Showing 38,381 - 38,400 results of 100,930 for search '(( e nn decrease ) OR ( 5 ((step decrease) OR (((we decrease) OR (a decrease)))) ))', query time: 1.71s Refine Results
  1. 38381

    Table1_LeishIF3d is a non-canonical cap-binding protein in Leishmania.XLSX by Priyanka Bose (7110071)

    Published 2023
    “…<p>Translation of most cellular mRNAs in eukaryotes proceeds through a cap-dependent pathway, whereby the cap-binding complex, eIF4F, anchors the pre-initiation complex at the 5′ end of mRNAs driving translation initiation. …”
  2. 38382

    Table2_LeishIF3d is a non-canonical cap-binding protein in Leishmania.XLSX by Priyanka Bose (7110071)

    Published 2023
    “…<p>Translation of most cellular mRNAs in eukaryotes proceeds through a cap-dependent pathway, whereby the cap-binding complex, eIF4F, anchors the pre-initiation complex at the 5′ end of mRNAs driving translation initiation. …”
  3. 38383

    Table3_LeishIF3d is a non-canonical cap-binding protein in Leishmania.XLSX by Priyanka Bose (7110071)

    Published 2023
    “…<p>Translation of most cellular mRNAs in eukaryotes proceeds through a cap-dependent pathway, whereby the cap-binding complex, eIF4F, anchors the pre-initiation complex at the 5′ end of mRNAs driving translation initiation. …”
  4. 38384

    Image7_LeishIF3d is a non-canonical cap-binding protein in Leishmania.TIF by Priyanka Bose (7110071)

    Published 2023
    “…<p>Translation of most cellular mRNAs in eukaryotes proceeds through a cap-dependent pathway, whereby the cap-binding complex, eIF4F, anchors the pre-initiation complex at the 5′ end of mRNAs driving translation initiation. …”
  5. 38385
  6. 38386

    Image2_LeishIF3d is a non-canonical cap-binding protein in Leishmania.TIF by Priyanka Bose (7110071)

    Published 2023
    “…<p>Translation of most cellular mRNAs in eukaryotes proceeds through a cap-dependent pathway, whereby the cap-binding complex, eIF4F, anchors the pre-initiation complex at the 5′ end of mRNAs driving translation initiation. …”
  7. 38387
  8. 38388

    Image6_LeishIF3d is a non-canonical cap-binding protein in Leishmania.TIF by Priyanka Bose (7110071)

    Published 2023
    “…<p>Translation of most cellular mRNAs in eukaryotes proceeds through a cap-dependent pathway, whereby the cap-binding complex, eIF4F, anchors the pre-initiation complex at the 5′ end of mRNAs driving translation initiation. …”
  9. 38389

    Image3_LeishIF3d is a non-canonical cap-binding protein in Leishmania.TIF by Priyanka Bose (7110071)

    Published 2023
    “…<p>Translation of most cellular mRNAs in eukaryotes proceeds through a cap-dependent pathway, whereby the cap-binding complex, eIF4F, anchors the pre-initiation complex at the 5′ end of mRNAs driving translation initiation. …”
  10. 38390

    Presentation1_LeishIF3d is a non-canonical cap-binding protein in Leishmania.PPTX by Priyanka Bose (7110071)

    Published 2023
    “…<p>Translation of most cellular mRNAs in eukaryotes proceeds through a cap-dependent pathway, whereby the cap-binding complex, eIF4F, anchors the pre-initiation complex at the 5′ end of mRNAs driving translation initiation. …”
  11. 38391

    Image4_LeishIF3d is a non-canonical cap-binding protein in Leishmania.TIF by Priyanka Bose (7110071)

    Published 2023
    “…<p>Translation of most cellular mRNAs in eukaryotes proceeds through a cap-dependent pathway, whereby the cap-binding complex, eIF4F, anchors the pre-initiation complex at the 5′ end of mRNAs driving translation initiation. …”
  12. 38392

    Data_Sheet_1_Brain cortical alterations in COVID-19 patients with neurological symptoms.docx by Gretel Sanabria-Diaz (436165)

    Published 2022
    “…The purpose of this study was to assess the cortical gray matter volume, the cortical thickness, and the cortical surface area in a group of SARS-CoV-2 infected patients with neurological symptoms compared to healthy control subjects. …”
  13. 38393

    Cragg-Donald F statistics for instrument sets. by Daniel Hui (4418287)

    Published 2024
    “…In univariable analysis, we confirmed that a one standard deviation decrease in height (~6.5 cm) was associated with a 12.0% increase in the risk of CAD, consistent with previous reports. …”
  14. 38394

    Analysis of a novel set of experimental data using the model shown on Figure 6. by Arach Goldar (52402)

    Published 2013
    “…(B) Normalised distributions of fibre length in increasing (circles) and decreasing (triangles) parts of the data. The solid black and grey lines represent the smoothed distributions (using a 5 points Fourier filter) of the increasing and decreasing parts of the data, respectively.…”
  15. 38395
  16. 38396
  17. 38397
  18. 38398
  19. 38399
  20. 38400

    Deletion of SIRT1 in osteoclasts or osteoblasts results in a low bone mass phenotype. by Kayvan Zainabadi (502381)

    Published 2017
    “…(B) Osteoblast tissue specific SIRT1 knockout mice (ObKO) mice show excision of SIRT1 in calvaria, but not liver. ObKOs show decreased bone mass only at 4 months of age. (n ≥ 5 for each group; * p < .05; ** p < .01).…”