62 results on '"Purgato, Stefania"'
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2. Supplementary Figure 5 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
3. Supplementary Figure 2 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
4. CCR Translation for This Article from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
5. Supplementary Figure 3 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
6. Supplementary Figure 6 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
7. Supplementary Tables 1-3 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
8. Supplementary Tables 6-7 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
9. Supplementary Figure 4 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
10. Supplementary Figure 4 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
11. Supplementary Materials and Methods from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
12. Supplementary Figure 1 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
13. Supplementary Figure 6 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
14. Supplementary Table 4 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
15. Supplementary Tables 6-7 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
16. Supplementary Materials and Methods from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
17. Supplementary Figure 3 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
18. Supplementary Table 5 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
19. Supplementary Table 5 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
20. Supplementary Tables 1-3 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
21. Supplementary Table 4 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
22. Supplementary Figure 2 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
23. Supplementary Figure 1 from Antitumor Activity of Sustained N-Myc Reduction in Rhabdomyosarcomas and Transcriptional Block by Antigene Therapy
24. Supplementary Figures from MYC-Driven Neuroblastomas Are Addicted to a Telomerase-Independent Function of Dyskerin
25. Supplementary Figure Legends from MYC-Driven Neuroblastomas Are Addicted to a Telomerase-Independent Function of Dyskerin
26. Supplementary Methods from MYC-Driven Neuroblastomas Are Addicted to a Telomerase-Independent Function of Dyskerin
27. Supplementary Figure 6 from MYC-Driven Neuroblastomas Are Addicted to a Telomerase-Independent Function of Dyskerin
28. Supplementary Methods from MYC-Driven Neuroblastomas Are Addicted to a Telomerase-Independent Function of Dyskerin
29. Supplementary Figure Legends from MYC-Driven Neuroblastomas Are Addicted to a Telomerase-Independent Function of Dyskerin
30. Supplementary Tables from MYC-Driven Neuroblastomas Are Addicted to a Telomerase-Independent Function of Dyskerin
31. Supplementary Figure 6 from MYC-Driven Neuroblastomas Are Addicted to a Telomerase-Independent Function of Dyskerin
32. Supplementary Figures from MYC-Driven Neuroblastomas Are Addicted to a Telomerase-Independent Function of Dyskerin
33. Supplementary Tables from MYC-Driven Neuroblastomas Are Addicted to a Telomerase-Independent Function of Dyskerin
34. Epigallocatechin-3-gallate Delivered in Nanoparticles Increases Cytotoxicity in Three Breast Carcinoma Cell Lines
35. Human centromere repositioning activates transcription and opens chromatin fibre structure
36. Genome characterization and CRISPR-Cas9 editing of a human neocentromere
37. Author Correction: Comparative and demographic analysis of orang-utan genomes
38. Human centromere formation activates transcription and opens chromatin fibre structure
39. Human centromere formation activates transcription and opens chromatin fibre structure
40. A G316A Polymorphism in the Ornithine Decarboxylase Gene Promoter Modulates MYCN-Driven Childhood Neuroblastoma
41. Repurposing a psychoactive drug for children with cancer: p27Kip1-dependent inhibition of metastatic neuroblastomas by Prozac
42. Inhibition of polyamine synthesis and uptake reduces tumor progression and prolongs survival in mouse models of neuroblastoma
43. MAX to MYCN intracellular ratio drives the aggressive phenotype and clinical outcome of high risk neuroblastoma
44. The Hidden Genomic and Transcriptomic Plasticity of Giant Marker Chromosomes in Cancer
45. Epigenetic origin of evolutionary novel centromeres
46. MYC-Driven Neuroblastomas Are Addicted to a Telomerase-Independent Function of Dyskerin
47. Abstract 488: High DKC1 expression supports neuroblastoma tumor cell proliferation and is strongly associated with poor patient outcomes
48. Erratum to: Centromere sliding on a mammalian chromosome
49. Ring chromosomes, breakpoint clusters, and neocentromeres in sarcomas
50. Centromere sliding on a mammalian chromosome
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