74 results on '"Imada, Eddie"'
Search Results
2. Supplementary Figure S1 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
3. Supplementary Figure S4 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
4. Data from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
5. Supplementary Figure S5 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
6. Supplementary Figure S7 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
7. Supplementary Figure S6 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
8. Supplementary Figure S1 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
9. Supplementary Figure S3 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
10. Supplementary Figure S6 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
11. Data from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
12. Supplementary Figure S8 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
13. Supplementary Figure S7 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
14. Supplementary Figure S2 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
15. Supplementary Tables S1-S19 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
16. Supplementary Figure S9 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
17. Supplementary Tables S1-S19 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
18. Supplementary Figure S8 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
19. Supplementary Figure S9 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
20. Supplementary Figure S5 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
21. Supplementary Information from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
22. Supplementary Figure S4 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
23. Supplementary Figure S2 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
24. Supplementary Figure S10 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
25. Supplementary Information from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
26. Supplementary Figure S10 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
27. Supplementary Figure S3 from Obesogenic High-Fat Diet and MYC Cooperate to Promote Lactate Accumulation and Tumor Microenvironment Remodeling in Prostate Cancer
28. 455. Changing epidemiology of SARS-CoV-2 testing, positivity rates, and variant distribution in children and adults over multiple pandemic waves in New York City
29. CALANGO: A phylogeny-aware comparative genomics tool for discovering quantitative genotype-phenotype associations across species
30. Using biological constraints to improve prediction in precision oncology
31. REPAC: analysis of alternative polyadenylation from RNA-sequencing data
32. Association of self-identified race and genetic ancestry with the immunogenomic landscape of primary prostate cancer
33. Recurrent germline variant in ATM associated with familial myeloproliferative neoplasms
34. A FOXO1-dependent transcription network is a targetable vulnerability of mantle cell lymphomas
35. Rapid detection of SARS-CoV-2 variants of concern by single nucleotide polymorphism genotyping using TaqMan assays
36. Donor-derived acute myeloid leukemia in solid organ transplantation
37. Multi-omics biomarkers aid prostate cancer prognostication
38. RNA‐seq: Applications and Best Practices
39. Abstract 462: Using attention-based deep multiple instance learning to identify key genetic alterations in prostate cancer from whole slide images
40. Abstract 1459: Identification of transcription factor enrichments in HPV+ head and neck cancer using ChIP-seq and cistrome analysis
41. Abstract 1219: Unraveling alternative polyadenylation in prostate cancer with CORE-PAD
42. Unleashing alternative polyadenylation analyses with REPAC
43. Abstract PO-146: Copy number landscape of primary African-American and European-American prostate tumors
44. recount3: summaries and queries for large-scale RNA-seq expression and splicing
45. Whole Genome Sequencing Uncovers a Rare Germline Variant in ATM Associated with Familial Myeloproliferative Neoplasms
46. CALANGO: a phylogeny-aware comparative genomics tool for discovering quantitative genotype-phenotype associations across species
47. Transcriptional landscape of PTEN loss in primary prostate cancer
48. RNA‐sequencing highlights differential regulated pathways involved in cell cycle and inflammation in orbitofacial neurofibromas
49. Abstract 2251: Gene expression analysis by RNA-sequencing highlights differential regulated pathways involved in cell cycle and inflammation in orbitofacial neurofibromas
50. Using Biological Constraints to Improve Prediction in Precision Oncology
Catalog
Books, media, physical & digital resources
Discovery Service for Jio Institute Digital Library
For full access to our library's resources, please sign in.