Showing 1 - 20 results of 14,495 for search '(((( ((i large) OR (via large)) decrease ) OR ( _ largest decrease ))) OR ( leaf water decreases ))', query time: 0.87s Refine Results
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    Image1_A Novel Plant Leaf Patch Absorbed With IL-33 Antibody Decreases Venous Neointimal hyperplasia.TIFF by Boao Xie (11621803)

    Published 2021
    “…There was a significantly thinner neointima in the plant patch absorbed with rapamycin (p = 0.0231) compared to the patch absorbed with distilled water. There was a significantly large number of IL-33 (p = 0.006) and IL-1β (p = 0.012) positive cells in the human SVG neointima compared to the human great saphenous vein. …”
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    Image2_A Novel Plant Leaf Patch Absorbed With IL-33 Antibody Decreases Venous Neointimal hyperplasia.TIFF by Boao Xie (11621803)

    Published 2021
    “…There was a significantly thinner neointima in the plant patch absorbed with rapamycin (p = 0.0231) compared to the patch absorbed with distilled water. There was a significantly large number of IL-33 (p = 0.006) and IL-1β (p = 0.012) positive cells in the human SVG neointima compared to the human great saphenous vein. …”
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    Large and Tunable Wavelength Blue Shifts in Luminescent Piezochromism of Cu(I) Complexes via a Guest Encapsulation Strategy by Wan-Tao Chen (330486)

    Published 2024
    “…In this work, a series of Cu­(I) complexes that display blue-shifted and enhanced luminescence under pressure are designed via a guest encapsulation strategy. …”
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    Large and Tunable Wavelength Blue Shifts in Luminescent Piezochromism of Cu(I) Complexes via a Guest Encapsulation Strategy by Wan-Tao Chen (330486)

    Published 2024
    “…In this work, a series of Cu­(I) complexes that display blue-shifted and enhanced luminescence under pressure are designed via a guest encapsulation strategy. …”
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    Large and Tunable Wavelength Blue Shifts in Luminescent Piezochromism of Cu(I) Complexes via a Guest Encapsulation Strategy by Wan-Tao Chen (330486)

    Published 2024
    “…In this work, a series of Cu­(I) complexes that display blue-shifted and enhanced luminescence under pressure are designed via a guest encapsulation strategy. …”
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    Large and Tunable Wavelength Blue Shifts in Luminescent Piezochromism of Cu(I) Complexes via a Guest Encapsulation Strategy by Wan-Tao Chen (330486)

    Published 2024
    “…In this work, a series of Cu­(I) complexes that display blue-shifted and enhanced luminescence under pressure are designed via a guest encapsulation strategy. …”
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    Large and Tunable Wavelength Blue Shifts in Luminescent Piezochromism of Cu(I) Complexes via a Guest Encapsulation Strategy by Wan-Tao Chen (330486)

    Published 2024
    “…In this work, a series of Cu­(I) complexes that display blue-shifted and enhanced luminescence under pressure are designed via a guest encapsulation strategy. …”
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    Large and Tunable Wavelength Blue Shifts in Luminescent Piezochromism of Cu(I) Complexes via a Guest Encapsulation Strategy by Wan-Tao Chen (330486)

    Published 2024
    “…In this work, a series of Cu­(I) complexes that display blue-shifted and enhanced luminescence under pressure are designed via a guest encapsulation strategy. …”
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    Supplementary data: In vitro amplification of whole large plasmids via transposon-mediated oriC insertion by Masayuki Su'estugu (11359558)

    Published 2021
    “…</b> Purified pTT8 plasmid or the amplification product of the pTT8 plasmid generated by Tn-RCR were incubated at 37ºC for 3 h with (cut) or without (no cut) <i>Kpn</i>I and <i>Nhe</i>I. The incubated products were then analyzed by 1% agarose-gel electrophoresis and SYBR Green staining. …”
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    Norm ISWSVR: A Data Integration and Normalization Approach for Large-Scale Metabolomics by Xian Ding (421647)

    Published 2022
    “…More importantly, Norm ISWSVR also allows a low frequency of QCs, which could significantly decrease the burden of a large-scale experiment. Correspondingly, Norm ISWSVR favorably improves the data quality of large-scale metabolomics data.…”
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    Image_2_Role of Hydraulic Signal and ABA in Decrease of Leaf Stomatal and Mesophyll Conductance in Soil Drought-Stressed Tomato.JPEG by Shuang Li (146392)

    Published 2021
    “…Reductions of g<sub>s</sub> and g<sub>m</sub> induced a 68–78% decline of A<sub>n</sub> under drought conditions. While soil water potential (Ψ<sub>soil</sub>) was over −1.01 MPa, g<sub>s</sub> reduced as leaf water potential (Ψ<sub>leaf</sub>) decreased, but ABA and g<sub>m</sub> kept unchanged, which indicating g<sub>s</sub> was more sensitive to drought than g<sub>m</sub>. …”
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    Image_2_Role of Hydraulic Signal and ABA in Decrease of Leaf Stomatal and Mesophyll Conductance in Soil Drought-Stressed Tomato.JPEG by Shuang Li (146392)

    Published 2021
    “…Reductions of g<sub>s</sub> and g<sub>m</sub> induced a 68–78% decline of A<sub>n</sub> under drought conditions. While soil water potential (Ψ<sub>soil</sub>) was over −1.01 MPa, g<sub>s</sub> reduced as leaf water potential (Ψ<sub>leaf</sub>) decreased, but ABA and g<sub>m</sub> kept unchanged, which indicating g<sub>s</sub> was more sensitive to drought than g<sub>m</sub>. …”
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    Image_1_Role of Hydraulic Signal and ABA in Decrease of Leaf Stomatal and Mesophyll Conductance in Soil Drought-Stressed Tomato.JPEG by Shuang Li (146392)

    Published 2021
    “…Reductions of g<sub>s</sub> and g<sub>m</sub> induced a 68–78% decline of A<sub>n</sub> under drought conditions. While soil water potential (Ψ<sub>soil</sub>) was over −1.01 MPa, g<sub>s</sub> reduced as leaf water potential (Ψ<sub>leaf</sub>) decreased, but ABA and g<sub>m</sub> kept unchanged, which indicating g<sub>s</sub> was more sensitive to drought than g<sub>m</sub>. …”
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    Image_1_Role of Hydraulic Signal and ABA in Decrease of Leaf Stomatal and Mesophyll Conductance in Soil Drought-Stressed Tomato.JPEG by Shuang Li (146392)

    Published 2021
    “…Reductions of g<sub>s</sub> and g<sub>m</sub> induced a 68–78% decline of A<sub>n</sub> under drought conditions. While soil water potential (Ψ<sub>soil</sub>) was over −1.01 MPa, g<sub>s</sub> reduced as leaf water potential (Ψ<sub>leaf</sub>) decreased, but ABA and g<sub>m</sub> kept unchanged, which indicating g<sub>s</sub> was more sensitive to drought than g<sub>m</sub>. …”