249 results on '"Nice, Edouard C."'
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2. Drug repurposing-based nanoplatform via modulating autophagy to enhance chemo-phototherapy against colorectal cancer
3. Author Correction: Insights and implications of sexual dimorphism in osteoporosis
4. Step-by-step guided photo-chemotherapy nanoplatforms for efficiently suppressing cervical carcinoma metastasis by hijacking intracellular metabolism
5. Insights and implications of sexual dimorphism in osteoporosis
6. Mitochondrial‐Targeted CS@KET/P780 Nanoplatform for Site‐Specific Delivery and High‐Efficiency Cancer Immunotherapy in Hepatocellular Carcinoma
7. Chemo-photothermal nanoplatform with diselenide as the key for ferroptosis in colorectal cancer
8. Nanoengineering Calcium Peroxide‐Based Site‐Specific Delivery Platform to Efficiently Activate the cGAS‐STING Pathway for Cancer Immunotherapy by Amplified Endoplasmic Reticulum Stress
9. HSPA8 Activates Wnt/β‐Catenin Signaling to Facilitate BRAF V600E Colorectal Cancer Progression by CMA‐Mediated CAV1 Degradation (Adv. Sci. 3/2024)
10. Diseases & Disorders | Metabolomics: An Emerging Platform for Treatment and Diagnosis in Human Disease
11. Review of: "A Value-Driven Future Approach to Precision Medicine for Health Sustainability in New Zealand: A Perspective"
12. Redox signaling-mediated tumor extracellular matrix remodeling: pleiotropic regulatory mechanisms
13. Laser-activatable oxygen self-supplying nanoplatform for efficiently overcoming colorectal cancer resistance by enhanced ferroptosis and alleviated hypoxic microenvironment
14. Oral squamous cell carcinomas: state of the field and emerging directions
15. Clinical Chemotherapeutic Agent Coordinated Copper‐Based Nanoadjuvants for Efficiently Sensitizing Cancer Chemo‐Immunotherapy by Cuproptosis‐Mediated Mitochondrial Metabolic Reprogramming
16. Sertaconazole-repurposed nanoplatform enhances lung cancer therapy via CD44-targeted drug delivery
17. Drug Repurposing‐Based Brain‐Targeting Self‐Assembly Nanoplatform Using Enhanced Ferroptosis against Glioblastoma
18. Hippo signaling in cancer: regulatory mechanisms and therapeutic strategies
19. Step-by-step Guided Nanoplatforms for Efficiently Sensitizing Phototherapy via Mitochondrial Metabolic Reprogramming
20. Proteolysis-targeting chimeras in biotherapeutics: Current trends and future applications
21. Carrier-free delivery of thymopentin-regulated injectable nanogels via an enhanced cancer immunity cycle against melanoma metastasis
22. Supplementary Figure 1 from PDLIM1 Stabilizes the E-Cadherin/β-Catenin Complex to Prevent Epithelial–Mesenchymal Transition and Metastatic Potential of Colorectal Cancer Cells
23. Supplementary Figure S1-2 from Ivermectin Induces Cytostatic Autophagy by Blocking the PAK1/Akt Axis in Breast Cancer
24. Data from FGFR4 Promotes Stroma-Induced Epithelial-to-Mesenchymal Transition in Colorectal Cancer
25. Supplementary Materials and Methods from Ivermectin Induces Cytostatic Autophagy by Blocking the PAK1/Akt Axis in Breast Cancer
26. Data from PDLIM1 Stabilizes the E-Cadherin/β-Catenin Complex to Prevent Epithelial–Mesenchymal Transition and Metastatic Potential of Colorectal Cancer Cells
27. Supplementary Table 1 from PDLIM1 Stabilizes the E-Cadherin/β-Catenin Complex to Prevent Epithelial–Mesenchymal Transition and Metastatic Potential of Colorectal Cancer Cells
28. Supplementary Table 3 from PDLIM1 Stabilizes the E-Cadherin/β-Catenin Complex to Prevent Epithelial–Mesenchymal Transition and Metastatic Potential of Colorectal Cancer Cells
29. Supplementary Figure 2 from PDLIM1 Stabilizes the E-Cadherin/β-Catenin Complex to Prevent Epithelial–Mesenchymal Transition and Metastatic Potential of Colorectal Cancer Cells
30. Supplementary Figure 2 from PDLIM1 Stabilizes the E-Cadherin/β-Catenin Complex to Prevent Epithelial–Mesenchymal Transition and Metastatic Potential of Colorectal Cancer Cells
31. Supplementary Figure 3 from PDLIM1 Stabilizes the E-Cadherin/β-Catenin Complex to Prevent Epithelial–Mesenchymal Transition and Metastatic Potential of Colorectal Cancer Cells
32. Supplementary Figure Legends from Ivermectin Induces Cytostatic Autophagy by Blocking the PAK1/Akt Axis in Breast Cancer
33. Supplementary Figure S3-6 from Ivermectin Induces Cytostatic Autophagy by Blocking the PAK1/Akt Axis in Breast Cancer
34. Data from FGFR4 Promotes Stroma-Induced Epithelial-to-Mesenchymal Transition in Colorectal Cancer
35. Data from PDLIM1 Stabilizes the E-Cadherin/β-Catenin Complex to Prevent Epithelial–Mesenchymal Transition and Metastatic Potential of Colorectal Cancer Cells
36. Supplementary Figure Legends from Ivermectin Induces Cytostatic Autophagy by Blocking the PAK1/Akt Axis in Breast Cancer
37. Supplementary Table 1 from Ivermectin Induces Cytostatic Autophagy by Blocking the PAK1/Akt Axis in Breast Cancer
38. Supplementary Table 2 from PDLIM1 Stabilizes the E-Cadherin/β-Catenin Complex to Prevent Epithelial–Mesenchymal Transition and Metastatic Potential of Colorectal Cancer Cells
39. Supplementary method from PDLIM1 Stabilizes the E-Cadherin/β-Catenin Complex to Prevent Epithelial–Mesenchymal Transition and Metastatic Potential of Colorectal Cancer Cells
40. Supplementary Figure Legends from PDLIM1 Stabilizes the E-Cadherin/β-Catenin Complex to Prevent Epithelial–Mesenchymal Transition and Metastatic Potential of Colorectal Cancer Cells
41. Supplementary Figure S1-2 from Ivermectin Induces Cytostatic Autophagy by Blocking the PAK1/Akt Axis in Breast Cancer
42. Supplementary Table 2 from PDLIM1 Stabilizes the E-Cadherin/β-Catenin Complex to Prevent Epithelial–Mesenchymal Transition and Metastatic Potential of Colorectal Cancer Cells
43. Supplementary Table 3 from PDLIM1 Stabilizes the E-Cadherin/β-Catenin Complex to Prevent Epithelial–Mesenchymal Transition and Metastatic Potential of Colorectal Cancer Cells
44. Supplementary Table 2 from Ivermectin Induces Cytostatic Autophagy by Blocking the PAK1/Akt Axis in Breast Cancer
45. Supplementary Figure S7-9 from Ivermectin Induces Cytostatic Autophagy by Blocking the PAK1/Akt Axis in Breast Cancer
46. Supplementary Table 1 from Ivermectin Induces Cytostatic Autophagy by Blocking the PAK1/Akt Axis in Breast Cancer
47. Supplementary Figure 1 from PDLIM1 Stabilizes the E-Cadherin/β-Catenin Complex to Prevent Epithelial–Mesenchymal Transition and Metastatic Potential of Colorectal Cancer Cells
48. Supplementary Materials and Methods from Ivermectin Induces Cytostatic Autophagy by Blocking the PAK1/Akt Axis in Breast Cancer
49. Supplementary Figure 3 from PDLIM1 Stabilizes the E-Cadherin/β-Catenin Complex to Prevent Epithelial–Mesenchymal Transition and Metastatic Potential of Colorectal Cancer Cells
50. Supplementary Table 2 from Ivermectin Induces Cytostatic Autophagy by Blocking the PAK1/Akt Axis in Breast Cancer
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