457 results on '"Matsunaga, Naoya"'
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2. Oncogenic accumulation of cysteine promotes cancer cell proliferation by regulating the translation of D-type cyclins
3. Inhibition of G protein-coupled receptor 68 using homoharringtonine attenuates chronic kidney disease-associated cardiac impairment
4. Cholecystokinin receptor type A are involved in the circadian rhythm of the mouse retina
5. Implications of biological clocks in pharmacology and pharmacokinetics of antitumor drugs
6. Modulation of cell physiology by bispecific nanobodies enabling changes in the intracellular localization of organelle proteins
7. Population Pharmacokinetic Analysis of Drug–Drug Interactions Between Perampanel and Carbamazepine Using Enzyme Induction Model in Epileptic Patients
8. Chronopharmacology of immune-related diseases
9. RNA editing enzyme ADAR1 controls miR-381-3p-mediated expression of multidrug resistance protein MRP4 via regulation of circRNA in human renal cells
10. Inhibition of dynamin‐related protein 1‐filamin interaction improves systemic glucose metabolism.
11. Hericenone C attenuates the second phase of formalin-induced nociceptive behavior by suppressing the accumulation of CD11c-positive cells in the paw epidermis via phosphorylated P65
12. Age-Related Effects on MSC Immunomodulation, Macrophage Polarization, Apoptosis, and Bone Regeneration Correlate with IL-38 Expression
13. Circadian rhythms in CYP2A5 expression underlie the time-dependent effect of tegafur on breast cancer
14. Hematopoietic Prostaglandin D Synthase Is Increased in Mast Cells and Pericytes in Autopsy Myocardial Specimens from Patients with Duchenne Muscular Dystrophy
15. Prostaglandin F2α Affects the Cycle of Clock Gene Expression and Mouse Behavior
16. Suppression of neuropathic pain in the circadian clock–deficient Per2m/m mice involves up-regulation of endocannabinoid system
17. Alteration of circadian machinery in monocytes underlies chronic kidney disease-associated cardiac inflammation and fibrosis
18. Time-dependent differences in vancomycin sensitivity of macrophages underlie vancomycin-induced acute kidney injury
19. Optimizing the dosing schedule of l-asparaginase improves its anti-tumor activity in breast tumor-bearing mice
20. Expanding the Chemistry of Dihaloacetamides as Tunable Electrophiles for Reversible Covalent Targeting of Cysteines
21. Inhibition of Tumor-Derived C-C Motif Chemokine Ligand 2 Expression Attenuates Tactile Allodynia in NCTC 2472 Fibrosarcoma-Inoculated Mice
22. Dietary supplementation with essence of chicken enhances daily oscillations in plasma glucocorticoid levels and behavioral adaptation to the phase-shifted environmental light–dark cycle in mice
23. Diurnal expression of MRP4 in bone marrow cells underlies the dosing-time dependent changes in the oxaliplatin-induced myelotoxicity
24. Contribution of the clock gene DEC2 to VEGF mRNA upregulation by modulation of HIF1α protein levels in hypoxic MIO-M1 cells, a human cell line of retinal glial (Müller) cells
25. The scaffold protein PDZK1 governs diurnal localization of CNT2 on the plasma membrane in mouse intestinal epithelial cells
26. Supplementary Figure from Diurnal Expression of PD-1 on Tumor-Associated Macrophages Underlies the Dosing Time-Dependent Antitumor Effects of the PD-1/PD-L1 Inhibitor BMS-1 in B16/BL6 Melanoma-Bearing Mice
27. Supplementary Data from Diurnal Expression of PD-1 on Tumor-Associated Macrophages Underlies the Dosing Time-Dependent Antitumor Effects of the PD-1/PD-L1 Inhibitor BMS-1 in B16/BL6 Melanoma-Bearing Mice
28. Data from Diurnal Expression of PD-1 on Tumor-Associated Macrophages Underlies the Dosing Time-Dependent Antitumor Effects of the PD-1/PD-L1 Inhibitor BMS-1 in B16/BL6 Melanoma-Bearing Mice
29. Fig. S11-S13 from Optimized Dosing Schedule Based on Circadian Dynamics of Mouse Breast Cancer Stem Cells Improves the Antitumor Effects of Aldehyde Dehydrogenase Inhibitor
30. Table S3 from Optimized Dosing Schedule Based on Circadian Dynamics of Mouse Breast Cancer Stem Cells Improves the Antitumor Effects of Aldehyde Dehydrogenase Inhibitor
31. Data from Optimized Dosing Schedule Based on Circadian Dynamics of Mouse Breast Cancer Stem Cells Improves the Antitumor Effects of Aldehyde Dehydrogenase Inhibitor
32. Supplementary methods from Optimized Dosing Schedule Based on Circadian Dynamics of Mouse Breast Cancer Stem Cells Improves the Antitumor Effects of Aldehyde Dehydrogenase Inhibitor
33. Supplementary Data 6 from Circadian Regulation of mTOR by the Ubiquitin Pathway in Renal Cell Carcinoma
34. Supplementary Table 3 from Stress-Regulated Transcription Factor ATF4 Promotes Neoplastic Transformation by Suppressing Expression of the INK4a/ARF Cell Senescence Factors
35. Supplementary Data 1 from Circadian Regulation of mTOR by the Ubiquitin Pathway in Renal Cell Carcinoma
36. Data from Circadian Rhythm of Transferrin Receptor 1 Gene Expression Controlled by c-Myc in Colon Cancer–Bearing Mice
37. Supplementary Data 4 from Circadian Regulation of mTOR by the Ubiquitin Pathway in Renal Cell Carcinoma
38. Supplementary Data 3 from Circadian Regulation of mTOR by the Ubiquitin Pathway in Renal Cell Carcinoma
39. Supplementary Table 1 from Stress-Regulated Transcription Factor ATF4 Promotes Neoplastic Transformation by Suppressing Expression of the INK4a/ARF Cell Senescence Factors
40. Supplementary Figure 4 from Circadian Rhythm of Transferrin Receptor 1 Gene Expression Controlled by c-Myc in Colon Cancer–Bearing Mice
41. Supplementary Data 5 from Circadian Regulation of mTOR by the Ubiquitin Pathway in Renal Cell Carcinoma
42. Supplementary Figure 1 from Circadian Rhythm of Transferrin Receptor 1 Gene Expression Controlled by c-Myc in Colon Cancer–Bearing Mice
43. Supplementary Figure 1 from Rhythmic Control of the ARF-MDM2 Pathway by ATF4 Underlies Circadian Accumulation of p53 in Malignant Cells
44. Supplementary Figures 1-5 from Stress-Regulated Transcription Factor ATF4 Promotes Neoplastic Transformation by Suppressing Expression of the INK4a/ARF Cell Senescence Factors
45. Supplementary Figure 3 from Circadian Rhythm of Transferrin Receptor 1 Gene Expression Controlled by c-Myc in Colon Cancer–Bearing Mice
46. Supplementary Figure 2 from Rhythmic Control of the ARF-MDM2 Pathway by ATF4 Underlies Circadian Accumulation of p53 in Malignant Cells
47. Data from Circadian Regulation of mTOR by the Ubiquitin Pathway in Renal Cell Carcinoma
48. Supplementary Figure 5 from Circadian Rhythm of Transferrin Receptor 1 Gene Expression Controlled by c-Myc in Colon Cancer–Bearing Mice
49. Supplementary Table 2 from Stress-Regulated Transcription Factor ATF4 Promotes Neoplastic Transformation by Suppressing Expression of the INK4a/ARF Cell Senescence Factors
50. Data from Stress-Regulated Transcription Factor ATF4 Promotes Neoplastic Transformation by Suppressing Expression of the INK4a/ARF Cell Senescence Factors
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