41 results on '"Frejno, Martin"'
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2. Unifying the analysis of bottom-up proteomics data with CHIMERYS
3. Pharmacoproteomic characterisation of human colon and rectal cancer
4. Mass-spectrometry-based draft of the Arabidopsis proteome
5. Proteome activity landscapes of tumor cell lines determine drug responses
6. Proteomic and transcriptomic profiling of aerial organ development in Arabidopsis
7. Supplementary Figure 6 from Adaptation to HIF1α Deletion in Hypoxic Cancer Cells by Upregulation of GLUT14 and Creatine Metabolism
8. Supplementary Figure 5 from Adaptation to HIF1α Deletion in Hypoxic Cancer Cells by Upregulation of GLUT14 and Creatine Metabolism
9. Supplementary Figure 8 from Adaptation to HIF1α Deletion in Hypoxic Cancer Cells by Upregulation of GLUT14 and Creatine Metabolism
10. Supplementary Figure 7 from Adaptation to HIF1α Deletion in Hypoxic Cancer Cells by Upregulation of GLUT14 and Creatine Metabolism
11. Supplementary Figure 3 from Adaptation to HIF1α Deletion in Hypoxic Cancer Cells by Upregulation of GLUT14 and Creatine Metabolism
12. Supplementary Figure 2 from Adaptation to HIF1α Deletion in Hypoxic Cancer Cells by Upregulation of GLUT14 and Creatine Metabolism
13. Data from Adaptation to HIF1α Deletion in Hypoxic Cancer Cells by Upregulation of GLUT14 and Creatine Metabolism
14. Supplemetary Data from Adaptation to HIF1α Deletion in Hypoxic Cancer Cells by Upregulation of GLUT14 and Creatine Metabolism
15. Supplementary Figure 4 from Adaptation to HIF1α Deletion in Hypoxic Cancer Cells by Upregulation of GLUT14 and Creatine Metabolism
16. Authorship Change Form from Adaptation to HIF1α Deletion in Hypoxic Cancer Cells by Upregulation of GLUT14 and Creatine Metabolism
17. Supplementary Figure 1 from Adaptation to HIF1α Deletion in Hypoxic Cancer Cells by Upregulation of GLUT14 and Creatine Metabolism
18. Optimized Enrichment of Phosphoproteomes by Fe-IMAC Column Chromatography
19. INFERYS rescoring: Boosting peptide identifications and scoring confidence of database search results
20. Chemical Phosphoproteomics Sheds New Light on the Targets and Modes of Action of AKT Inhibitors
21. Proteomic and transcriptomic profiling of aerial organ development in Arabidopsis
22. Identification of molecular targets for the targeted treatment of gastric cancer using dasatinib
23. ProteomicsDB: a multi-omics and multi-organism resource for life science research
24. Challenges in Clinical Metaproteomics Highlighted by the Analysis of Acute Leukemia Patients with Gut Colonization by Multidrug-Resistant Enterobacteriaceae
25. Adaptation to HIF1α Deletion in Hypoxic Cancer Cells by Upregulation of GLUT14 and Creatine Metabolism
26. A deep proteome and transcriptome abundance atlas of 29 healthy human tissues
27. Challenges in Clinical Metaproteomics Highlighted by the Analysis of Acute Leukemia Patients with Gut Colonization by Multidrug-Resistant Enterobacteriaceae
28. Optimized Enrichment of Phosphoproteomes by Fe-IMAC Column Chromatography
29. ProteomicsDB: a multi-omics and multi-organism resource for life science research.
30. A deep proteome and transcriptome abundance atlas of 29 healthy human tissues
31. ProteomicsDB
32. Pharmacoproteomic characterisation of human colon and rectal cancer
33. THADA Regulates the Organismal Balance between Energy Storage and Heat Production
34. Phosphoproteome Profiling Reveals Molecular Mechanisms of Growth-Factor-Mediated Kinase Inhibitor Resistance in EGFR-Overexpressing Cancer Cells
35. Ceramide Synthase 5 Is Essential to Maintain C16:0-Ceramide Pools and Contributes to the Development of Diet-induced Obesity
36. moCluster: Identifying Joint Patterns Across Multiple Omics Data Sets
37. ProteomicsDB.
38. moCluster: Identifying Joint Patterns Across Multiple Omics Data Sets.
39. moCluster: Identifying Joint Patterns Across Multiple Omics Data Sets
40. Ceramide Synthase 5 Is Essential to Maintain C16:0-Ceramide Pools and Contributes to the Development of Diet-induced Obesity.
41. Optimized Enrichment of Phosphoproteomes by Fe-IMAC Column Chromatography.
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