Showing 621 - 640 results of 27,049 for search '(( 50 ((ppm decrease) OR (a decrease)) ) OR ( 50 ((mg decrease) OR (we decrease)) ))', query time: 1.23s Refine Results
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    The primers related to FAM50A. by Longhai Li (4052044)

    Published 2025
    “…Knockdown of FAM50A decreased cell proliferation ability, the proportion of EdU positive cells, and the number of CRC cell colonies, whereas overexpressing FAM50A promoted proliferative phenotypes. …”
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    Aquaporin 2 Mutations in <i>Trypanosoma brucei gambiense</i> Field Isolates Correlate with Decreased Susceptibility to Pentamidine and Melarsoprol by Fabrice E. Graf (469055)

    Published 2013
    “…Here we describe two different kinds of <i>TbAQP2</i> mutations found in <i>T. b. gambiense</i> field isolates: simple loss of <i>TbAQP2</i>, or loss of wild-type <i>TbAQP2</i> allele combined with the formation of a novel type of <i>TbAQP2/3</i> chimera. …”
  8. 628

    <i>Myotis rufoniger</i> genome sequence and analyses: <i>M</i>. <i>rufoniger’s</i> genomic feature and the decreasing effective population size of <i>Myotis</i> bats by Youngjune Bhak (3511349)

    Published 2017
    “…<div><p><i>Myotis rufoniger</i> is a vesper bat in the genus <i>Myotis</i>. Here we report the whole genome sequence and analyses of the <i>M</i>. …”
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    Nanodomains and Their Temperature Dependence in a Phosphonium-Based Ionic Liquid: A Single-Molecule Tracking Study by Jemima Opare-Addo (14657955)

    Published 2024
    “…The elimination of the slow population and the presence of a single diffusing population in [P<sub>66614</sub>][Cl] as the temperature increases and the viscosity decreases is consistent with liquid–liquid phase separation (LLPS) as a mechanism of nanodomain formation. …”
  11. 631

    Nanodomains and Their Temperature Dependence in a Phosphonium-Based Ionic Liquid: A Single-Molecule Tracking Study by Jemima Opare-Addo (14657955)

    Published 2024
    “…The elimination of the slow population and the presence of a single diffusing population in [P<sub>66614</sub>][Cl] as the temperature increases and the viscosity decreases is consistent with liquid–liquid phase separation (LLPS) as a mechanism of nanodomain formation. …”
  12. 632

    Nanodomains and Their Temperature Dependence in a Phosphonium-Based Ionic Liquid: A Single-Molecule Tracking Study by Jemima Opare-Addo (14657955)

    Published 2024
    “…The elimination of the slow population and the presence of a single diffusing population in [P<sub>66614</sub>][Cl] as the temperature increases and the viscosity decreases is consistent with liquid–liquid phase separation (LLPS) as a mechanism of nanodomain formation. …”
  13. 633

    Nanodomains and Their Temperature Dependence in a Phosphonium-Based Ionic Liquid: A Single-Molecule Tracking Study by Jemima Opare-Addo (14657955)

    Published 2024
    “…The elimination of the slow population and the presence of a single diffusing population in [P<sub>66614</sub>][Cl] as the temperature increases and the viscosity decreases is consistent with liquid–liquid phase separation (LLPS) as a mechanism of nanodomain formation. …”
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    Interfacial Engineering with a Nanoparticle-Decorated Porous Carbon Structure on β″-Alumina Solid-State Electrolytes for Molten Sodium Batteries by Minyuan M. Li (12616823)

    Published 2022
    “…We present a novel anode interface modification on the β″-alumina solid-state electrolyte that improves the wetting behavior of molten sodium in battery applications. …”
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    Interfacial Engineering with a Nanoparticle-Decorated Porous Carbon Structure on β″-Alumina Solid-State Electrolytes for Molten Sodium Batteries by Minyuan M. Li (12616823)

    Published 2022
    “…We present a novel anode interface modification on the β″-alumina solid-state electrolyte that improves the wetting behavior of molten sodium in battery applications. …”
  17. 637

    Interfacial Engineering with a Nanoparticle-Decorated Porous Carbon Structure on β″-Alumina Solid-State Electrolytes for Molten Sodium Batteries by Minyuan M. Li (12616823)

    Published 2022
    “…We present a novel anode interface modification on the β″-alumina solid-state electrolyte that improves the wetting behavior of molten sodium in battery applications. …”
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