Showing 1,561 - 1,580 results of 103,671 for search '(( a step decrease ) OR ( 5 ((we decrease) OR (((teer decrease) OR (a decrease)))) ))', query time: 1.78s Refine Results
  1. 1561

    DataSheet_1_Inherited Tolerance in Cattle to the Apicomplexan Protozoan Theileria parva is Associated with Decreased Proliferation of Parasite-Infected Lymphocytes.docx by Perle Latre de Late (11497924)

    Published 2021
    “…We reveal here that first- and second-generation descendants of a single Bos indicus bull survived severe challenge with T. parva, (overall survival rate 57.3% compared to 8.7% for unrelated animals) in a series of five field studies. …”
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    Influence of Thiolate Ligands on Reductive N−O Bond Activation. Probing the O<sub>2</sub><sup>−</sup> Binding Site of a Biomimetic Superoxide Reductase Analogue and Examining the P... by Gloria Villar-Acevedo (2232583)

    Published 2011
    “…Like NO-bound <i>trans</i>-cysteinate-ligated SOR (SOR-NO), the rhombic <i>S</i> = 3/2 EPR signal of NO-bound <i>cis</i>-thiolate-ligated [Fe(S<sup>Me<sub>2</sub></sup>N<sub>4</sub>(tren)(NO)]<sup>+</sup> (<b>2</b>; <i>g</i> = 4.44, 3.54, 1.97), the isotopically sensitive ν<sub>NO</sub>(ν<sub><sup>15</sup>NO</sub>) stretching frequency (1685(1640) cm<sup>−1</sup>), and the 0.05 Å decrease in Fe−S bond length are shown to be consistent with <i>the oxidative addition of NO to Fe(II)</i> to afford an Fe(III)−NO<sup>−</sup> {FeNO}<sup>7</sup> species containing high-spin (<i>S</i> = 5/2) Fe(III) antiferromagnetically coupled to NO<sup>−</sup> (<i>S</i> = 1). …”
  6. 1566

    Influence of Thiolate Ligands on Reductive N−O Bond Activation. Probing the O<sub>2</sub><sup>−</sup> Binding Site of a Biomimetic Superoxide Reductase Analogue and Examining the P... by Gloria Villar-Acevedo (2232583)

    Published 2011
    “…Like NO-bound <i>trans</i>-cysteinate-ligated SOR (SOR-NO), the rhombic <i>S</i> = 3/2 EPR signal of NO-bound <i>cis</i>-thiolate-ligated [Fe(S<sup>Me<sub>2</sub></sup>N<sub>4</sub>(tren)(NO)]<sup>+</sup> (<b>2</b>; <i>g</i> = 4.44, 3.54, 1.97), the isotopically sensitive ν<sub>NO</sub>(ν<sub><sup>15</sup>NO</sub>) stretching frequency (1685(1640) cm<sup>−1</sup>), and the 0.05 Å decrease in Fe−S bond length are shown to be consistent with <i>the oxidative addition of NO to Fe(II)</i> to afford an Fe(III)−NO<sup>−</sup> {FeNO}<sup>7</sup> species containing high-spin (<i>S</i> = 5/2) Fe(III) antiferromagnetically coupled to NO<sup>−</sup> (<i>S</i> = 1). …”
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  9. 1569

    Comparison of the three attention steps. by Enming Zhao (3957782)

    Published 2024
    “…Through comparative evaluations with heatmap and regression-based models such as HRNet, HigherHRNet, DEKR, DEKRv2, and YOLOv5-pose, our method improves AP<sub>0.5</sub> by at least 0.4%, reduces the number of parameters by at least 0.4%, and decreases the amount of computation by at least 1.0 GFLOPs, achieving a harmonious balance between accuracy and efficiency. …”
  10. 1570

    Purified serum IgG from SPMS patients decreased the amount of claudin-5 protein, and IgG from all clinical subtypes of MS patients increased the amount of VCAM-1 protein in TY09 ce... by Fumitaka Shimizu (545145)

    Published 2014
    “…(G) The amount of VCAM-1 protein in the TY09 cells was significantly increased after exposure to the purified IgG fraction from patinets with all clinical subtypes of MS, whereas it was not changed by the IgG from healthy controls, as determined by a Western blot analysis. (H) The TEER value of the TY09 cells was significantly decreased after exposure to the purified IgG fraction from SPMS patients, although it was not changed by incubation with the purified serum IgG fractions from RRMS-R or RRMS-S patients, or from healthy controls (mean ± SEM, SPMS n = 6, RRMS-R n = 4, RRMS-S n = 6, Normal n = 5). …”
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    Alternate Wetting and Drying Limits Arsenic in Porewater and Rice Grain under Severe Future Climate Conditions by Aria H. Duncan (22445853)

    Published 2025
    “…Grain total As concentrations decreased by 1.5× with AWD under a 33 °C climate and by 1.3× under a 38 °C climate. …”
  14. 1574

    Alternate Wetting and Drying Limits Arsenic in Porewater and Rice Grain under Severe Future Climate Conditions by Aria H. Duncan (22445853)

    Published 2025
    “…Grain total As concentrations decreased by 1.5× with AWD under a 33 °C climate and by 1.3× under a 38 °C climate. …”
  15. 1575

    Alternate Wetting and Drying Limits Arsenic in Porewater and Rice Grain under Severe Future Climate Conditions by Aria H. Duncan (22445853)

    Published 2025
    “…Grain total As concentrations decreased by 1.5× with AWD under a 33 °C climate and by 1.3× under a 38 °C climate. …”
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    Alternate Wetting and Drying Limits Arsenic in Porewater and Rice Grain under Severe Future Climate Conditions by Aria H. Duncan (22445853)

    Published 2025
    “…Grain total As concentrations decreased by 1.5× with AWD under a 33 °C climate and by 1.3× under a 38 °C climate. …”
  17. 1577

    Alternate Wetting and Drying Limits Arsenic in Porewater and Rice Grain under Severe Future Climate Conditions by Aria H. Duncan (22445853)

    Published 2025
    “…Grain total As concentrations decreased by 1.5× with AWD under a 33 °C climate and by 1.3× under a 38 °C climate. …”
  18. 1578

    Alternate Wetting and Drying Limits Arsenic in Porewater and Rice Grain under Severe Future Climate Conditions by Aria H. Duncan (22445853)

    Published 2025
    “…Grain total As concentrations decreased by 1.5× with AWD under a 33 °C climate and by 1.3× under a 38 °C climate. …”
  19. 1579

    Alternate Wetting and Drying Limits Arsenic in Porewater and Rice Grain under Severe Future Climate Conditions by Aria H. Duncan (22445853)

    Published 2025
    “…Grain total As concentrations decreased by 1.5× with AWD under a 33 °C climate and by 1.3× under a 38 °C climate. …”
  20. 1580

    Alternate Wetting and Drying Limits Arsenic in Porewater and Rice Grain under Severe Future Climate Conditions by Aria H. Duncan (22445853)

    Published 2025
    “…Grain total As concentrations decreased by 1.5× with AWD under a 33 °C climate and by 1.3× under a 38 °C climate. …”