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65 results on '"Juvenal G"'

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1. Regulation of GABAergic neurotransmission by purinergic receptors in brain physiology and disease.

2. Bradykinin promotes immune responses in differentiated embryonic neurospheres carrying APP swe and PS1 dE9 mutations.

3. Selenium bioavailability modulates the sensitivity of thyroid cells to iodide excess.

4. Valproic acid radiosensitizes anaplastic thyroid cells through a decrease of the DNA damage repair capacity.

5. Differentiated Embryonic Neurospheres from Familial Alzheimer's Disease Model Show Innate Immune and Glial Cell Responses.

6. Molecular Dynamics Analysis of Fast-Spreading Severe Acute Respiratory Syndrome Coronavirus 2 Variants and Their Effects on the Interaction with Human Angiotensin-Converting Enzyme 2.

7. Experimental studies of boron neutron capture therapy (BNCT) using histone deacetylase inhibitor (HDACI) sodium butyrate, as a complementary drug for the treatment of poorly differentiated thyroid cancer (PDTC).

8. Participation of NADPH 4 oxidase in thyroid regulation.

9. Regulation of NADPH oxidase NOX4 by delta iodolactone (IL-δ) in thyroid cancer cells.

10. Comparative effects of transforming growth factor beta isoforms on redox metabolism in thyroid cells.

11. In vitro studies of DNA damage and repair mechanisms induced by BNCT in a poorly differentiated thyroid carcinoma cell line.

12. Corrigendum to 'The Brazilian Cardioprotective Nutritional Program to reduce events and risk factors in secondary prevention for cardiovascular disease: study protocol (The BALANCE Program Trial)' [American Heart Journal 171/1 (2016) 73-81].

13. The Brazilian Cardioprotective Nutritional Program to reduce events and risk factors in secondary prevention for cardiovascular disease: study protocol (The BALANCE Program Trial).

14. Improvement of the boron neutron capture therapy (BNCT) by the previous administration of the histone deacetylase inhibitor sodium butyrate for the treatment of thyroid carcinoma.

15. In vitro studies of cellular response to DNA damage induced by boron neutron capture therapy.

16. Studies for the application of boron neutron capture therapy to the treatment of differentiated thyroid cancer.

18. Inhibition of goiter growth and of cyclic AMP formation in rat thyroid by 2-iodohexadecanal.

20. Inhibition of peroxidase and catalase activities and modulation of hydrogen peroxide level by inositol phosphoglycan-like compounds.

21. Nicotinamide increases thyroid radiosensitivity by stimulating nitric oxide synthase expression and the generation of organic peroxides.

22. [Boron neutron capture therapy applied to undifferentiated thyroid carcinoma].

23. Long-term effect of norepinephrine on thyroglobulin gene expression in FRTL-5 cells.

24. Boron neutron capture therapy for undifferentiated thyroid carcinoma: preliminary results with the combined use of BPA and BOPP.

25. Biodistribution of p-borophenylalanine (BPA) in dogs with spontaneous undifferentiated thyroid carcinoma (UTC).

26. Experimental application of boron neutron capture therapy to undifferentiated thyroid carcinoma.

27. A new animal model for human undifferentiated thyroid carcinoma.

30. Selective uptake of p-borophenylalanine by undifferentiated thyroid carcinoma for boron neutron capture therapy.

31. Influence of nicotinamide on the radiosensitivity of normal and goitrous thyroid in the rat.

32. The protein kinase C pathway inhibits iodide uptake by calf thyroid cells via sodium potassium-adenosine triphosphatase.

35. High-affinity binding of T3 to epididymis nuclei.

36. Presence of a soluble inhibitor of thyroid iodination in primary cultures of thyroid cells.

37. Effect of the interaction of TSH and insulin on the stimulation of 2-deoxyglucose uptake in FRTL-5 cells.

38. Role of cyclic 3'5' guanosine monophosphate and nitric oxide in the regulation of iodide uptake in calf thyroid cells.

39. Long-term effect of norepinephrine on iodide uptake in FRTL-5 cells.

40. Effects of iodide on thyroglobulin biosynthesis in FRTL-5 cells.

41. Studies on the goiter inhibiting action of iodolactones.

42. Effect of iodoarachidonates on thyroid FRTL-5 cells growth.

43. Identification of a mutation in the coding sequence of the human thyroid peroxidase gene causing congenital goiter.

44. Further studies on the antigoitrogenic action of iodoarachidonates.

45. Thyroid autoregulation: evidence for an action of iodoarachidonates and iodide at the cell membrane level.

46. Differential levels of thyroid peroxidase and thyroglobulin messenger ribonucleic acids in congenital goiter with defective thyroglobulin synthesis.

47. cAMP-dependent binding of a trans-acting factor to the thyroglobulin promoter.

48. Biosynthesis and regulation of iodolipids in calf thyroid.

49. Normal and defective expression of the thyroglobulin gene.

50. Role of neurotransmitters, prostaglandins and glucose on precursor incorporation into the RNA of thyroid slices.

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