Showing 21 - 40 results of 13,578 for search '(( significant slow release ) OR ( significantly ((restored decrease) OR (reported decrease)) ))', query time: 0.70s Refine Results
  1. 21

    Microcapsules with Distinct Dual-Layer Shells and Their Applications for the Encapsulation, Preservation, and Slow Release of Hydrophilic Small Molecules by Yuandu Hu (1654888)

    Published 2019
    “…The slow release capability can be significantly enhanced (6 weeks or longer) by increasing the thicknesses of the hydrogel shell and fluorinated oil layer.…”
  2. 22

    Microcapsules with Distinct Dual-Layer Shells and Their Applications for the Encapsulation, Preservation, and Slow Release of Hydrophilic Small Molecules by Yuandu Hu (1654888)

    Published 2019
    “…The slow release capability can be significantly enhanced (6 weeks or longer) by increasing the thicknesses of the hydrogel shell and fluorinated oil layer.…”
  3. 23

    Microcapsules with Distinct Dual-Layer Shells and Their Applications for the Encapsulation, Preservation, and Slow Release of Hydrophilic Small Molecules by Yuandu Hu (1654888)

    Published 2019
    “…The slow release capability can be significantly enhanced (6 weeks or longer) by increasing the thicknesses of the hydrogel shell and fluorinated oil layer.…”
  4. 24

    Microcapsules with Distinct Dual-Layer Shells and Their Applications for the Encapsulation, Preservation, and Slow Release of Hydrophilic Small Molecules by Yuandu Hu (1654888)

    Published 2019
    “…The slow release capability can be significantly enhanced (6 weeks or longer) by increasing the thicknesses of the hydrogel shell and fluorinated oil layer.…”
  5. 25

    Microcapsules with Distinct Dual-Layer Shells and Their Applications for the Encapsulation, Preservation, and Slow Release of Hydrophilic Small Molecules by Yuandu Hu (1654888)

    Published 2019
    “…The slow release capability can be significantly enhanced (6 weeks or longer) by increasing the thicknesses of the hydrogel shell and fluorinated oil layer.…”
  6. 26

    Microcapsules with Distinct Dual-Layer Shells and Their Applications for the Encapsulation, Preservation, and Slow Release of Hydrophilic Small Molecules by Yuandu Hu (1654888)

    Published 2019
    “…The slow release capability can be significantly enhanced (6 weeks or longer) by increasing the thicknesses of the hydrogel shell and fluorinated oil layer.…”
  7. 27

    Microcapsules with Distinct Dual-Layer Shells and Their Applications for the Encapsulation, Preservation, and Slow Release of Hydrophilic Small Molecules by Yuandu Hu (1654888)

    Published 2019
    “…The slow release capability can be significantly enhanced (6 weeks or longer) by increasing the thicknesses of the hydrogel shell and fluorinated oil layer.…”
  8. 28

    Microcapsules with Distinct Dual-Layer Shells and Their Applications for the Encapsulation, Preservation, and Slow Release of Hydrophilic Small Molecules by Yuandu Hu (1654888)

    Published 2019
    “…The slow release capability can be significantly enhanced (6 weeks or longer) by increasing the thicknesses of the hydrogel shell and fluorinated oil layer.…”
  9. 29

    Microcapsules with Distinct Dual-Layer Shells and Their Applications for the Encapsulation, Preservation, and Slow Release of Hydrophilic Small Molecules by Yuandu Hu (1654888)

    Published 2019
    “…The slow release capability can be significantly enhanced (6 weeks or longer) by increasing the thicknesses of the hydrogel shell and fluorinated oil layer.…”
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    Parvalbumin-positive interneurons (PV-INs) in perilesional tissue respond to optogenetic stimulation and are involved in voluntary movement, but show a decreased firing rate. by Livia Vignozzi (22430567)

    Published 2025
    “…<b>E</b>, Quantification of the average firing rate of the recorded PV-INs in response to optogenetic stimulation. A significant decrease in firing activity is evident in stroke animals (Two-tailed <i>T</i> Test *** <i><i>P</i></i> < 0.001). …”
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    Supplementary Material for: Activation of a Classic Hunger Circuit Slows Luteinizing Hormone Pulsatility by Coutinho E.A. (8085656)

    Published 2019
    “…In addition, electrophysiological studies in ex vivo brain slices were employed to ascertain the functional impact of activating NPY/AgRP neurons on gonadotropin-releasing hormone (GnRH) neurons. <b><i>Results:</i></b> Selective activation of NPY/AgRP neurons significantly decreased post-castration LH secretion. …”
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