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HAMASAKI, Mike Yoshio et al. Pathophysiological aspects of neonatal anoxia andtemporal expression of S100β in different brain regions. NeuroReport, v. 34, n. 11, p. 575-582, 2023Tradução . . Disponível em: https://doi.org/10.1097/WNR.0000000000001927. Acesso em: 16 nov. 2024.
APA
Hamasaki, M. Y., Mendes, C., Batagello, D. S., Hirata, M. H., Britto, L. R. G. de, & Nogueira, M. I. (2023). Pathophysiological aspects of neonatal anoxia andtemporal expression of S100β in different brain regions. NeuroReport, 34( 11), 575-582. doi:10.1097/WNR.0000000000001927
NLM
Hamasaki MY, Mendes C, Batagello DS, Hirata MH, Britto LRG de, Nogueira MI. Pathophysiological aspects of neonatal anoxia andtemporal expression of S100β in different brain regions [Internet]. NeuroReport. 2023 ; 34( 11): 575-582.[citado 2024 nov. 16 ] Available from: https://doi.org/10.1097/WNR.0000000000001927
Vancouver
Hamasaki MY, Mendes C, Batagello DS, Hirata MH, Britto LRG de, Nogueira MI. Pathophysiological aspects of neonatal anoxia andtemporal expression of S100β in different brain regions [Internet]. NeuroReport. 2023 ; 34( 11): 575-582.[citado 2024 nov. 16 ] Available from: https://doi.org/10.1097/WNR.0000000000001927
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SILVA, Jean Bezerra et al. Purinergic signaling in Parkinson’s disease. Purinergic signaling in neurodevelopment, neuroinflammation and neurodegeneration. Tradução . Cham: Springer, 2023. . . Acesso em: 16 nov. 2024.
APA
Silva, J. B., Ferreira, A. F. F., Glaser, T., Ulrich, H., & Britto, L. R. G. de. (2023). Purinergic signaling in Parkinson’s disease. In Purinergic signaling in neurodevelopment, neuroinflammation and neurodegeneration. Cham: Springer.
NLM
Silva JB, Ferreira AFF, Glaser T, Ulrich H, Britto LRG de. Purinergic signaling in Parkinson’s disease. In: Purinergic signaling in neurodevelopment, neuroinflammation and neurodegeneration. Cham: Springer; 2023. [citado 2024 nov. 16 ]
Vancouver
Silva JB, Ferreira AFF, Glaser T, Ulrich H, Britto LRG de. Purinergic signaling in Parkinson’s disease. In: Purinergic signaling in neurodevelopment, neuroinflammation and neurodegeneration. Cham: Springer; 2023. [citado 2024 nov. 16 ]
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YONAMINE, Caio Yogi et al. Postmortem brains from subjects with Diabetes Mellitus display reduced GLUT4 expression and soma area in hippocampal neurons: potential involvement of inflammation. Cells, v. 12, n. 9, p. 1-21, 2023Tradução . . Disponível em: https://doi.org/10.3390/cells12091250. Acesso em: 16 nov. 2024.
APA
Yonamine, C. Y., Passarelli, M., Suemoto, C. K., Pasqualucci, C. A., Jacob-Filho, W., Alves, V. A. F., et al. (2023). Postmortem brains from subjects with Diabetes Mellitus display reduced GLUT4 expression and soma area in hippocampal neurons: potential involvement of inflammation. Cells, 12( 9), 1-21. doi:10.3390/cells12091250
NLM
Yonamine CY, Passarelli M, Suemoto CK, Pasqualucci CA, Jacob-Filho W, Alves VAF, Marie SKN, Giannella MLC, Britto LR, Machado UF. Postmortem brains from subjects with Diabetes Mellitus display reduced GLUT4 expression and soma area in hippocampal neurons: potential involvement of inflammation [Internet]. Cells. 2023 ; 12( 9): 1-21.[citado 2024 nov. 16 ] Available from: https://doi.org/10.3390/cells12091250
Vancouver
Yonamine CY, Passarelli M, Suemoto CK, Pasqualucci CA, Jacob-Filho W, Alves VAF, Marie SKN, Giannella MLC, Britto LR, Machado UF. Postmortem brains from subjects with Diabetes Mellitus display reduced GLUT4 expression and soma area in hippocampal neurons: potential involvement of inflammation [Internet]. Cells. 2023 ; 12( 9): 1-21.[citado 2024 nov. 16 ] Available from: https://doi.org/10.3390/cells12091250
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SANTAMARINA, Aline Boveto et al. The symbiotic effect of a new nutraceutical with Yeast β-Glucan, Prebiotics, Minerals, and Silybum marianum (Silymarin) for recovering metabolic homeostasis via Pgc-1α, Il-6, and Il-10 gene expression in a Type-2 Diabetes Obesity model. Antioxidants, v. 11, p. 1-24, 2022Tradução . . Disponível em: https://doi.org/10.3390/antiox11030447. Acesso em: 16 nov. 2024.
APA
Santamarina, A. B., Moraes, R. C. M., Nehmi Filho, V., Murata, G. M., Freitas, J. A. de, Miranda, D. A. de, et al. (2022). The symbiotic effect of a new nutraceutical with Yeast β-Glucan, Prebiotics, Minerals, and Silybum marianum (Silymarin) for recovering metabolic homeostasis via Pgc-1α, Il-6, and Il-10 gene expression in a Type-2 Diabetes Obesity model. Antioxidants, 11, 1-24. doi:10.3390/antiox11030447
NLM
Santamarina AB, Moraes RCM, Nehmi Filho V, Murata GM, Freitas JA de, Miranda DA de, Cerqueira ARA, Costa SKP, Ferreira AFF, Britto LRG de. The symbiotic effect of a new nutraceutical with Yeast β-Glucan, Prebiotics, Minerals, and Silybum marianum (Silymarin) for recovering metabolic homeostasis via Pgc-1α, Il-6, and Il-10 gene expression in a Type-2 Diabetes Obesity model [Internet]. Antioxidants. 2022 ; 11 1-24.[citado 2024 nov. 16 ] Available from: https://doi.org/10.3390/antiox11030447
Vancouver
Santamarina AB, Moraes RCM, Nehmi Filho V, Murata GM, Freitas JA de, Miranda DA de, Cerqueira ARA, Costa SKP, Ferreira AFF, Britto LRG de. The symbiotic effect of a new nutraceutical with Yeast β-Glucan, Prebiotics, Minerals, and Silybum marianum (Silymarin) for recovering metabolic homeostasis via Pgc-1α, Il-6, and Il-10 gene expression in a Type-2 Diabetes Obesity model [Internet]. Antioxidants. 2022 ; 11 1-24.[citado 2024 nov. 16 ] Available from: https://doi.org/10.3390/antiox11030447
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FARIA, Daniele de Paula et al. Cannabidiol treatment improves glucose metabolism and memory in sreptozotocin-induced Alzheimer’s disease rat model: a proof-of-concept study. International Journal of Molecular Sciences, v. 23. n. 3, p. 1-10, 2022Tradução . . Disponível em: https://doi.org/10.3390/ijms23031076. Acesso em: 16 nov. 2024.
APA
Faria, D. de P., Souza, L. E. de, Duran, F. L. de S., Buchpiguel, C. A., Britto, L. R. G. de, Crippa, J. A. de S., et al. (2022). Cannabidiol treatment improves glucose metabolism and memory in sreptozotocin-induced Alzheimer’s disease rat model: a proof-of-concept study. International Journal of Molecular Sciences, 23. n. 3, 1-10. doi:10.3390/ijms23031076
NLM
Faria D de P, Souza LE de, Duran FL de S, Buchpiguel CA, Britto LRG de, Crippa JA de S, Busatto Filho G, Gregório CCR. Cannabidiol treatment improves glucose metabolism and memory in sreptozotocin-induced Alzheimer’s disease rat model: a proof-of-concept study [Internet]. International Journal of Molecular Sciences. 2022 ; 23. n. 3 1-10.[citado 2024 nov. 16 ] Available from: https://doi.org/10.3390/ijms23031076
Vancouver
Faria D de P, Souza LE de, Duran FL de S, Buchpiguel CA, Britto LRG de, Crippa JA de S, Busatto Filho G, Gregório CCR. Cannabidiol treatment improves glucose metabolism and memory in sreptozotocin-induced Alzheimer’s disease rat model: a proof-of-concept study [Internet]. International Journal of Molecular Sciences. 2022 ; 23. n. 3 1-10.[citado 2024 nov. 16 ] Available from: https://doi.org/10.3390/ijms23031076
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MATIELO, Heloísa Alonso et al. Electrical stimulation of the posterior insula induces mechanical analgesia in a rodent model of neuropathic pain by modulating GABAergic signaling and activity in the pain circuitry. Brain Research, 2021Tradução . . Disponível em: https://doi.org/10.1016/j.brainres.2020.147237. Acesso em: 16 nov. 2024.
APA
Matielo, H. A., Gonçalves, E. S., Campos, M., Oliveira, V. R. da S., Toniolo, E. F., Alves, A. da S., et al. (2021). Electrical stimulation of the posterior insula induces mechanical analgesia in a rodent model of neuropathic pain by modulating GABAergic signaling and activity in the pain circuitry. Brain Research. doi:10.1016/j.brainres.2020.147237
NLM
Matielo HA, Gonçalves ES, Campos M, Oliveira VR da S, Toniolo EF, Alves A da S, Lebrun I, Andrade DCA de, Teixeira M jacobsen, Britto LRG de, Hamani C, Dale CS. Electrical stimulation of the posterior insula induces mechanical analgesia in a rodent model of neuropathic pain by modulating GABAergic signaling and activity in the pain circuitry [Internet]. Brain Research. 2021 ;[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.brainres.2020.147237
Vancouver
Matielo HA, Gonçalves ES, Campos M, Oliveira VR da S, Toniolo EF, Alves A da S, Lebrun I, Andrade DCA de, Teixeira M jacobsen, Britto LRG de, Hamani C, Dale CS. Electrical stimulation of the posterior insula induces mechanical analgesia in a rodent model of neuropathic pain by modulating GABAergic signaling and activity in the pain circuitry [Internet]. Brain Research. 2021 ;[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.brainres.2020.147237
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REAL, Caroline Cristiano et al. Active lifestyle enhances protein expression profile in subjects with Lewy body pathology. Dementia & Neuropsychologia, v. 15, n. 1, p. 41-50, 2021Tradução . . Disponível em: https://doi.org/10.1590/1980-57642021dn15-010004. Acesso em: 16 nov. 2024.
APA
Real, C. C., Suemoto, C. K., Binda, K. H., Grinberg, L. T., Pasqualucci, C. A., Jacob-Filho, W., et al. (2021). Active lifestyle enhances protein expression profile in subjects with Lewy body pathology. Dementia & Neuropsychologia, 15( 1), 41-50. doi:10.1590/1980-57642021dn15-010004
NLM
Real CC, Suemoto CK, Binda KH, Grinberg LT, Pasqualucci CA, Jacob-Filho W, Ferretti-Rebustini RE de L, Nitrini R, Leite REP, Britto LRG de. Active lifestyle enhances protein expression profile in subjects with Lewy body pathology [Internet]. Dementia & Neuropsychologia. 2021 ; 15( 1): 41-50.[citado 2024 nov. 16 ] Available from: https://doi.org/10.1590/1980-57642021dn15-010004
Vancouver
Real CC, Suemoto CK, Binda KH, Grinberg LT, Pasqualucci CA, Jacob-Filho W, Ferretti-Rebustini RE de L, Nitrini R, Leite REP, Britto LRG de. Active lifestyle enhances protein expression profile in subjects with Lewy body pathology [Internet]. Dementia & Neuropsychologia. 2021 ; 15( 1): 41-50.[citado 2024 nov. 16 ] Available from: https://doi.org/10.1590/1980-57642021dn15-010004
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OLIVEIRA, Victhor Teixeira de et al. Involvement of substance P, osteopontin and satellite glial cells on photobiomodulation-induced antinociceptive effect in an experimental model of dentin hypersensitivity. Lasers in Medical Science, p. 9 , 2021Tradução . . Disponível em: https://doi.org/10.1007/s10103-021-03246-9. Acesso em: 16 nov. 2024.
APA
Oliveira, V. T. de, Ferrara Junior, J. I., Matielo, H. A., Alves, A. da S., Britto, L. R. G. de, Aranha, A. C. C., & Dale, C. S. (2021). Involvement of substance P, osteopontin and satellite glial cells on photobiomodulation-induced antinociceptive effect in an experimental model of dentin hypersensitivity. Lasers in Medical Science, 9 . doi:10.1007/s10103-021-03246-9
NLM
Oliveira VT de, Ferrara Junior JI, Matielo HA, Alves A da S, Britto LRG de, Aranha ACC, Dale CS. Involvement of substance P, osteopontin and satellite glial cells on photobiomodulation-induced antinociceptive effect in an experimental model of dentin hypersensitivity [Internet]. Lasers in Medical Science. 2021 ;9 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1007/s10103-021-03246-9
Vancouver
Oliveira VT de, Ferrara Junior JI, Matielo HA, Alves A da S, Britto LRG de, Aranha ACC, Dale CS. Involvement of substance P, osteopontin and satellite glial cells on photobiomodulation-induced antinociceptive effect in an experimental model of dentin hypersensitivity [Internet]. Lasers in Medical Science. 2021 ;9 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1007/s10103-021-03246-9
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FERREIRA, Ana Flávia Fernandes e SINGULANI, Monique Patricio e BRITTO, Luiz Roberto Giorgetti de. Mitochondrial abnormalities in neurological disorders. Mithocondrial metabolism. Tradução . Amsterdam: Esevier All Inc., 2021. p. 316 . Disponível em: https://doi.org/10.1016/B978-0-12-822416-8.00012-9. Acesso em: 16 nov. 2024.
APA
Ferreira, A. F. F., Singulani, M. P., & Britto, L. R. G. de. (2021). Mitochondrial abnormalities in neurological disorders. In Mithocondrial metabolism (p. 316 ). Amsterdam: Esevier All Inc. doi:10.1016/B978-0-12-822416-8.00012-9
NLM
Ferreira AFF, Singulani MP, Britto LRG de. Mitochondrial abnormalities in neurological disorders [Internet]. In: Mithocondrial metabolism. Amsterdam: Esevier All Inc.; 2021. p. 316 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/B978-0-12-822416-8.00012-9
Vancouver
Ferreira AFF, Singulani MP, Britto LRG de. Mitochondrial abnormalities in neurological disorders [Internet]. In: Mithocondrial metabolism. Amsterdam: Esevier All Inc.; 2021. p. 316 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/B978-0-12-822416-8.00012-9
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SAMPAIO, Adaneuda Silva Britto et al. Neuroplasticity induced by the retention period of a complex motor skill learning in rats. Behavioural Brain Research, v. 414, p. 1-10, 2021Tradução . . Disponível em: https://doi.org/10.1016/j.bbr.2021.113480DOI. Acesso em: 16 nov. 2024.
APA
Sampaio, A. S. B., Real, C. C., Gutierrez, R. M. S., Singulani, M. P., Alouche, S. R., Pires, R. S., & Britto, L. R. G. de. (2021). Neuroplasticity induced by the retention period of a complex motor skill learning in rats. Behavioural Brain Research, 414, 1-10. doi:10.1016/j.bbr.2021.113480DOI
NLM
Sampaio ASB, Real CC, Gutierrez RMS, Singulani MP, Alouche SR, Pires RS, Britto LRG de. Neuroplasticity induced by the retention period of a complex motor skill learning in rats [Internet]. Behavioural Brain Research. 2021 ; 414 1-10.[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.bbr.2021.113480DOI
Vancouver
Sampaio ASB, Real CC, Gutierrez RMS, Singulani MP, Alouche SR, Pires RS, Britto LRG de. Neuroplasticity induced by the retention period of a complex motor skill learning in rats [Internet]. Behavioural Brain Research. 2021 ; 414 1-10.[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.bbr.2021.113480DOI
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SINGULANI, Monique Patricio et al. Impairment of PGC-1α-mediated mitochondrial biogenesis precedes mitochondrial dysfunction and Alzheimer's pathology in the 3xTg mouse model of Alzheimer's disease. Experimental Gerontology, v. 133, p. 10 , 2020Tradução . . Disponível em: https://doi.org/10.1016/j.exger.2020.110882. Acesso em: 16 nov. 2024.
APA
Singulani, M. P., Pereira, C. P. M., Ferreira, A. F. F., Garcia, P. C., Ferrari, G. D., Alberici, L. C., & Britto, L. R. G. de. (2020). Impairment of PGC-1α-mediated mitochondrial biogenesis precedes mitochondrial dysfunction and Alzheimer's pathology in the 3xTg mouse model of Alzheimer's disease. Experimental Gerontology, 133, 10 . doi:10.1016/j.exger.2020.110882
NLM
Singulani MP, Pereira CPM, Ferreira AFF, Garcia PC, Ferrari GD, Alberici LC, Britto LRG de. Impairment of PGC-1α-mediated mitochondrial biogenesis precedes mitochondrial dysfunction and Alzheimer's pathology in the 3xTg mouse model of Alzheimer's disease [Internet]. Experimental Gerontology. 2020 ; 133 10 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.exger.2020.110882
Vancouver
Singulani MP, Pereira CPM, Ferreira AFF, Garcia PC, Ferrari GD, Alberici LC, Britto LRG de. Impairment of PGC-1α-mediated mitochondrial biogenesis precedes mitochondrial dysfunction and Alzheimer's pathology in the 3xTg mouse model of Alzheimer's disease [Internet]. Experimental Gerontology. 2020 ; 133 10 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.exger.2020.110882
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ROCHA, Priscila de Abreu et al. Effects of selective inhibition of nNOS and iNOS on neuropathic pain in rats. Molecular and Cellular Neuroscience, v. 105, p. 8 , 2020Tradução . . Disponível em: https://doi.org/10.1016/j.mcn.2020.103497. Acesso em: 16 nov. 2024.
APA
Rocha, P. de A., Ferreira, A. F. B., Silva, J. T. da, Alves, A. S., Martins, D. de O., Britto, L. R. G. de, & Chacur, M. (2020). Effects of selective inhibition of nNOS and iNOS on neuropathic pain in rats. Molecular and Cellular Neuroscience, 105, 8 . doi:10.1016/j.mcn.2020.103497
NLM
Rocha P de A, Ferreira AFB, Silva JT da, Alves AS, Martins D de O, Britto LRG de, Chacur M. Effects of selective inhibition of nNOS and iNOS on neuropathic pain in rats [Internet]. Molecular and Cellular Neuroscience. 2020 ; 105 8 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.mcn.2020.103497
Vancouver
Rocha P de A, Ferreira AFB, Silva JT da, Alves AS, Martins D de O, Britto LRG de, Chacur M. Effects of selective inhibition of nNOS and iNOS on neuropathic pain in rats [Internet]. Molecular and Cellular Neuroscience. 2020 ; 105 8 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.mcn.2020.103497
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SILVA, Tiago Guardia de Souza e et al. Oral treatment with royal jelly improves memory and presents neuroprotective effects on icv-STZ rat model of sporadic Alzheimer's disease. Heliyon, v. 6, n. 1, p. 20 , 2020Tradução . . Disponível em: https://doi.org/10.1016/j.heliyon.2020.e03281. Acesso em: 16 nov. 2024.
APA
Silva, T. G. de S. e, Paulo, M. E. F. do V. de, Silva, J. R. M. da, Alves, A. da S., Britto, L. R. G. de, Xavier, G. F., & Sandoval, M. R. L. (2020). Oral treatment with royal jelly improves memory and presents neuroprotective effects on icv-STZ rat model of sporadic Alzheimer's disease. Heliyon, 6( 1), 20 . doi:10.1016/j.heliyon.2020.e03281
NLM
Silva TG de S e, Paulo MEF do V de, Silva JRM da, Alves A da S, Britto LRG de, Xavier GF, Sandoval MRL. Oral treatment with royal jelly improves memory and presents neuroprotective effects on icv-STZ rat model of sporadic Alzheimer's disease [Internet]. Heliyon. 2020 ; 6( 1): 20 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.heliyon.2020.e03281
Vancouver
Silva TG de S e, Paulo MEF do V de, Silva JRM da, Alves A da S, Britto LRG de, Xavier GF, Sandoval MRL. Oral treatment with royal jelly improves memory and presents neuroprotective effects on icv-STZ rat model of sporadic Alzheimer's disease [Internet]. Heliyon. 2020 ; 6( 1): 20 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.heliyon.2020.e03281
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FERREIRA, Ana Flávia Fernandes et al. Physical exercise protects against mitochondria alterations in the 6-hidroxydopamine rat model of Parkinson’s disease. Behavioural Brain Research, v. 387, p. 11 , 2020Tradução . . Disponível em: https://doi.org/10.1016/j.bbr.2020.112607. Acesso em: 16 nov. 2024.
APA
Ferreira, A. F. F., Binda, K. H., Singulani, M. P., Pereira, C. P. M., Ferrari, G. D., Alberici, L. C., et al. (2020). Physical exercise protects against mitochondria alterations in the 6-hidroxydopamine rat model of Parkinson’s disease. Behavioural Brain Research, 387, 11 . doi:10.1016/j.bbr.2020.112607
NLM
Ferreira AFF, Binda KH, Singulani MP, Pereira CPM, Ferrari GD, Alberici LC, Gregório CCR, Britto LRG de. Physical exercise protects against mitochondria alterations in the 6-hidroxydopamine rat model of Parkinson’s disease [Internet]. Behavioural Brain Research. 2020 ; 387 11 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.bbr.2020.112607
Vancouver
Ferreira AFF, Binda KH, Singulani MP, Pereira CPM, Ferrari GD, Alberici LC, Gregório CCR, Britto LRG de. Physical exercise protects against mitochondria alterations in the 6-hidroxydopamine rat model of Parkinson’s disease [Internet]. Behavioural Brain Research. 2020 ; 387 11 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.bbr.2020.112607
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BINDA, Karina Henrique et al. Antinociceptive effects of treadmill exercise in a rat model of Parkinson's disease: The role of cannabinoid and opioid receptors. Brain Research, p. 12 , 2020Tradução . . Disponível em: https://doi.org/10.1016/j.brainres.2019.146521. Acesso em: 16 nov. 2024.
APA
Binda, K. H., Gregório, C. C. R., Ferreira, A. F. F., Britto, L. R. G. de, & Chacur, M. (2020). Antinociceptive effects of treadmill exercise in a rat model of Parkinson's disease: The role of cannabinoid and opioid receptors. Brain Research, 12 . doi:10.1016/j.brainres.2019.146521
NLM
Binda KH, Gregório CCR, Ferreira AFF, Britto LRG de, Chacur M. Antinociceptive effects of treadmill exercise in a rat model of Parkinson's disease: The role of cannabinoid and opioid receptors [Internet]. Brain Research. 2020 ; 12 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.brainres.2019.146521
Vancouver
Binda KH, Gregório CCR, Ferreira AFF, Britto LRG de, Chacur M. Antinociceptive effects of treadmill exercise in a rat model of Parkinson's disease: The role of cannabinoid and opioid receptors [Internet]. Brain Research. 2020 ; 12 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.brainres.2019.146521
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HIRATA, Rafael Yutaka Scalize et al. Chronic corticosterone increases ΔFOSB and CRFR1 immunoreactivity in brain regions that modulate aversive conditioning. Behavioural Brain Research, v. 356, p. 107-119, 2019Tradução . . Disponível em: https://doi.org/10.1016/j.bbr.2018.08.011. Acesso em: 16 nov. 2024.
APA
Hirata, R. Y. S., Santos, T. B. dos, Andrade, J. S. de, Maluf, L. L. S., Antunes, H. K. M., Britto, L. R. G. de, et al. (2019). Chronic corticosterone increases ΔFOSB and CRFR1 immunoreactivity in brain regions that modulate aversive conditioning. Behavioural Brain Research, 356, 107-119. doi:10.1016/j.bbr.2018.08.011
NLM
Hirata RYS, Santos TB dos, Andrade JS de, Maluf LLS, Antunes HKM, Britto LRG de, Céspedes IC, Viana M de B. Chronic corticosterone increases ΔFOSB and CRFR1 immunoreactivity in brain regions that modulate aversive conditioning [Internet]. Behavioural Brain Research. 2019 ; 356 107-119.[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.bbr.2018.08.011
Vancouver
Hirata RYS, Santos TB dos, Andrade JS de, Maluf LLS, Antunes HKM, Britto LRG de, Céspedes IC, Viana M de B. Chronic corticosterone increases ΔFOSB and CRFR1 immunoreactivity in brain regions that modulate aversive conditioning [Internet]. Behavioural Brain Research. 2019 ; 356 107-119.[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.bbr.2018.08.011
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RODRIGUES, Laís Damasceno et al. Cardiovascular alterations in rats with Parkinsonism induced by 6-OHDA and treated with Domperidone. Scientific Reports, v. 9, n. 1, p. 12 , 2019Tradução . . Disponível em: https://doi.org/10.1038/s41598-019-45518-z. Acesso em: 16 nov. 2024.
APA
Rodrigues, L. D., Oliveira, L. F., Shinoda, L. H. C., Bahi, C. A. S., Abreu, J. F. F. de, Ferraz, H. B., et al. (2019). Cardiovascular alterations in rats with Parkinsonism induced by 6-OHDA and treated with Domperidone. Scientific Reports, 9( 1), 12 . doi:10.1038/s41598-019-45518-z
NLM
Rodrigues LD, Oliveira LF, Shinoda LHC, Bahi CAS, Abreu JFF de, Ferraz HB, Britto LRG de, Scorza FA. Cardiovascular alterations in rats with Parkinsonism induced by 6-OHDA and treated with Domperidone [Internet]. Scientific Reports. 2019 ; 9( 1): 12 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1038/s41598-019-45518-z
Vancouver
Rodrigues LD, Oliveira LF, Shinoda LHC, Bahi CAS, Abreu JFF de, Ferraz HB, Britto LRG de, Scorza FA. Cardiovascular alterations in rats with Parkinsonism induced by 6-OHDA and treated with Domperidone [Internet]. Scientific Reports. 2019 ; 9( 1): 12 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1038/s41598-019-45518-z
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PACHECO, Larissa Helena Lôbo Torres et al. Early postnatal tobacco smoke exposure triggers anxiety-like behavior and decreases synaptic proteins even after a long exposure-free period in mice. Brain Research, v. 1707, p. 99-106, 2019Tradução . . Disponível em: https://doi.org/10.1016/j.brainres.2018.11.022. Acesso em: 16 nov. 2024.
APA
Pacheco, L. H. L. T., Garcia, R. C. T., Blois, A. M. M., Pacheco-Neto, M., Camarini, R., Britto, L. R. G. de, & Marcourakis, T. (2019). Early postnatal tobacco smoke exposure triggers anxiety-like behavior and decreases synaptic proteins even after a long exposure-free period in mice. Brain Research, 1707, 99-106. doi:10.1016/j.brainres.2018.11.022
NLM
Pacheco LHLT, Garcia RCT, Blois AMM, Pacheco-Neto M, Camarini R, Britto LRG de, Marcourakis T. Early postnatal tobacco smoke exposure triggers anxiety-like behavior and decreases synaptic proteins even after a long exposure-free period in mice [Internet]. Brain Research. 2019 ; 1707 99-106.[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.brainres.2018.11.022
Vancouver
Pacheco LHLT, Garcia RCT, Blois AMM, Pacheco-Neto M, Camarini R, Britto LRG de, Marcourakis T. Early postnatal tobacco smoke exposure triggers anxiety-like behavior and decreases synaptic proteins even after a long exposure-free period in mice [Internet]. Brain Research. 2019 ; 1707 99-106.[citado 2024 nov. 16 ] Available from: https://doi.org/10.1016/j.brainres.2018.11.022
A citação é gerada automaticamente e pode não estar totalmente de acordo com as normas
ABNT
BATISTA, Chary M. et al. Pain inhibition through transplantation of fetal neuronal progenitors into the injured spinal cord in rats. Neural regeneration research, v. 14, n. 11, p. 2011-2019, 2019Tradução . . Disponível em: https://doi.org/10.4103/1673-5374.259624. Acesso em: 16 nov. 2024.
APA
Batista, C. M., Mariano, E. D., Dale, C. S., Cristante, A. F., Britto, L. R. G. de, Otoch, J. P., et al. (2019). Pain inhibition through transplantation of fetal neuronal progenitors into the injured spinal cord in rats. Neural regeneration research, 14( 11), 2011-2019. doi:10.4103/1673-5374.259624
NLM
Batista CM, Mariano ED, Dale CS, Cristante AF, Britto LRG de, Otoch JP, Teixeira MJ, Morgalla M, Lepski G. Pain inhibition through transplantation of fetal neuronal progenitors into the injured spinal cord in rats [Internet]. Neural regeneration research. 2019 ; 14( 11): 2011-2019.[citado 2024 nov. 16 ] Available from: https://doi.org/10.4103/1673-5374.259624
Vancouver
Batista CM, Mariano ED, Dale CS, Cristante AF, Britto LRG de, Otoch JP, Teixeira MJ, Morgalla M, Lepski G. Pain inhibition through transplantation of fetal neuronal progenitors into the injured spinal cord in rats [Internet]. Neural regeneration research. 2019 ; 14( 11): 2011-2019.[citado 2024 nov. 16 ] Available from: https://doi.org/10.4103/1673-5374.259624
A citação é gerada automaticamente e pode não estar totalmente de acordo com as normas
ABNT
SOUZA, Elisa Maria Guimarães de et al. Retinal alterations in a pre-clinical model of an autism spectrum disorder. Molecular Autism, v. 10, p. 16 , 2019Tradução . . Disponível em: https://doi.org/10.1186/s13229-019-0270-8. Acesso em: 16 nov. 2024.
APA
Souza, E. M. G. de, Joselevitch, C., Britto, L. R. G. de, & Chiavegatto, S. (2019). Retinal alterations in a pre-clinical model of an autism spectrum disorder. Molecular Autism, 10, 16 . doi:10.1186/s13229-019-0270-8
NLM
Souza EMG de, Joselevitch C, Britto LRG de, Chiavegatto S. Retinal alterations in a pre-clinical model of an autism spectrum disorder [Internet]. Molecular Autism. 2019 ; 10 16 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1186/s13229-019-0270-8
Vancouver
Souza EMG de, Joselevitch C, Britto LRG de, Chiavegatto S. Retinal alterations in a pre-clinical model of an autism spectrum disorder [Internet]. Molecular Autism. 2019 ; 10 16 .[citado 2024 nov. 16 ] Available from: https://doi.org/10.1186/s13229-019-0270-8