259 results on '"Frost, Patrick"'
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2. Dynamic cross-interaction between two adjacent rocking blocks
3. Rocking of rigid blocks standing on a horizontally-moving compliant base
4. A Novel Therapeutic Induces DEPTOR Degradation in Multiple Myeloma Cells with Resulting Tumor Cytotoxicity.
5. Multimodal Bioluminescent and Positronic-emission Tomography/Computational Tomography Imaging of Multiple Myeloma Bone Marrow Xenografts in NOG Mice.
6. AcidoCEST MRI Evaluates the Bone Microenvironment in Multiple Myeloma
7. The Weaverville Community Forest
8. Gigaxonin Suppresses Epithelial-to-Mesenchymal Transition of Human Cancer Through Downregulation of Snail
9. A DNA-binding Molecule Targeting the Adaptive Hypoxic Response in Multiple Myeloma Has Potent Antitumor Activity
10. Acidification of intracellular pH in MM tumor cells overcomes resistance to hypoxia-mediated apoptosis in vitro and in vivo
11. PAK1 kinase promotes cell motility and invasiveness through CRK-II serine phosphorylation in non-small cell lung cancer cells.
12. Supplementary Figure 2 from Metabolomics Identifies Pyrimidine Starvation as the Mechanism of 5-Aminoimidazole-4-Carboxamide-1-β-Riboside-Induced Apoptosis in Multiple Myeloma Cells
13. supplemental figure 6 from SGK Kinase Activity in Multiple Myeloma Cells Protects against ER Stress Apoptosis via a SEK-Dependent Mechanism
14. Supplementary Figure 4 from Metabolomics Identifies Pyrimidine Starvation as the Mechanism of 5-Aminoimidazole-4-Carboxamide-1-β-Riboside-Induced Apoptosis in Multiple Myeloma Cells
15. Data from A Novel Therapeutic Induces DEPTOR Degradation in Multiple Myeloma Cells with Resulting Tumor Cytotoxicity
16. Data from A DNA-binding Molecule Targeting the Adaptive Hypoxic Response in Multiple Myeloma Has Potent Antitumor Activity
17. supplemental figure 4 from SGK Kinase Activity in Multiple Myeloma Cells Protects against ER Stress Apoptosis via a SEK-Dependent Mechanism
18. figure S5 from A Novel Therapeutic Induces DEPTOR Degradation in Multiple Myeloma Cells with Resulting Tumor Cytotoxicity
19. supplemental figure 5 from SGK Kinase Activity in Multiple Myeloma Cells Protects against ER Stress Apoptosis via a SEK-Dependent Mechanism
20. supplemental figure 2 from SGK Kinase Activity in Multiple Myeloma Cells Protects against ER Stress Apoptosis via a SEK-Dependent Mechanism
21. Supplementary Figure 1 from Metabolomics Identifies Pyrimidine Starvation as the Mechanism of 5-Aminoimidazole-4-Carboxamide-1-β-Riboside-Induced Apoptosis in Multiple Myeloma Cells
22. Supplementary Figure 3 from Metabolomics Identifies Pyrimidine Starvation as the Mechanism of 5-Aminoimidazole-4-Carboxamide-1-β-Riboside-Induced Apoptosis in Multiple Myeloma Cells
23. Data from SGK Kinase Activity in Multiple Myeloma Cells Protects against ER Stress Apoptosis via a SEK-Dependent Mechanism
24. Supplementary Figure 6 from Metabolomics Identifies Pyrimidine Starvation as the Mechanism of 5-Aminoimidazole-4-Carboxamide-1-β-Riboside-Induced Apoptosis in Multiple Myeloma Cells
25. Supplemental data figure 2 from A DNA-binding Molecule Targeting the Adaptive Hypoxic Response in Multiple Myeloma Has Potent Antitumor Activity
26. supplemental figure 3 from SGK Kinase Activity in Multiple Myeloma Cells Protects against ER Stress Apoptosis via a SEK-Dependent Mechanism
27. Supplemental data figure 1 from A DNA-binding Molecule Targeting the Adaptive Hypoxic Response in Multiple Myeloma Has Potent Antitumor Activity
28. supplemental figure 7 from SGK Kinase Activity in Multiple Myeloma Cells Protects against ER Stress Apoptosis via a SEK-Dependent Mechanism
29. supplemental figure 1 from SGK Kinase Activity in Multiple Myeloma Cells Protects against ER Stress Apoptosis via a SEK-Dependent Mechanism
30. Supplementary Figure 5 from Metabolomics Identifies Pyrimidine Starvation as the Mechanism of 5-Aminoimidazole-4-Carboxamide-1-β-Riboside-Induced Apoptosis in Multiple Myeloma Cells
31. Data from Metabolomics Identifies Pyrimidine Starvation as the Mechanism of 5-Aminoimidazole-4-Carboxamide-1-β-Riboside-Induced Apoptosis in Multiple Myeloma Cells
32. supplemental figure 1 from Cytotoxic Properties of a DEPTOR-mTOR Inhibitor in Multiple Myeloma Cells
33. supplemental figure 6 from Cytotoxic Properties of a DEPTOR-mTOR Inhibitor in Multiple Myeloma Cells
34. supplemental figure 3 from Cytotoxic Properties of a DEPTOR-mTOR Inhibitor in Multiple Myeloma Cells
35. supplemental figure legends from Cytotoxic Properties of a DEPTOR-mTOR Inhibitor in Multiple Myeloma Cells
36. Supplementary Fig. S1 from Effect of autophagy on multiple myeloma cell viability
37. supplemental figure 4 from Cytotoxic Properties of a DEPTOR-mTOR Inhibitor in Multiple Myeloma Cells
38. supplemental figure 5 from Cytotoxic Properties of a DEPTOR-mTOR Inhibitor in Multiple Myeloma Cells
39. Data from Cytotoxic Properties of a DEPTOR-mTOR Inhibitor in Multiple Myeloma Cells
40. supplemental figure 2 from Cytotoxic Properties of a DEPTOR-mTOR Inhibitor in Multiple Myeloma Cells
41. Biomechanics in Arts of Dance : How an internal focus of attention influences a dancer's biomechanics
42. Helminth parasites of some southern California fishes with a redescription of Proctoeces magnorus Manter, 1940 (Digenea: Fellodistomidae) and description of Choanodera moseri sp. n. (Digenea: Apocreadidae)
43. Rocking of Rigid Blocks Standing on a Horizontally-Moving Compliant Base
44. The Mammalian Target of Rapamycin and Multiple Myeloma
45. Contributors
46. Weaverville Community Forest, California, United States of America
47. Targeting TORC2 in multiple myeloma with a new mTOR kinase inhibitor
48. Can Targeting Hypoxia-Mediated Acidification of the Bone Marrow Microenvironment Kill Myeloma Tumor Cells?
49. Interleukin-6 activates phosphoinositol-3′ kinase in multiple myeloma tumor cells by signaling through RAS-dependent and, separately, through p85-dependent pathways
50. Dietary β-glucan stimulate complement and C-reactive protein acute phase responses in common carp (Cyprinus carpio) during an Aeromonas salmonicida infection
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