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176 results on '"miR-378a-3p"'

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1. Metformin Inhibits the Progression of Pancreatic Cancer Through Regulating miR‐378a‐3p/VEGFA/RGC‐32 Axis.

2. Metformin Inhibits the Progression of Pancreatic Cancer Through Regulating miR‐378a‐3p/VEGFA/RGC‐32 Axis

3. miR-378a-3p Targets NUAK2 to Inhibit Proliferation, Migration, and Invasion of Breast Cancer Cells

4. Exploring the regulatory role of FBXL19‐AS1 in triple‐negative breast cancer through the miR‐378a‐3p/OTUB2 axis.

5. 苏黄止咳胶囊联合胸腺肽治疗老年慢阻肺合并肺部感染患者效果 及对免疫功能、血气指标的影响.

6. miR-378a-3p 靶向 NUAK2 抑制乳腺癌细胞的 增殖、迁移和侵袭.

8. lncRNA MALAT1 promotes diabetic retinopathy by upregulating PDE6G via miR-378a-3p.

9. m6A-modification regulated circ-CCT3 acts as the sponge of miR-378a-3p to promote hepatocellular carcinoma progression

10. MiR-378a-3p acts as a tumor suppressor in gastric cancer via directly targeting RAB31 and inhibiting the Hedgehog pathway proteins GLI1/2

11. Circ_0000033 up‐regulates NUAK2 by sequestering miR‐378a‐3p to promote breast tumorigenesis.

12. miR-378a-3p promotes renal cell carcinoma proliferation, migration, and invasion by targeting TOB2.

13. Long non-coding RNA AC105118.1 affects glycolysis to facilitate oxaliplatin resistance in colorectal cancer cells by modulating the miR-378a-3p/KIF26B axis.

14. Relationship between serum miR-199a-5p and miR-378a-3p levels and recurrence of infants with proliferative facial hemangioma after propranolol withdrawal

15. lncRNA ACTA2-AS1 inhibits malignant phenotypes of gastric cancer cells

16. m6A-modification regulated circ-CCT3 acts as the sponge of miR-378a-3p to promote hepatocellular carcinoma progression.

17. DNMT1-induced miR-378a-3p silencing promotes angiogenesis via the NF-κB signaling pathway by targeting TRAF1 in hepatocellular carcinoma

18. miR-378a-3p regulates glioma cell chemosensitivity to cisplatin through IGF1R

19. RETRACTED ARTICLE: Long non-coding RNA SLC2A1-AS1 induced by GLI3 promotes aerobic glycolysis and progression in esophageal squamous cell carcinoma by sponging miR-378a-3p to enhance Glut1 expression

20. Circular RNA circPHF16 enhances IL-17A expression and secretion by sequestering miR-378a-3p to activate the IL6ST axis in Graves' disease.

21. MiR-378a-3p Acts as a Tumor Suppressor in Colorectal Cancer Stem-Like Cells and Affects the Expression of MALAT1 and NEAT1 lncRNAs.

22. Mesenchymal stem cells‐derived extracellular vesicles containing miR‐378a‐3p inhibit the occurrence of inflammatory bowel disease by targeting GATA2.

23. Chemotherapy-elicited exosomal miR-378a-3p and miR-378d promote breast cancer stemness and chemoresistance via the activation of EZH2/STAT3 signaling

24. MiR-378a-3p Acts as a Tumor Suppressor in Colorectal Cancer Stem-Like Cells and Affects the Expression of MALAT1 and NEAT1 lncRNAs

25. Tumor-derived miR-378a-3p-containing extracellular vesicles promote osteolysis by activating the Dyrk1a/Nfatc1/Angptl2 axis for bone metastasis.

26. Hypoxia-Induced miR-378a-3p Inhibits Osteosarcoma Invasion and Epithelial-to-Mesenchymal Transition via BYSL Regulation

27. Hypoxia-Induced miR-378a-3p Inhibits Osteosarcoma Invasion and Epithelial-to-Mesenchymal Transition via BYSL Regulation.

28. lncRNA ACTA2-AS1 inhibits malignant phenotypes of gastric cancer cells.

29. LncRNA PSMA3‐AS1 promotes cell proliferation, migration, and invasion in ovarian cancer by activating the PI3K/Akt pathway via the miR‐378a‐3p/GALNT3 axis.

30. DNMT1-induced miR-378a-3p silencing promotes angiogenesis via the NF-κB signaling pathway by targeting TRAF1 in hepatocellular carcinoma.

31. NCAPG, mediated by miR-378a-3p, regulates cell proliferation, cell cycle progression, and apoptosis of oral squamous cell carcinoma through the GSK-3β/β-catenin signaling.

32. CircCRIM1 Promotes Hepatocellular Carcinoma Proliferation and Angiogenesis by Sponging miR-378a-3p and Regulating SKP2 Expression

33. Targeting M2 Macrophages Alleviates Airway Inflammation and Remodeling in Asthmatic Mice via miR-378a-3p/GRB2 Pathway

34. Long non-coding RNA SLC2A1-AS1 induced by GLI3 promotes aerobic glycolysis and progression in esophageal squamous cell carcinoma by sponging miR-378a-3p to enhance Glut1 expression.

35. RETRACTED: LINC00174 Facilitates Cell Proliferation, Cell Migration and Tumor Growth of Osteosarcoma via Regulating the TGF-β/SMAD Signaling Pathway and Upregulating SSH2 Expression

36. DCTPP1, an Oncogene Regulated by miR-378a-3p, Promotes Proliferation of Breast Cancer via DNA Repair Signaling Pathway

37. DCTPP1, an Oncogene Regulated by miR-378a-3p, Promotes Proliferation of Breast Cancer via DNA Repair Signaling Pathway.

38. Chemotherapy-elicited exosomal miR-378a-3p and miR-378d promote breast cancer stemness and chemoresistance via the activation of EZH2/STAT3 signaling.

39. LncRNA FAM230B promotes the metastasis of papillary thyroid cancer by sponging the miR-378a-3p/WNT5A axis.

40. MicroRNA-378a-3p Downregulation as a Novel Biomarker with Poor Clinical Outcomes in Cervical Cancer.

41. Circular RNA_PDHX Promotes the Proliferation and Invasion of Prostate Cancer by Sponging MiR-378a-3p

42. LINC00958 Involves in Bladder Cancer Through Sponging miR-378a-3p to Elevate IGF1R.

43. ACTA2‐AS1 suppresses lung adenocarcinoma progression via sequestering miR‐378a‐3p and miR‐4428 to elevate SOX7 expression.

44. The SP1-Induced Long Noncoding RNA, LINC00339, Promotes Tumorigenesis in Colorectal Cancer via the miR-378a-3p/MED19 Axis.

45. CDK6 inhibition targeted by miR-378a-3p protects against intestinal injury induced by ionizing radiation.

46. Low-magnitude vibration induces osteogenic differentiation of bone marrow mesenchymal stem cells via miR-378a-3p/Grb2 pathway to promote bone formation in a rat model of age-related bone loss.

47. LINC00641 hinders the progression of cervical cancer by targeting miR‐378a‐3p/CPEB3.

48. Overexpression of LBX2 associated with tumor progression and poor prognosis in colorectal cancer.

49. CYP2E1 and miRNA‐378a‐3p contribute to acetaminophen‐ or tripterygium glycosides‐induced hepatotoxicity.

50. Inhibition of miR-378a-3p by Inflammation Enhances IL-33 Levels: A Novel Mechanism of Alarmin Modulation in Ulcerative Colitis

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