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  • Source: Neuroscience. Unidades: IQ, ICB

    Subjects: DOENÇA DE PARKINSON, NEURÔNIOS

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      DATI, L. M et al. Carvacrol promotes neuroprotection in the mouse hemiparkinsonian model. Neuroscience, v. 356, p. 176-181, 2017Tradução . . Disponível em: https://doi.org/10.1016/j.neuroscience.2017.05.013. Acesso em: 26 maio 2024.
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      Dati, L. M., Ulrich, H., Real, C. C., Feng, Z. P., Sun, H. S., & Britto, L. R. G. de. (2017). Carvacrol promotes neuroprotection in the mouse hemiparkinsonian model. Neuroscience, 356, 176-181. doi:10.1016/j.neuroscience.2017.05.013
    • NLM

      Dati LM, Ulrich H, Real CC, Feng ZP, Sun HS, Britto LRG de. Carvacrol promotes neuroprotection in the mouse hemiparkinsonian model [Internet]. Neuroscience. 2017 ; 356 176-181.[citado 2024 maio 26 ] Available from: https://doi.org/10.1016/j.neuroscience.2017.05.013
    • Vancouver

      Dati LM, Ulrich H, Real CC, Feng ZP, Sun HS, Britto LRG de. Carvacrol promotes neuroprotection in the mouse hemiparkinsonian model [Internet]. Neuroscience. 2017 ; 356 176-181.[citado 2024 maio 26 ] Available from: https://doi.org/10.1016/j.neuroscience.2017.05.013
  • Source: Journal of Molecular Neuroscience. Unidade: ICB

    Assunto: FISIOLOGIA

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      GARCIA, P. C. e REAL, C. C. e BRITTO, Luiz Roberto Giorgetti de. The impact of short and long-term exercise on the expression of arc and AMPARs during evolution of the 6-Hydroxy-Dopamine animal model of Parkinson's disease. Journal of Molecular Neuroscience, v. 61, n. 4, p. 542-552, 2017Tradução . . Disponível em: https://doi.org/10.1007/s12031-017-0896-y. Acesso em: 26 maio 2024.
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      Garcia, P. C., Real, C. C., & Britto, L. R. G. de. (2017). The impact of short and long-term exercise on the expression of arc and AMPARs during evolution of the 6-Hydroxy-Dopamine animal model of Parkinson's disease. Journal of Molecular Neuroscience, 61( 4), 542-552. doi:10.1007/s12031-017-0896-y
    • NLM

      Garcia PC, Real CC, Britto LRG de. The impact of short and long-term exercise on the expression of arc and AMPARs during evolution of the 6-Hydroxy-Dopamine animal model of Parkinson's disease [Internet]. Journal of Molecular Neuroscience. 2017 ; 61( 4): 542-552.[citado 2024 maio 26 ] Available from: https://doi.org/10.1007/s12031-017-0896-y
    • Vancouver

      Garcia PC, Real CC, Britto LRG de. The impact of short and long-term exercise on the expression of arc and AMPARs during evolution of the 6-Hydroxy-Dopamine animal model of Parkinson's disease [Internet]. Journal of Molecular Neuroscience. 2017 ; 61( 4): 542-552.[citado 2024 maio 26 ] Available from: https://doi.org/10.1007/s12031-017-0896-y
  • Source: Cell Transplantation. Unidades: ICB, IQ

    Subjects: DOENÇA DE PARKINSON, ESTRESSE OXIDATIVO, RECEPTORES DOPAMINÉRGICOS

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      FERRAZOLI, Enéas Galdini et al. Brilliant blue G, but not fenofibrate, treatment reverts hemiparkinsonian behavior and restores dopamine levels in an animal model of Parkinson's disease. Cell Transplantation, v. 26, n. 4, p. 669-677, 2017Tradução . . Disponível em: https://doi.org/10.3727/096368917X695227. Acesso em: 26 maio 2024.
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      Ferrazoli, E. G., Souza, H. D. N. de, Nascimento, I. C. do, Giacomelli, Á. O., Schwindt, T. T., Britto, L. R. G. de, & Ulrich, H. (2017). Brilliant blue G, but not fenofibrate, treatment reverts hemiparkinsonian behavior and restores dopamine levels in an animal model of Parkinson's disease. Cell Transplantation, 26( 4), 669-677. doi:10.3727/096368917X695227
    • NLM

      Ferrazoli EG, Souza HDN de, Nascimento IC do, Giacomelli ÁO, Schwindt TT, Britto LRG de, Ulrich H. Brilliant blue G, but not fenofibrate, treatment reverts hemiparkinsonian behavior and restores dopamine levels in an animal model of Parkinson's disease [Internet]. Cell Transplantation. 2017 ; 26( 4): 669-677.[citado 2024 maio 26 ] Available from: https://doi.org/10.3727/096368917X695227
    • Vancouver

      Ferrazoli EG, Souza HDN de, Nascimento IC do, Giacomelli ÁO, Schwindt TT, Britto LRG de, Ulrich H. Brilliant blue G, but not fenofibrate, treatment reverts hemiparkinsonian behavior and restores dopamine levels in an animal model of Parkinson's disease [Internet]. Cell Transplantation. 2017 ; 26( 4): 669-677.[citado 2024 maio 26 ] Available from: https://doi.org/10.3727/096368917X695227
  • Source: Neuroscience. Unidade: ICB

    Subjects: FISIOLOGIA, FARMACOLOGIA

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      RAVELLI, Katherine Garcia et al. NADPH oxidase contributes to streptozotocin-induced neurodegeneration. Neuroscience, v. 358, p. 227-237, 2017Tradução . . Disponível em: https://doi.org/10.1016/j.neuroscience.2017.06.050. Acesso em: 26 maio 2024.
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      Ravelli, K. G., Rosário, B. dos A., Vasconcelos, A. R., Scavone, C., Camarini, R., Hernandes, M. S., & Britto, L. R. G. de. (2017). NADPH oxidase contributes to streptozotocin-induced neurodegeneration. Neuroscience, 358, 227-237. doi:10.1016/j.neuroscience.2017.06.050
    • NLM

      Ravelli KG, Rosário B dos A, Vasconcelos AR, Scavone C, Camarini R, Hernandes MS, Britto LRG de. NADPH oxidase contributes to streptozotocin-induced neurodegeneration [Internet]. Neuroscience. 2017 ; 358 227-237.[citado 2024 maio 26 ] Available from: https://doi.org/10.1016/j.neuroscience.2017.06.050
    • Vancouver

      Ravelli KG, Rosário B dos A, Vasconcelos AR, Scavone C, Camarini R, Hernandes MS, Britto LRG de. NADPH oxidase contributes to streptozotocin-induced neurodegeneration [Internet]. Neuroscience. 2017 ; 358 227-237.[citado 2024 maio 26 ] Available from: https://doi.org/10.1016/j.neuroscience.2017.06.050
  • Source: Lasers in Medical Science. Unidades: FO, ICB

    Subjects: NERVO TRIGÊMEO, RATOS

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      MARTINS, Daniel Oliveira et al. Neuropeptide expression and morphometric differences in crushed alveolar inferior nerve of rats: effects of photobiomodulation. Lasers in Medical Science, p. 1-8, 2017Tradução . . Disponível em: https://doi.org/10.1007/s10103-017-2181-2. Acesso em: 26 maio 2024.
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      Martins, D. O., Santos, F. M., Ciena, A. P., Watanabe, I. -S., Britto, L. R. G. de, Lemos, J. B. D., & Chacur, M. (2017). Neuropeptide expression and morphometric differences in crushed alveolar inferior nerve of rats: effects of photobiomodulation. Lasers in Medical Science, 1-8. doi:10.1007/s10103-017-2181-2
    • NLM

      Martins DO, Santos FM, Ciena AP, Watanabe I-S, Britto LRG de, Lemos JBD, Chacur M. Neuropeptide expression and morphometric differences in crushed alveolar inferior nerve of rats: effects of photobiomodulation [Internet]. Lasers in Medical Science. 2017 ; 1-8.[citado 2024 maio 26 ] Available from: https://doi.org/10.1007/s10103-017-2181-2
    • Vancouver

      Martins DO, Santos FM, Ciena AP, Watanabe I-S, Britto LRG de, Lemos JBD, Chacur M. Neuropeptide expression and morphometric differences in crushed alveolar inferior nerve of rats: effects of photobiomodulation [Internet]. Lasers in Medical Science. 2017 ; 1-8.[citado 2024 maio 26 ] Available from: https://doi.org/10.1007/s10103-017-2181-2
  • Source: Journal of Proteomics. Unidade: ICB

    Subjects: FISIOLOGIA, FARMACOLOGIA

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      CAFÉ-MENDES, C. C. et al. Peptidomic analysis of the anterior temporal lobe and corpus callosum from schizophrenia patients. Journal of Proteomics, v. 151, p. 97-105, 2017Tradução . . Disponível em: https://doi.org/10.1016/j.jprot.2016.05.025. Acesso em: 26 maio 2024.
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      Café-Mendes, C. C., Ferro, E. S., Torrão, A. da S., Crunfli, F., Rioli, V., Schmitt, A., et al. (2017). Peptidomic analysis of the anterior temporal lobe and corpus callosum from schizophrenia patients. Journal of Proteomics, 151, 97-105. doi:10.1016/j.jprot.2016.05.025
    • NLM

      Café-Mendes CC, Ferro ES, Torrão A da S, Crunfli F, Rioli V, Schmitt A, Falkai P, Britto LRG de, Turck CW, Martins-de-Souza D. Peptidomic analysis of the anterior temporal lobe and corpus callosum from schizophrenia patients [Internet]. Journal of Proteomics. 2017 ; 151 97-105.[citado 2024 maio 26 ] Available from: https://doi.org/10.1016/j.jprot.2016.05.025
    • Vancouver

      Café-Mendes CC, Ferro ES, Torrão A da S, Crunfli F, Rioli V, Schmitt A, Falkai P, Britto LRG de, Turck CW, Martins-de-Souza D. Peptidomic analysis of the anterior temporal lobe and corpus callosum from schizophrenia patients [Internet]. Journal of Proteomics. 2017 ; 151 97-105.[citado 2024 maio 26 ] Available from: https://doi.org/10.1016/j.jprot.2016.05.025
  • Source: CNS Neuroscience & Therapeutics. Unidade: ICB

    Assunto: FISIOLOGIA

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      HUANG, Sammen et al. GSK-3β inhibitor TDZD-8 reduces neonatal hypoxic-ischemic brain injury in mice. CNS Neuroscience & Therapeutics, v. 23, n. 5, p. 405-415, 2017Tradução . . Disponível em: https://doi.org/10.1111/cns.12683. Acesso em: 26 maio 2024.
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      Huang, S., Wang, H., Turlova, E., Abussaud, A., Ji, X., Britto, L. R. G. de, et al. (2017). GSK-3β inhibitor TDZD-8 reduces neonatal hypoxic-ischemic brain injury in mice. CNS Neuroscience & Therapeutics, 23( 5), 405-415. doi:10.1111/cns.12683
    • NLM

      Huang S, Wang H, Turlova E, Abussaud A, Ji X, Britto LRG de, Miller SP, Martinez A, Sun H‐S, Feng Z‐P. GSK-3β inhibitor TDZD-8 reduces neonatal hypoxic-ischemic brain injury in mice [Internet]. CNS Neuroscience & Therapeutics. 2017 ; 23( 5): 405-415.[citado 2024 maio 26 ] Available from: https://doi.org/10.1111/cns.12683
    • Vancouver

      Huang S, Wang H, Turlova E, Abussaud A, Ji X, Britto LRG de, Miller SP, Martinez A, Sun H‐S, Feng Z‐P. GSK-3β inhibitor TDZD-8 reduces neonatal hypoxic-ischemic brain injury in mice [Internet]. CNS Neuroscience & Therapeutics. 2017 ; 23( 5): 405-415.[citado 2024 maio 26 ] Available from: https://doi.org/10.1111/cns.12683
  • Source: Scientific reports. Unidades: ICB, FM, FMRP

    Subjects: PEPTÍDEOS, METABOLISMO, SISTEMA NERVOSO CENTRAL, FARMACOLOGIA, FISIOLOGIA

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      RECKZIEGEL, Patricia et al. A novel peptide that improves metabolic parameters without adverse central nervous system effects. Scientific reports, v. 7, 2017Tradução . . Disponível em: https://doi.org/10.1038/s41598-017-13690-9. Acesso em: 26 maio 2024.
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      Reckziegel, P., Festuccia, W. T. L., Britto, L. R. G. de, Heimann, J. C., Guimarães, F. S., Eichler, R. A. dos S., & Ferro, E. S. (2017). A novel peptide that improves metabolic parameters without adverse central nervous system effects. Scientific reports, 7. doi:10.1038/s41598-017-13690-9
    • NLM

      Reckziegel P, Festuccia WTL, Britto LRG de, Heimann JC, Guimarães FS, Eichler RA dos S, Ferro ES. A novel peptide that improves metabolic parameters without adverse central nervous system effects [Internet]. Scientific reports. 2017 ; 7[citado 2024 maio 26 ] Available from: https://doi.org/10.1038/s41598-017-13690-9
    • Vancouver

      Reckziegel P, Festuccia WTL, Britto LRG de, Heimann JC, Guimarães FS, Eichler RA dos S, Ferro ES. A novel peptide that improves metabolic parameters without adverse central nervous system effects [Internet]. Scientific reports. 2017 ; 7[citado 2024 maio 26 ] Available from: https://doi.org/10.1038/s41598-017-13690-9
  • Source: Neurotoxicity Research. Unidade: ICB

    Subjects: FISIOLOGIA, FARMACOLOGIA

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      RAVELLI, Katherine Garcia et al. Intracerebroventricular streptozotocin as a model of Alzheimer’s disease: neurochemical and behavioral characterization in mice. Neurotoxicity Research, v. 31, n. 3, p. 327-333, 2017Tradução . . Disponível em: https://doi.org/10.1007/s12640-016-9684-7. Acesso em: 26 maio 2024.
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      Ravelli, K. G., Rosário, B. dos A., Camarini, R., Hernandes, M. S., & Britto, L. R. G. de. (2017). Intracerebroventricular streptozotocin as a model of Alzheimer’s disease: neurochemical and behavioral characterization in mice. Neurotoxicity Research, 31( 3), 327-333. doi:10.1007/s12640-016-9684-7
    • NLM

      Ravelli KG, Rosário B dos A, Camarini R, Hernandes MS, Britto LRG de. Intracerebroventricular streptozotocin as a model of Alzheimer’s disease: neurochemical and behavioral characterization in mice [Internet]. Neurotoxicity Research. 2017 ; 31( 3): 327-333.[citado 2024 maio 26 ] Available from: https://doi.org/10.1007/s12640-016-9684-7
    • Vancouver

      Ravelli KG, Rosário B dos A, Camarini R, Hernandes MS, Britto LRG de. Intracerebroventricular streptozotocin as a model of Alzheimer’s disease: neurochemical and behavioral characterization in mice [Internet]. Neurotoxicity Research. 2017 ; 31( 3): 327-333.[citado 2024 maio 26 ] Available from: https://doi.org/10.1007/s12640-016-9684-7
  • Source: Behavioural Brain Research. Unidade: ICB

    Assunto: FISIOLOGIA

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      SALAME, Samira et al. Distinct neuroplasticity processes are induced by different periods of acrobatic exercise training. Behavioural Brain Research, v. 308, p. 64-74, 2016Tradução . . Disponível em: https://doi.org/10.1016/j.bbr.2016.04.0296. Acesso em: 26 maio 2024.
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      Salame, S., Garcia, P. C., Real, C. C., Borborema, J., Mota-Ortiz, S. R., Britto, L. R. G. de, & Pires, R. S. (2016). Distinct neuroplasticity processes are induced by different periods of acrobatic exercise training. Behavioural Brain Research, 308, 64-74. doi:10.1016/j.bbr.2016.04.0296
    • NLM

      Salame S, Garcia PC, Real CC, Borborema J, Mota-Ortiz SR, Britto LRG de, Pires RS. Distinct neuroplasticity processes are induced by different periods of acrobatic exercise training [Internet]. Behavioural Brain Research. 2016 ; 308 64-74.[citado 2024 maio 26 ] Available from: https://doi.org/10.1016/j.bbr.2016.04.0296
    • Vancouver

      Salame S, Garcia PC, Real CC, Borborema J, Mota-Ortiz SR, Britto LRG de, Pires RS. Distinct neuroplasticity processes are induced by different periods of acrobatic exercise training [Internet]. Behavioural Brain Research. 2016 ; 308 64-74.[citado 2024 maio 26 ] Available from: https://doi.org/10.1016/j.bbr.2016.04.0296
  • Source: Translational Psychiatry. Unidade: ICB

    Subjects: FISIOLOGIA, FARMACOLOGIA

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      RESENDE, L. S. et al. Social stress in adolescents induces depression and brain-region-specific modulation of the transcription factor MAX. Translational Psychiatry, v. 6, n. 10, 2016Tradução . . Disponível em: https://doi.org/10.1038/tp.2016.202. Acesso em: 26 maio 2024.
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      Resende, L. S., Amaral, C. E., Soares, R. B. S., Alves, A. S., Alves-dos-Santos, L., Britto, L. R. G. de, & Chiavegatto, S. (2016). Social stress in adolescents induces depression and brain-region-specific modulation of the transcription factor MAX. Translational Psychiatry, 6( 10). doi:10.1038/tp.2016.202
    • NLM

      Resende LS, Amaral CE, Soares RBS, Alves AS, Alves-dos-Santos L, Britto LRG de, Chiavegatto S. Social stress in adolescents induces depression and brain-region-specific modulation of the transcription factor MAX [Internet]. Translational Psychiatry. 2016 ; 6( 10):[citado 2024 maio 26 ] Available from: https://doi.org/10.1038/tp.2016.202
    • Vancouver

      Resende LS, Amaral CE, Soares RBS, Alves AS, Alves-dos-Santos L, Britto LRG de, Chiavegatto S. Social stress in adolescents induces depression and brain-region-specific modulation of the transcription factor MAX [Internet]. Translational Psychiatry. 2016 ; 6( 10):[citado 2024 maio 26 ] Available from: https://doi.org/10.1038/tp.2016.202
  • Source: Scientific Reports. Unidade: ICB

    Assunto: FISIOLOGIA

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      KINJO, Erika R. et al. Pilocarpine-induced seizures trigger differential regulation of microRNA-stability related genes in rat hippocampal neurons. Scientific Reports, v. 6, n. 20969, p. 1-13, 2016Tradução . . Disponível em: https://doi.org/10.1038/srep20969. Acesso em: 26 maio 2024.
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      Kinjo, E. R., Higa, G. S. V., Santos, B. A., Sousa, E. de, Damico, M. V., Walter, L. T., et al. (2016). Pilocarpine-induced seizures trigger differential regulation of microRNA-stability related genes in rat hippocampal neurons. Scientific Reports, 6( 20969), 1-13. doi:10.1038/srep20969
    • NLM

      Kinjo ER, Higa GSV, Santos BA, Sousa E de, Damico MV, Walter LT, Morya E, Valle AC, Britto LRG de, Kihara AH. Pilocarpine-induced seizures trigger differential regulation of microRNA-stability related genes in rat hippocampal neurons [Internet]. Scientific Reports. 2016 ; 6( 20969): 1-13.[citado 2024 maio 26 ] Available from: https://doi.org/10.1038/srep20969
    • Vancouver

      Kinjo ER, Higa GSV, Santos BA, Sousa E de, Damico MV, Walter LT, Morya E, Valle AC, Britto LRG de, Kihara AH. Pilocarpine-induced seizures trigger differential regulation of microRNA-stability related genes in rat hippocampal neurons [Internet]. Scientific Reports. 2016 ; 6( 20969): 1-13.[citado 2024 maio 26 ] Available from: https://doi.org/10.1038/srep20969
  • Source: Growth Factors. Unidade: ICB

    Subjects: ANATOMIA, FISIOLOGIA, REGENERAÇÃO (FENOMENOS BIOLÓGICOS), AXÔNIOS, MIELINA DE ANIMAL, NERVO CIÁTICO, FATOR DE CRESCIMENTO NEURAL DE ANIMAL

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      SILVA, Joyce Teixeira da et al. Neural mobilization promotes nerve regeneration by nerve growth factor and myelin protein zero increased after sciatic nerve injury. Growth Factors, v. 33, n. 1, p. 1-6, 2015Tradução . . Disponível em: https://doi.org/10.3109/08977194.2014.953630. Acesso em: 26 maio 2024.
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      Silva, J. T. da, Santos, F. M. dos, Giardini, A. C., Martins, D. de O., Oliveira, M. E. de, Ciena, A. P., et al. (2015). Neural mobilization promotes nerve regeneration by nerve growth factor and myelin protein zero increased after sciatic nerve injury. Growth Factors, 33( 1), 1-6. doi:10.3109/08977194.2014.953630
    • NLM

      Silva JT da, Santos FM dos, Giardini AC, Martins D de O, Oliveira ME de, Ciena AP, Gutierrez VP, Watanabe I-sei, Britto LRG de, Chacur M. Neural mobilization promotes nerve regeneration by nerve growth factor and myelin protein zero increased after sciatic nerve injury [Internet]. Growth Factors. 2015 ; 33( 1): 1-6.[citado 2024 maio 26 ] Available from: https://doi.org/10.3109/08977194.2014.953630
    • Vancouver

      Silva JT da, Santos FM dos, Giardini AC, Martins D de O, Oliveira ME de, Ciena AP, Gutierrez VP, Watanabe I-sei, Britto LRG de, Chacur M. Neural mobilization promotes nerve regeneration by nerve growth factor and myelin protein zero increased after sciatic nerve injury [Internet]. Growth Factors. 2015 ; 33( 1): 1-6.[citado 2024 maio 26 ] Available from: https://doi.org/10.3109/08977194.2014.953630
  • Source: Autonomic Neuroscience: Basic and Clinical. Unidade: ICB

    Subjects: INSULINA, RATOS WISTAR, GLICEMIA

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      ALVES-WAGNER, Ana Barbara et al. Beta-adrenergic blockade increases GLUT4 and improves glycemic control in insulin-treated diabetic Wistar rats. Autonomic Neuroscience: Basic and Clinical, v. 193, p. 108-116, 2015Tradução . . Disponível em: https://doi.org/10.1016/j.autneu.2015.10.003. Acesso em: 26 maio 2024.
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      Alves-Wagner, A. B., Mori, R. C., Silva-Sabino, R., Fatima, L. A., Alves, A. da S., Britto, L. R. G. de, et al. (2015). Beta-adrenergic blockade increases GLUT4 and improves glycemic control in insulin-treated diabetic Wistar rats. Autonomic Neuroscience: Basic and Clinical, 193, 108-116. doi:10.1016/j.autneu.2015.10.003
    • NLM

      Alves-Wagner AB, Mori RC, Silva-Sabino R, Fatima LA, Alves A da S, Britto LRG de, Schaan BD'A, Machado UF. Beta-adrenergic blockade increases GLUT4 and improves glycemic control in insulin-treated diabetic Wistar rats [Internet]. Autonomic Neuroscience: Basic and Clinical. 2015 ; 193 108-116.[citado 2024 maio 26 ] Available from: https://doi.org/10.1016/j.autneu.2015.10.003
    • Vancouver

      Alves-Wagner AB, Mori RC, Silva-Sabino R, Fatima LA, Alves A da S, Britto LRG de, Schaan BD'A, Machado UF. Beta-adrenergic blockade increases GLUT4 and improves glycemic control in insulin-treated diabetic Wistar rats [Internet]. Autonomic Neuroscience: Basic and Clinical. 2015 ; 193 108-116.[citado 2024 maio 26 ] Available from: https://doi.org/10.1016/j.autneu.2015.10.003
  • Source: Brain Research. Unidade: ICB

    Subjects: FISIOLOGIA, WESTERN BLOTTING, IMUNOHISTOQUIMICA, PLASTICIDADE NEURONAL

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      REAL, Caroline Cristiano et al. Different protocols of treadmill exercise induce distinct neuroplastic effects in rat brain motor areas. Brain Research, v. 1624, p. 188-198, 2015Tradução . . Disponível em: https://doi.org/10.1016/j.brainres.2015.06.052. Acesso em: 26 maio 2024.
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      Real, C. C., Garcia, P. C., Britto, L. R. G. de, & Pires, R. S. (2015). Different protocols of treadmill exercise induce distinct neuroplastic effects in rat brain motor areas. Brain Research, 1624, 188-198. doi:10.1016/j.brainres.2015.06.052
    • NLM

      Real CC, Garcia PC, Britto LRG de, Pires RS. Different protocols of treadmill exercise induce distinct neuroplastic effects in rat brain motor areas [Internet]. Brain Research. 2015 ; 1624 188-198.[citado 2024 maio 26 ] Available from: https://doi.org/10.1016/j.brainres.2015.06.052
    • Vancouver

      Real CC, Garcia PC, Britto LRG de, Pires RS. Different protocols of treadmill exercise induce distinct neuroplastic effects in rat brain motor areas [Internet]. Brain Research. 2015 ; 1624 188-198.[citado 2024 maio 26 ] Available from: https://doi.org/10.1016/j.brainres.2015.06.052
  • Source: Molecular Brain. Unidade: ICB

    Subjects: FISIOLOGIA, BIOFÍSICA, ISQUEMIA CEREBRAL, CAMUNDONGOS

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      CHEN, Wenliang et al. TRPM7 inhibitor carvacrol protects brain from neonatal hypoxic-ischemic injury. Molecular Brain, v. 8, p. 1-13, 2015Tradução . . Disponível em: https://doi.org/10.1186/s13041-015-0102-5. Acesso em: 26 maio 2024.
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      Chen, W., Xu, B., Xiao, A., Liu, L., Fang, X., Liu, R., et al. (2015). TRPM7 inhibitor carvacrol protects brain from neonatal hypoxic-ischemic injury. Molecular Brain, 8, 1-13. doi:10.1186/s13041-015-0102-5
    • NLM

      Chen W, Xu B, Xiao A, Liu L, Fang X, Liu R, Turlova E, Barszczyk A, Zhong X, Sun CLF, Britto LRG de, Feng Z-P, Sun H-S. TRPM7 inhibitor carvacrol protects brain from neonatal hypoxic-ischemic injury [Internet]. Molecular Brain. 2015 ; 8 1-13.[citado 2024 maio 26 ] Available from: https://doi.org/10.1186/s13041-015-0102-5
    • Vancouver

      Chen W, Xu B, Xiao A, Liu L, Fang X, Liu R, Turlova E, Barszczyk A, Zhong X, Sun CLF, Britto LRG de, Feng Z-P, Sun H-S. TRPM7 inhibitor carvacrol protects brain from neonatal hypoxic-ischemic injury [Internet]. Molecular Brain. 2015 ; 8 1-13.[citado 2024 maio 26 ] Available from: https://doi.org/10.1186/s13041-015-0102-5
  • Source: Journal of Neuroinflammation. Unidades: ICB, FMRP

    Subjects: FISIOLOGIA, FARMACOLOGIA

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    • ABNT

      HERNANDES, Marina S. et al. The role of Nox2-derived ROS in the development of cognitive impairment after sepsis. Journal of Neuroinflammation, v. 11, n. 01, p. 01-12, 2014Tradução . . Disponível em: https://doi.org/10.1186/1742-2094-11-36. Acesso em: 26 maio 2024.
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      Hernandes, M. S., D'Ávila, J. C., Trevelin, S. C., Reis, P. A., Kinjo, E. R., Lopes, L. R., et al. (2014). The role of Nox2-derived ROS in the development of cognitive impairment after sepsis. Journal of Neuroinflammation, 11( 01), 01-12. doi:10.1186/1742-2094-11-36
    • NLM

      Hernandes MS, D'Ávila JC, Trevelin SC, Reis PA, Kinjo ER, Lopes LR, Castro-Faria-Neto HC, Cunha F de Q, Britto LRG de, Bozza FA. The role of Nox2-derived ROS in the development of cognitive impairment after sepsis [Internet]. Journal of Neuroinflammation. 2014 ; 11( 01): 01-12.[citado 2024 maio 26 ] Available from: https://doi.org/10.1186/1742-2094-11-36
    • Vancouver

      Hernandes MS, D'Ávila JC, Trevelin SC, Reis PA, Kinjo ER, Lopes LR, Castro-Faria-Neto HC, Cunha F de Q, Britto LRG de, Bozza FA. The role of Nox2-derived ROS in the development of cognitive impairment after sepsis [Internet]. Journal of Neuroinflammation. 2014 ; 11( 01): 01-12.[citado 2024 maio 26 ] Available from: https://doi.org/10.1186/1742-2094-11-36
  • Source: PLOS ONE. Unidade: ICB

    Assunto: FISIOLOGIA

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    • ABNT

      KINJO, Erika et al. Reciprocal regulation of epileptiform neuronal oscillations and electrical synapses in the rat hippocampus. PLOS ONE, v. 9, n. 10, p. 1-12, 2014Tradução . . Disponível em: https://doi.org/10.1371/journal.pone.0109149. Acesso em: 26 maio 2024.
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      Kinjo, E., Higa, G. S. V., Morya, E., Valle, A. C., Kihara, A. H., & Britto, L. R. G. de. (2014). Reciprocal regulation of epileptiform neuronal oscillations and electrical synapses in the rat hippocampus. PLOS ONE, 9( 10), 1-12. doi:10.1371/journal.pone.0109149
    • NLM

      Kinjo E, Higa GSV, Morya E, Valle AC, Kihara AH, Britto LRG de. Reciprocal regulation of epileptiform neuronal oscillations and electrical synapses in the rat hippocampus [Internet]. PLOS ONE. 2014 ; 9( 10): 1-12.[citado 2024 maio 26 ] Available from: https://doi.org/10.1371/journal.pone.0109149
    • Vancouver

      Kinjo E, Higa GSV, Morya E, Valle AC, Kihara AH, Britto LRG de. Reciprocal regulation of epileptiform neuronal oscillations and electrical synapses in the rat hippocampus [Internet]. PLOS ONE. 2014 ; 9( 10): 1-12.[citado 2024 maio 26 ] Available from: https://doi.org/10.1371/journal.pone.0109149
  • Source: Journal of Neuroscience. Unidade: ICB

    Assunto: FISIOLOGIA

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      DE PASQUALE, Roberto et al. LTP and LTD in the visual cortex require the activation of NOX2. Journal of Neuroscience, v. 34, n. 38, p. 12778-12787, 2014Tradução . . Disponível em: https://doi.org/10.1523/JNEUROSCI.1414-14.2014. Acesso em: 26 maio 2024.
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      De Pasquale, R., Beckhauser, T. F., Hernandes, M. S., & Britto, L. R. G. de. (2014). LTP and LTD in the visual cortex require the activation of NOX2. Journal of Neuroscience, 34( 38), 12778-12787. doi:10.1523/JNEUROSCI.1414-14.2014
    • NLM

      De Pasquale R, Beckhauser TF, Hernandes MS, Britto LRG de. LTP and LTD in the visual cortex require the activation of NOX2 [Internet]. Journal of Neuroscience. 2014 ; 34( 38): 12778-12787.[citado 2024 maio 26 ] Available from: https://doi.org/10.1523/JNEUROSCI.1414-14.2014
    • Vancouver

      De Pasquale R, Beckhauser TF, Hernandes MS, Britto LRG de. LTP and LTD in the visual cortex require the activation of NOX2 [Internet]. Journal of Neuroscience. 2014 ; 34( 38): 12778-12787.[citado 2024 maio 26 ] Available from: https://doi.org/10.1523/JNEUROSCI.1414-14.2014
  • Source: Journal of Neurotrauma. Unidades: FO, ICB

    Subjects: LASER NÃO CIRÚRGICO, NERVO TRIGÊMEO

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      MARTINS, Daniel de Oliveira et al. Laser therapy and the pain-related behavior after injury of the inferior alveolar nerve: possible involvement of neurotrophins. Journal of Neurotrauma, v. 30, n. 6, p. 480-486, 2013Tradução . . Disponível em: https://doi.org/10.1089/neu.2012.2603. Acesso em: 26 maio 2024.
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      Martins, D. de O., Santos, F. M. dos, Oliveira, M. E. de, Britto, L. R. G. de, Lemos, J. B. D., & Chacur, M. (2013). Laser therapy and the pain-related behavior after injury of the inferior alveolar nerve: possible involvement of neurotrophins. Journal of Neurotrauma, 30( 6), 480-486. doi:10.1089/neu.2012.2603
    • NLM

      Martins D de O, Santos FM dos, Oliveira ME de, Britto LRG de, Lemos JBD, Chacur M. Laser therapy and the pain-related behavior after injury of the inferior alveolar nerve: possible involvement of neurotrophins [Internet]. Journal of Neurotrauma. 2013 ; 30( 6): 480-486.[citado 2024 maio 26 ] Available from: https://doi.org/10.1089/neu.2012.2603
    • Vancouver

      Martins D de O, Santos FM dos, Oliveira ME de, Britto LRG de, Lemos JBD, Chacur M. Laser therapy and the pain-related behavior after injury of the inferior alveolar nerve: possible involvement of neurotrophins [Internet]. Journal of Neurotrauma. 2013 ; 30( 6): 480-486.[citado 2024 maio 26 ] Available from: https://doi.org/10.1089/neu.2012.2603

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