7 rat brain after HI as detected by Western blot analysis and fluorescence immunolabeling. by Deyuan Li (769599)

    Published 2015
    “…Total JNK protein was not obviously changed at different time points compared with sham controls (A). However, p-JNK protein levels transiently decreased at 0.5 h, increased at 6 and 24 h, peaked at 48 h, and lasted until 72 h (A). …”
  17. 5597
  18. 5598

    HI promotes FOXO3a dephosphorylation, which induces FOXO3a translocation into the nucleus and upregulates the expression of Bim and CC3. by Deyuan Li (769599)

    Published 2015
    “…However, p-FOXO3a levels decreased from 0.5 to 48 h and returned to baseline at 72 h after HI (A). …”
  19. 5599
  20. 5600

    Enzyme Active Site Loop Revealed as a Gatekeeper for Cofactor Flip by Targeted Molecular Dynamics Simulations and FRET-Based Kinetics by Sophie Rahuel-Clermont (6235601)

    Published 2019
    “…To monitor cofactor movements within the active site, we used an intrinsic fluorescence resonance energy transfer signal between Trp177 and the reduced nicotinamide moiety to kinetically track the flip during the catalytic cycle of retinal dehydrogenase 2 (ALDH1A2). Decreasing loop flexibility by substituting Ala for Gly271 drastically reduced the rate constant associated with this movement that became rate-limiting. …”