Showing 4,021 - 4,040 results of 29,089 for search '(( 5 ((ng decrease) OR (nn decrease)) ) OR ( 50 ((we decrease) OR (a decrease)) ))', query time: 0.98s Refine Results
  1. 4021

    image2_Myostatin Promotes Osteoclastogenesis by Regulating Ccdc50 Gene Expression and RANKL-Induced NF-κB and MAPK Pathways.tif by Xin Zhi (1829224)

    Published 2021
    “…Specifically, myostatin increased the phosphorylation of Smad2, which led to the activation of NF-κB and MAPK pathways to activate osteoclastogenesis. Ccdc50 was identified as a gene whose expression was highly decreased in osteoclastogenesis upon myostatin treatment, and it could inhibit the function of myostatin in osteoclastogenesis by blocking NF-κB and MAPKs pathways. …”
  2. 4022

    image2_Myostatin Promotes Osteoclastogenesis by Regulating Ccdc50 Gene Expression and RANKL-Induced NF-κB and MAPK Pathways.tif by Xin Zhi (1829224)

    Published 2020
    “…Specifically, myostatin increased the phosphorylation of Smad2, which led to the activation of NF-κB and MAPK pathways to activate osteoclastogenesis. Ccdc50 was identified as a gene whose expression was highly decreased in osteoclastogenesis upon myostatin treatment, and it could inhibit the function of myostatin in osteoclastogenesis by blocking NF-κB and MAPKs pathways. …”
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  14. 4034

    Tunable Actuation of Humidity-Driven Artificial Muscles via Graphene Nanofillers by Sevketcan Sarikaya (10317493)

    Published 2022
    “…Analysis of the experimental data shows that adding only 0.5 wt % GNP increases the actuation by 50% and provides a maximum actuation stroke of 24% and work capacity of 230 J/kg. …”
  15. 4035

    Tunable Actuation of Humidity-Driven Artificial Muscles via Graphene Nanofillers by Sevketcan Sarikaya (10317493)

    Published 2022
    “…Analysis of the experimental data shows that adding only 0.5 wt % GNP increases the actuation by 50% and provides a maximum actuation stroke of 24% and work capacity of 230 J/kg. …”
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  19. 4039

    Compromised angiogenesis and vascular Integrity in impaired diabetic wound healing by Uzoagu A. Okonkwo (8754933)

    Published 2020
    “…Specifically, the expression of VEGF-A, Sprouty2, PEDF, LRP6, Thrombospondin 1, CXCL10, CXCR3, PDGFR-β, HB-EGF, EGFR, TGF-β1, Semaphorin3a, Neuropilin 1, angiopoietin 2, NG2, and RGS5 were down-regulated in diabetic wounds. …”
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