Showing 221 - 240 results of 593 for search '(( significant decrease decrease ) OR ( significant ((a decrease) OR (fold decrease)) ))~', query time: 0.67s Refine Results
  1. 221

    Livestock–Crop–Mushroom (LCM) Circular System: An Eco-Friendly Approach for Enhancing Plant Performance and Mitigating Microbiological Risks by Dong Liu (115204)

    Published 2025
    “…The’StM’ had a three-fold stronger inhibitory effect on oat rhizosphere soil pathogens than’St’. …”
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    Vps34 supports Treg maintenance in lymphoid and non-lymphoid tissues. by Erienne G. Norton (9612079)

    Published 2025
    “…Two-tailed Student <i>t</i> test (<b>A</b>–<b>D</b>, <b>F</b>–<b>I</b>) or Benjamini–Hochberg test (<b>E</b>); NS, not significant. …”
  12. 232

    Chromatin accessibility analysis of perinatal Vps34-deficient Tregs. by Erienne G. Norton (9612079)

    Published 2025
    “…Relative (normalized to average control in each experiment) fold-change comparisons between genotypes in each cell type are shown in bold (<b>A</b>, <b>B</b>). …”
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    Enhanced Cell Proliferation and Maturation Using Carboxylated Bacterial Nanocellulose Scaffolds for 3D Cell Culture by Elizabeth Mavil-Guerrero (20833989)

    Published 2025
    “…The surface properties and fibrillar structure of BNC–COOH facilitated the formation of hydrogels with significantly enhanced water uptake (1.4-fold) and adhesion force (2.3-fold) compared to BNC. …”
  18. 238

    Enhanced Cell Proliferation and Maturation Using Carboxylated Bacterial Nanocellulose Scaffolds for 3D Cell Culture by Elizabeth Mavil-Guerrero (20833989)

    Published 2025
    “…The surface properties and fibrillar structure of BNC–COOH facilitated the formation of hydrogels with significantly enhanced water uptake (1.4-fold) and adhesion force (2.3-fold) compared to BNC. …”
  19. 239

    Enhanced Cell Proliferation and Maturation Using Carboxylated Bacterial Nanocellulose Scaffolds for 3D Cell Culture by Elizabeth Mavil-Guerrero (20833989)

    Published 2025
    “…The surface properties and fibrillar structure of BNC–COOH facilitated the formation of hydrogels with significantly enhanced water uptake (1.4-fold) and adhesion force (2.3-fold) compared to BNC. …”
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