32 results on '"Marques-Lopes J"'
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2. Distribution of angiotensin type 1a receptor-containing cells in the brains of bacterial artificial chromosome transgenic mice
3. Microinjection of angiotensin II in the caudal ventrolateral medulla induces hyperalgesia
4. NADPH OXIDASE AS A THERAPEUTIC TARGET AGAINST NEUROPATHIC PAIN: A STUDY IN THE ANGIOTENSIN II-HYPERTENSIVE RAT: PP55
5. HYPERTENSIVE MONOARTHRITIC RATS EXHIBIT LOWER INFLAMMATION AND HYPERALGESIA THAN THEIR NORMOTENSIVE CONTROLS: 198
6. Supplementary Material for: Redistribution of NMDA Receptors in Estrogen-Receptor-β-Containing Paraventricular Hypothalamic Neurons following Slow-Pressor Angiotensin II Hypertension in Female Mice with Accelerated Ovarian Failure
7. Membrane Trafficking of NADPH Oxidase p47phox in Paraventricular Hypothalamic Neurons Parallels Local Free Radical Production in Angiotensin II Slow-Pressor Hypertension
8. Decrease in the expression of N-methyl-D-aspartate receptors in the nucleus tractus solitarii induces antinociception and increases blood pressure
9. 393 ROLE OF ANGIOTENSIN II IN PAINFUL DIABETIC NEUROPATHY AND HYPERTENSION
10. ARTERIAL HYPERTENSION, INCREASED VASCULAR NADPH OXIDASE ACTIVITY AND LIPID PEROXIDATION IN AN EXPERIMENTAL MODEL OF ATHEROGENESIS
11. 198 HYPERTENSIVE MONOARTHRITIC RATS EXHIBIT LOWER INFLAMMATION AND HYPERALGESIA THAN THEIR NORMOTENSIVE CONTROLS
12. Decrease in the expression of N-methyl-D-aspartate receptors in the nucleus tractus solitarii induces antinociception and increases blood pressure.
13. Does chronic pain alter the normal interaction between cardiovascular and pain regulatory systems? Pain modulation in the hypertensive-monoarthritic rat.
14. Enhanced hydrogen peroxide production in two models of experimental hypertension with increased angiotensin II levels
15. Apocynin and catalase, but not tempol, prevent vascular hyperplasia and hypertension in a model of renin-angiotensin system activation
16. Evaluation of acute pain perception and blood pressure after angiotensin II administration in the caudal ventrolateral medulla
17. The caudal ventrolateral medulla participates in the development and maintenance of adenosine receptor blockade-induced hypertension
18. The spinal GABAergic system and the VLMlat play a role in the inhibition of spinal dorsal horn neurones during hypertension
19. Estrogen Receptor Beta Agonist Influences Presynaptic NMDA Receptor Distribution in the Paraventricular Hypothalamic Nucleus Following Hypertension in a Mouse Model of Perimenopause.
20. Angiotensin II differentially affects hippocampal glial inflammatory markers in young adult male and female mice.
21. Tumor Necrosis Factor α Receptor Type 1 Activation in the Hypothalamic Paraventricular Nucleus Contributes to Glutamate Signaling and Angiotensin II-Dependent Hypertension.
22. Increased levels of Stress-inducible phosphoprotein-1 accelerates amyloid-β deposition in a mouse model of Alzheimer's disease.
23. Sex and age differentially affect GABAergic neurons in the mouse prefrontal cortex and hippocampus following chronic intermittent hypoxia.
24. Plasma Membrane Affiliated AMPA GluA1 in Estrogen Receptor β-containing Paraventricular Hypothalamic Neurons Increases Following Hypertension in a Mouse Model of Post-menopause.
25. The Hsp70/Hsp90 Chaperone Machinery in Neurodegenerative Diseases.
26. Redistribution of NMDA Receptors in Estrogen-Receptor-β-Containing Paraventricular Hypothalamic Neurons following Slow-Pressor Angiotensin II Hypertension in Female Mice with Accelerated Ovarian Failure.
27. Alterations in the subcellular distribution of NADPH oxidase p47(phox) in hypothalamic paraventricular neurons following slow-pressor angiotensin II hypertension in female mice with accelerated ovarian failure.
28. Female protection from slow-pressor effects of angiotensin II involves prevention of ROS production independent of NMDA receptor trafficking in hypothalamic neurons expressing angiotensin 1A receptors.
29. Slow-pressor angiotensin II hypertension and concomitant dendritic NMDA receptor trafficking in estrogen receptor β-containing neurons of the mouse hypothalamic paraventricular nucleus are sex and age dependent.
30. Angiotensin II slow-pressor hypertension enhances NMDA currents and NOX2-dependent superoxide production in hypothalamic paraventricular neurons.
31. The hyperalgesic effects induced by the injection of angiotensin II into the caudal ventrolateral medulla are mediated by the pontine A5 noradrenergic cell group.
32. Role of superoxide and hydrogen peroxide in hypertension induced by an antagonist of adenosine receptors.
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