Showing 541 - 560 results of 85,063 for search '"liquidation"', query time: 0.23s Refine Results
  1. 541
  2. 542
  3. 543
  4. 544
  5. 545
  6. 546
  7. 547
  8. 548
  9. 549
  10. 550
  11. 551

    Analytical, Preparative, and Industrial-Scale Separation of Substances by Methods of Countercurrent Liquid-Liquid Chromatography by Artak A. Kostanyan, Andrey A. Voshkin, Vera V. Belova

    Published 2020-12-01
    “…Countercurrent liquid-liquid chromatographic techniques (CCC), similar to solvent extraction, are based on the different distribution of compounds between two immiscible liquids and have been most widely used in natural product separations. …”
    Get full text
    Article
  12. 552
  13. 553
  14. 554
  15. 555

    NOP53 undergoes liquid-liquid phase separation and promotes tumor radio-resistance by Jie Shi, Si-Ying Chen, Xiao-Ting Shen, Xin-Ke Yin, Wan-Wen Zhao, Shao-Mei Bai, Wei-Xing Feng, Li-Li Feng, Caolitao Qin, Jian Zheng, Yun-Long Wang, Xin-Juan Fan

    Published 2022-10-01
    “…We recently characterized liquid-liquid phase separation (LLPS) as an essential mechanism of DDR, and identified several key DDR factors as potential LLPS proteins, including nucleolar protein NOP53. …”
    Get full text
    Article
  16. 556

    Chromatin LiquidLiquid Phase Separation (LLPS) Is Regulated by Ionic Conditions and Fiber Length by Qinming Chen, Lei Zhao, Aghil Soman, Anastasia Yu Arkhipova, Jindi Li, Hao Li, Yinglu Chen, Xiangyan Shi, Lars Nordenskiöld

    Published 2022-10-01
    “…Several recent studies suggested that chromatin undergoes liquidliquid phase separation (LLPS) in vitro and also in vivo; yet, controversial conclusions about the nature of chromatin LLPS were also observed from the in vitro studies. …”
    Get full text
    Article
  17. 557
  18. 558
  19. 559
  20. 560

    “Modified” LiquidLiquid Displacement Porometry and Its Applications in Pd-Based Composite Membranes by Lei Zheng, Hui Li, Haijun Yu, Guodong Kang, Tianying Xu, Jiafeng Yu, Xinzhong Li, Hengyong Xu

    Published 2018-06-01
    “…Here we introduce a novel method by modifying conventional liquid–liquid displacement porometry. When the pore tunnels are filled with Liquid B and the outer surface is occupied by Liquid A, the reopening of the pore mouth depends on the pressure of Liquid B and the interfacial tension at the position of the pore mouth, from which the pore mouth size can be determined according to the Young–Laplace equation. …”
    Get full text
    Article