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1. Trpv6 channel targeting using monoclonal antibody induces prostate cancer cell apoptosis and tumor regression

2. Tumor Microenvironment Modulates Invadopodia Activity of Non-Selected and Acid-Selected Pancreatic Cancer Cells and Its Sensitivity to Gemcitabine and C18-Gemcitabine

3. Characterization of the TRPV6 calcium channel-specific phenotype by RNA-seq in castration-resistant human prostate cancer cells

4. Allosteric cross-talk between the hydrophobic cleft and the BH4 domain of Bcl-2 in control of inositol 1,4,5-trisphosphate receptor activity

5. TRPC3 shapes the ER-mitochondria Ca2+ transfer characterizing tumour-promoting senescence

6. NR1D1 controls skeletal muscle calcium homeostasis through myoregulin repression

7. A Novel Anti-TRPV6 Antibody and Its Application in Cancer Diagnosis In Vitro

8. Ca2+ Signalling and Hypoxia/Acidic Tumour Microenvironment Interplay in Tumour Progression

9. Co-targeting Mitochondrial Ca2+ Homeostasis and Autophagy Enhances Cancer Cells' Chemosensitivity

10. Role of Orai3 in the Pathophysiology of Cancer

11. Monoclonal Antibodies Targeting Ion Channels and Their Therapeutic Potential

12. Acidic Growth Conditions Promote Epithelial-to-Mesenchymal Transition to Select More Aggressive PDAC Cell Phenotypes In Vitro

13. Supplemental data from Activation of TRPA1 Channel by Antibacterial Agent Triclosan Induces VEGF Secretion in Human Prostate Cancer Stromal Cells

19. Data from Thrombospondin-1 Triggers Cell Migration and Development of Advanced Prostate Tumors

22. TRPV6 Calcium Channel Targeting by Antibodies Raised against Extracellular Epitopes Induces Prostate Cancer Cell Apoptosis

23. Role of the TRP Channels in Pancreatic Ductal Adenocarcinoma Development and Progression

24. Use of 2,6-diaminopurine as a potent suppressor of UGA premature stop codons in cystic fibrosis

25. A Novel Anti-TRPV6 Antibody and Its Application in Cancer Diagnosis In Vitro

26. Role of the TRPV Channels in the Endoplasmic Reticulum Calcium Homeostasis

27. Ca2+ Signaling and Hypoxia/Acidic Tumour Microenvironment Interplay in Tumour Progression

28. Ca

29. Opiates Modulate Thermosensation by Internalizing Cold Receptor TRPM8

30. Functional coupling between large-conductance potassium channels and Cav3.2 voltage-dependent calcium channels participates in prostate cancer cell growth

31. TRPM7 Ion Channel: Oncogenic Roles and Therapeutic Potential in Breast Cancer

32. TRPM Family Channels in Cancer

33. TRPC1 channels regulate the activation of pancreatic stellate cells through ERK1/2 and SMAD2 pathways and perpetuate their pressure-mediated activation

34. Store operated calcium channels in cancer progression

35. Evolution of the human cold/menthol receptor, TRPM8

36. RETRACTED: TRPV6 calcium channel regulation, downstream pathways, and therapeutic targeting in cancer

37. Rev-erb-α controls skeletal muscle calcium homeostasis through myoregulin repression: implications in Duchenne Muscular Dystrophy

38. Orai1 Channel Regulates Human-Activated Pancreatic Stellate Cell Proliferation and TGF

39. Store operated calcium channels in cancer progression

40. TRPV2 mediates adrenomedullin stimulation of prostate and urothelial cancer cell adhesion, migration and invasion.

41. Alterations in detrusor contractility in rat model of bladder cancer

42. Ca2+ signaling is critical for pancreatic stellate cell’s pathophysiology : from fibrosis to cancer hallmarks

43. Expression of neuronal Na+ leak channel, NALCN, provides for persistent invasion of metastasizing cancer cells

44. Ion Channel Profiling in Prostate Cancer: Toward Cell Population-Specific Screening

45. Testosterone‐androgen receptor: The steroid link inhibiting TRPM8‐mediated cold sensitivity

46. Ion Channel Profiling in Prostate Cancer: Toward Cell Population-Specific Screening

47. Cytoskeleton reorganization as an alternative mechanism of store-operated calcium entry control in neuroendocrine-differentiated cells.

48. TRPM8 and prostate: a cold case?

49. TRPs and Ca2+ in cell death and survival

50. TRPV6 determines the effect of vitamin D3 on prostate cancer cell growth.

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