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VIEIRA, Willians Fernando et al. The role of exercise on glial cell activity in neuropathic pain management. Cells, v. 14, n. 7, p. 20 , 2025Tradução . . Disponível em: https://doi.org/10.3390/cells14070487. Acesso em: 08 out. 2025.
APA
Vieira, W. F., Real, C. C., Martins, D. O., & Chacur, M. (2025). The role of exercise on glial cell activity in neuropathic pain management. Cells, 14( 7), 20 . doi:10.3390/cells14070487
NLM
Vieira WF, Real CC, Martins DO, Chacur M. The role of exercise on glial cell activity in neuropathic pain management [Internet]. Cells. 2025 ; 14( 7): 20 .[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells14070487
Vancouver
Vieira WF, Real CC, Martins DO, Chacur M. The role of exercise on glial cell activity in neuropathic pain management [Internet]. Cells. 2025 ; 14( 7): 20 .[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells14070487
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DI FLORA, Daniele Castro et al. The dual role of cGAS-STING signaling in COVID-19: implications for therapy. Cells, v. 14, n. 5, 2025Tradução . . Disponível em: https://doi.org/10.3390/cells14050362. Acesso em: 08 out. 2025.
APA
Di Flora, D. C., Lara, J. P. Z., Dionizio, A., & Buzalaf, M. A. R. (2025). The dual role of cGAS-STING signaling in COVID-19: implications for therapy. Cells, 14( 5). doi:10.3390/cells14050362
NLM
Di Flora DC, Lara JPZ, Dionizio A, Buzalaf MAR. The dual role of cGAS-STING signaling in COVID-19: implications for therapy [Internet]. Cells. 2025 ; 14( 5):[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells14050362
Vancouver
Di Flora DC, Lara JPZ, Dionizio A, Buzalaf MAR. The dual role of cGAS-STING signaling in COVID-19: implications for therapy [Internet]. Cells. 2025 ; 14( 5):[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells14050362
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SANTANA, Monique de Fátima Mello et al. Proteomic profiling of HDL in newly diagnosed breast cancer based on tumor molecular classification and clinical stage of disease. Cells, v. 13, p. 1-19 art. 1327, 2024Tradução . . Disponível em: https://dx.doi.org/10.3390/cells13161327. Acesso em: 08 out. 2025.
APA
Santana, M. de F. M., Sawada, M. I. B. A. C., Souza Junior, D. R. de, Giacaglia, M. B., Reis, M., Xavier, J., et al. (2024). Proteomic profiling of HDL in newly diagnosed breast cancer based on tumor molecular classification and clinical stage of disease. Cells, 13, 1-19 art. 1327. doi:10.3390/cells13161327
NLM
Santana M de FM, Sawada MIBAC, Souza Junior DR de, Giacaglia MB, Reis M, Xavier J, Giannella MLC, Soriano FG, Gebrim LH, Ronsein GE, Passarelli M. Proteomic profiling of HDL in newly diagnosed breast cancer based on tumor molecular classification and clinical stage of disease [Internet]. Cells. 2024 ; 13 1-19 art. 1327.[citado 2025 out. 08 ] Available from: https://dx.doi.org/10.3390/cells13161327
Vancouver
Santana M de FM, Sawada MIBAC, Souza Junior DR de, Giacaglia MB, Reis M, Xavier J, Giannella MLC, Soriano FG, Gebrim LH, Ronsein GE, Passarelli M. Proteomic profiling of HDL in newly diagnosed breast cancer based on tumor molecular classification and clinical stage of disease [Internet]. Cells. 2024 ; 13 1-19 art. 1327.[citado 2025 out. 08 ] Available from: https://dx.doi.org/10.3390/cells13161327
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ALVES, Paula Ketilly Nascimento et al. Leucine supplementation prevents the development of skeletal muscle dysfunction in a rat model of HFpEF. Cells, v. 13, n. 6, p. 17 , 2024Tradução . . Disponível em: https://doi.org/10.3390/cells13060502. Acesso em: 08 out. 2025.
APA
Alves, P. K. N., Schauer, A., Augstein, A., Jarabo, M. -E. P., Männel, A., Barthel, P., et al. (2024). Leucine supplementation prevents the development of skeletal muscle dysfunction in a rat model of HFpEF. Cells, 13( 6), 17 . doi:10.3390/cells13060502
NLM
Alves PKN, Schauer A, Augstein A, Jarabo M-EP, Männel A, Barthel P, Vahle B, Linke A, Adams V, Moriscot AS. Leucine supplementation prevents the development of skeletal muscle dysfunction in a rat model of HFpEF [Internet]. Cells. 2024 ; 13( 6): 17 .[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells13060502
Vancouver
Alves PKN, Schauer A, Augstein A, Jarabo M-EP, Männel A, Barthel P, Vahle B, Linke A, Adams V, Moriscot AS. Leucine supplementation prevents the development of skeletal muscle dysfunction in a rat model of HFpEF [Internet]. Cells. 2024 ; 13( 6): 17 .[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells13060502
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SEPÚLVEDA, Paulina et al. Thyroid hormone supplementation restores cognitive deficit, insulin signaling, and neuroinflammation in the hippocampus of a sporadic Alzheimer’s-like disease rat model. Cells, v. 13, n. 21, p. 20 , 2024Tradução . . Disponível em: https://doi.org/10.3390/cells13211793. Acesso em: 08 out. 2025.
APA
Sepúlveda, P., Ferreira, A. F. F., Sandoval, C., Nunes, M. T., & Torrão, A. da S. (2024). Thyroid hormone supplementation restores cognitive deficit, insulin signaling, and neuroinflammation in the hippocampus of a sporadic Alzheimer’s-like disease rat model. Cells, 13( 21), 20 . doi:10.3390/cells13211793
NLM
Sepúlveda P, Ferreira AFF, Sandoval C, Nunes MT, Torrão A da S. Thyroid hormone supplementation restores cognitive deficit, insulin signaling, and neuroinflammation in the hippocampus of a sporadic Alzheimer’s-like disease rat model [Internet]. Cells. 2024 ; 13( 21): 20 .[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells13211793
Vancouver
Sepúlveda P, Ferreira AFF, Sandoval C, Nunes MT, Torrão A da S. Thyroid hormone supplementation restores cognitive deficit, insulin signaling, and neuroinflammation in the hippocampus of a sporadic Alzheimer’s-like disease rat model [Internet]. Cells. 2024 ; 13( 21): 20 .[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells13211793
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FERREIRA, Davi Azevedo et al. Evaluation of anti-inflammatory activity of the new cardiotonic steroid γ-benzylidene digoxin 8 (BD-8) in mice. Cells, v. 13, n. 18, 2024Tradução . . Disponível em: https://doi.org/10.3390/cells13181568. Acesso em: 08 out. 2025.
APA
Ferreira, D. A., Medeiros, A. B. A., Soares, M. M., Lima, É. de A., Oliveira, G. C. S. L. de, Leite, M. B. da S., et al. (2024). Evaluation of anti-inflammatory activity of the new cardiotonic steroid γ-benzylidene digoxin 8 (BD-8) in mice. Cells, 13( 18). doi:10.3390/cells13181568
NLM
Ferreira DA, Medeiros ABA, Soares MM, Lima É de A, Oliveira GCSL de, Leite MB da S, Machado MV, Villar JAFP, Barbosa LA, Moura MT, Rodrigues-Mascarenhas S, Scavone C. Evaluation of anti-inflammatory activity of the new cardiotonic steroid γ-benzylidene digoxin 8 (BD-8) in mice [Internet]. Cells. 2024 ; 13( 18):[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells13181568
Vancouver
Ferreira DA, Medeiros ABA, Soares MM, Lima É de A, Oliveira GCSL de, Leite MB da S, Machado MV, Villar JAFP, Barbosa LA, Moura MT, Rodrigues-Mascarenhas S, Scavone C. Evaluation of anti-inflammatory activity of the new cardiotonic steroid γ-benzylidene digoxin 8 (BD-8) in mice [Internet]. Cells. 2024 ; 13( 18):[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells13181568
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CAETANO, Marcos A. F. et al. Butyrate protects myenteric neurons loss in mice following experimental ulcerative colitis. Cells, v. 12, n. 13, p. 1-23, 2023Tradução . . Disponível em: https://doi.org/10.3390/cells12131672. Acesso em: 08 out. 2025.
APA
Caetano, M. A. F., Magalhães, H. I. R., Duarte, J. R. L., Conceição, L. B., & Castelucci, P. (2023). Butyrate protects myenteric neurons loss in mice following experimental ulcerative colitis. Cells, 12( 13), 1-23. doi:10.3390/cells12131672
NLM
Caetano MAF, Magalhães HIR, Duarte JRL, Conceição LB, Castelucci P. Butyrate protects myenteric neurons loss in mice following experimental ulcerative colitis [Internet]. Cells. 2023 ; 12( 13): 1-23.[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12131672
Vancouver
Caetano MAF, Magalhães HIR, Duarte JRL, Conceição LB, Castelucci P. Butyrate protects myenteric neurons loss in mice following experimental ulcerative colitis [Internet]. Cells. 2023 ; 12( 13): 1-23.[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12131672
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GUPTA, Shantanu et al. Quadra-stable dynamics of p53 and PTEN in the DNA damage response. Cells, v. 12, n. artigo 1085, p. 1-17, 2023Tradução . . Disponível em: https://doi.org/10.3390/cells12071085. Acesso em: 08 out. 2025.
APA
Gupta, S., Panda, P. K., Silveira, D. A., Ahuja, R., & Hashimoto, R. F. (2023). Quadra-stable dynamics of p53 and PTEN in the DNA damage response. Cells, 12( artigo 1085), 1-17. doi:10.3390/cells12071085
NLM
Gupta S, Panda PK, Silveira DA, Ahuja R, Hashimoto RF. Quadra-stable dynamics of p53 and PTEN in the DNA damage response [Internet]. Cells. 2023 ; 12( artigo 1085): 1-17.[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12071085
Vancouver
Gupta S, Panda PK, Silveira DA, Ahuja R, Hashimoto RF. Quadra-stable dynamics of p53 and PTEN in the DNA damage response [Internet]. Cells. 2023 ; 12( artigo 1085): 1-17.[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12071085
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SOUZA, William Danilo Fernandes de et al. Lung inflammation induced by inactivated SARS-CoV-2 in C57BL/6 female mice is controlled by intranasal instillation of vitamin D. Cells, v. 12, n. 7, p. 1-24, 2023Tradução . . Disponível em: https://doi.org/10.3390/cells12071092. Acesso em: 08 out. 2025.
APA
Souza, W. D. F. de, Pezavento, S. F. G. Z., Ayupe, M. C., Salgado, C. L., Oliveira, B. de C., Moreira, F., et al. (2023). Lung inflammation induced by inactivated SARS-CoV-2 in C57BL/6 female mice is controlled by intranasal instillation of vitamin D. Cells, 12( 7), 1-24. doi:10.3390/cells12071092
NLM
Souza WDF de, Pezavento SFGZ, Ayupe MC, Salgado CL, Oliveira B de C, Moreira F, Silva GW da, Muraro SP, Souza GF de, Proença-Módena JL, Araujo Junior JP, Sartori A, Fonseca DM da. Lung inflammation induced by inactivated SARS-CoV-2 in C57BL/6 female mice is controlled by intranasal instillation of vitamin D [Internet]. Cells. 2023 ; 12( 7): 1-24.[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12071092
Vancouver
Souza WDF de, Pezavento SFGZ, Ayupe MC, Salgado CL, Oliveira B de C, Moreira F, Silva GW da, Muraro SP, Souza GF de, Proença-Módena JL, Araujo Junior JP, Sartori A, Fonseca DM da. Lung inflammation induced by inactivated SARS-CoV-2 in C57BL/6 female mice is controlled by intranasal instillation of vitamin D [Internet]. Cells. 2023 ; 12( 7): 1-24.[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12071092
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HELUANY, Cíntia Scucuglia et al. Hydroquinone, an environmental pollutant, affects cartilage homeostasis through the activation of the aryl hydrocarbon receptor pathway. Cells, v. 12, p. 1-14 art. 690, 2023Tradução . . Disponível em: https://doi.org/10.3390/cells12050690. Acesso em: 08 out. 2025.
APA
Heluany, C. S., De Palma, A., Day, N. J., Farsky, S. H. P., & Nalesso, G. (2023). Hydroquinone, an environmental pollutant, affects cartilage homeostasis through the activation of the aryl hydrocarbon receptor pathway. Cells, 12, 1-14 art. 690. doi:10.3390/cells12050690
NLM
Heluany CS, De Palma A, Day NJ, Farsky SHP, Nalesso G. Hydroquinone, an environmental pollutant, affects cartilage homeostasis through the activation of the aryl hydrocarbon receptor pathway [Internet]. Cells. 2023 ; 12 1-14 art. 690.[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12050690
Vancouver
Heluany CS, De Palma A, Day NJ, Farsky SHP, Nalesso G. Hydroquinone, an environmental pollutant, affects cartilage homeostasis through the activation of the aryl hydrocarbon receptor pathway [Internet]. Cells. 2023 ; 12 1-14 art. 690.[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12050690
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SOUZA, William Danilo Fernandes de e FONSECA, Denise Morais da e SARTORI, Alexandrina. COVID-19 and Multiple Sclerosis: a complex relationship possibly aggravated by Low Vitamin D levels. Cells, v. 12, n. 5, p. 1-28, 2023Tradução . . Disponível em: https://doi.org/10.3390/cells12050684. Acesso em: 08 out. 2025.
APA
Souza, W. D. F. de, Fonseca, D. M. da, & Sartori, A. (2023). COVID-19 and Multiple Sclerosis: a complex relationship possibly aggravated by Low Vitamin D levels. Cells, 12( 5), 1-28. doi:10.3390/cells12050684
NLM
Souza WDF de, Fonseca DM da, Sartori A. COVID-19 and Multiple Sclerosis: a complex relationship possibly aggravated by Low Vitamin D levels [Internet]. Cells. 2023 ; 12( 5): 1-28.[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12050684
Vancouver
Souza WDF de, Fonseca DM da, Sartori A. COVID-19 and Multiple Sclerosis: a complex relationship possibly aggravated by Low Vitamin D levels [Internet]. Cells. 2023 ; 12( 5): 1-28.[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12050684
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SOUZA, Gabriel Orefice de et al. mTORC1 signaling in AgRP neurons is not required to induce major neuroendocrine adaptations to food restriction. Cells, v. 12, n. 20, p. 17 , 2023Tradução . . Disponível em: https://repositorio.usp.br/directbitstream/54a8af38-0118-46fd-a7ae-d9f06d3df018/mTORC1%20Signaling%20in%20AgRP%20Neurons%20Is%20Not%20Required%20to%20Induce%20Major%20Neuroendocrine%20Adaptations%20to%20Food%20Restriction.pdf. Acesso em: 08 out. 2025.
APA
Souza, G. O. de, Teixeira, P. D. S., Camara, N. O. S., & Donato Junior, J. (2023). mTORC1 signaling in AgRP neurons is not required to induce major neuroendocrine adaptations to food restriction. Cells, 12( 20), 17 . doi:10.3390/cells12202442
NLM
Souza GO de, Teixeira PDS, Camara NOS, Donato Junior J. mTORC1 signaling in AgRP neurons is not required to induce major neuroendocrine adaptations to food restriction [Internet]. Cells. 2023 ; 12( 20): 17 .[citado 2025 out. 08 ] Available from: https://repositorio.usp.br/directbitstream/54a8af38-0118-46fd-a7ae-d9f06d3df018/mTORC1%20Signaling%20in%20AgRP%20Neurons%20Is%20Not%20Required%20to%20Induce%20Major%20Neuroendocrine%20Adaptations%20to%20Food%20Restriction.pdf
Vancouver
Souza GO de, Teixeira PDS, Camara NOS, Donato Junior J. mTORC1 signaling in AgRP neurons is not required to induce major neuroendocrine adaptations to food restriction [Internet]. Cells. 2023 ; 12( 20): 17 .[citado 2025 out. 08 ] Available from: https://repositorio.usp.br/directbitstream/54a8af38-0118-46fd-a7ae-d9f06d3df018/mTORC1%20Signaling%20in%20AgRP%20Neurons%20Is%20Not%20Required%20to%20Induce%20Major%20Neuroendocrine%20Adaptations%20to%20Food%20Restriction.pdf
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OLIVEIRA-CARAMEZ, Maria Luiza de et al. Evidence for epistatic interaction between HLA-G and LILRB1 in the pathogenesis of nonsegmental vitiligo. Cells, v. 12, n. 4, 2023Tradução . . Disponível em: https://doi.org/10.3390/cells12040630. Acesso em: 08 out. 2025.
APA
Oliveira-Caramez, M. L. de, Veiga-Castelli, L., Souza, A. S., Cardili, R. N., Courtin, D., Santos, M. J. S. F. L., et al. (2023). Evidence for epistatic interaction between HLA-G and LILRB1 in the pathogenesis of nonsegmental vitiligo. Cells, 12( 4). doi:10.3390/cells12040630
NLM
Oliveira-Caramez ML de, Veiga-Castelli L, Souza AS, Cardili RN, Courtin D, Santos MJSFL, Donadi EA, Giuliatti S, Sabbagh A, Castelli EC, Mendes Junior CT. Evidence for epistatic interaction between HLA-G and LILRB1 in the pathogenesis of nonsegmental vitiligo [Internet]. Cells. 2023 ; 12( 4):[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12040630
Vancouver
Oliveira-Caramez ML de, Veiga-Castelli L, Souza AS, Cardili RN, Courtin D, Santos MJSFL, Donadi EA, Giuliatti S, Sabbagh A, Castelli EC, Mendes Junior CT. Evidence for epistatic interaction between HLA-G and LILRB1 in the pathogenesis of nonsegmental vitiligo [Internet]. Cells. 2023 ; 12( 4):[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12040630
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FORATORI-JUNIOR, Gerson Aparecido et al. Is there a difference in the proteomic profile of stimulated and unstimulated saliva samples from pregnant women with/without obesity and periodontitis?. Cells, v. 12, n. 10, 2023Tradução . . Disponível em: https://doi.org/10.3390/cells12101389. Acesso em: 08 out. 2025.
APA
Foratori-Junior, G. A., Ventura, T. M. O., Grizzo, L. T., Jesuino, B. G., Castilho, A. V. S. S., Buzalaf, M. A. R., & Sales Peres, S. H. de C. (2023). Is there a difference in the proteomic profile of stimulated and unstimulated saliva samples from pregnant women with/without obesity and periodontitis? Cells, 12( 10). doi:10.3390/cells12101389
NLM
Foratori-Junior GA, Ventura TMO, Grizzo LT, Jesuino BG, Castilho AVSS, Buzalaf MAR, Sales Peres SH de C. Is there a difference in the proteomic profile of stimulated and unstimulated saliva samples from pregnant women with/without obesity and periodontitis? [Internet]. Cells. 2023 ; 12( 10):[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12101389
Vancouver
Foratori-Junior GA, Ventura TMO, Grizzo LT, Jesuino BG, Castilho AVSS, Buzalaf MAR, Sales Peres SH de C. Is there a difference in the proteomic profile of stimulated and unstimulated saliva samples from pregnant women with/without obesity and periodontitis? [Internet]. Cells. 2023 ; 12( 10):[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12101389
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GARNIQUE, Anali Del Milagro Bernabe e MACHADO-SANTELLI, Glaucia Maria. Characterization of 3D NSCLC cell cultures with fibroblasts or macrophages for tumor microenvironment studies and chemotherapy screening. Cells, v. 12, n. 24, p. 24 , 2023Tradução . . Disponível em: https://doi.org/10.3390/cells12242790. Acesso em: 08 out. 2025.
APA
Garnique, A. D. M. B., & Machado-Santelli, G. M. (2023). Characterization of 3D NSCLC cell cultures with fibroblasts or macrophages for tumor microenvironment studies and chemotherapy screening. Cells, 12( 24), 24 . doi:10.3390/cells12242790
NLM
Garnique ADMB, Machado-Santelli GM. Characterization of 3D NSCLC cell cultures with fibroblasts or macrophages for tumor microenvironment studies and chemotherapy screening [Internet]. Cells. 2023 ; 12( 24): 24 .[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12242790
Vancouver
Garnique ADMB, Machado-Santelli GM. Characterization of 3D NSCLC cell cultures with fibroblasts or macrophages for tumor microenvironment studies and chemotherapy screening [Internet]. Cells. 2023 ; 12( 24): 24 .[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12242790
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SANDRI, Silvana et al. Role of Annexin A1 Secreted by Neutrophils in Melanoma Metastasis. Cells, v. 12, p. 1-19 art. 425, 2023Tradução . . Disponível em: https://doi.org/10.3390/cells12030425. Acesso em: 08 out. 2025.
APA
Sandri, S., Hebeda, C. B., Broering, M. F., Silva, M. de P., Moredo, L. F., Silva, M. J. de B. e, et al. (2023). Role of Annexin A1 Secreted by Neutrophils in Melanoma Metastasis. Cells, 12, 1-19 art. 425. doi:10.3390/cells12030425
NLM
Sandri S, Hebeda CB, Broering MF, Silva M de P, Moredo LF, Silva MJ de B e, Molina AS, Pinto CAL, Duprat Neto JP, Reutelingsperger CP, Gil CD, Farsky SHP. Role of Annexin A1 Secreted by Neutrophils in Melanoma Metastasis [Internet]. Cells. 2023 ; 12 1-19 art. 425.[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12030425
Vancouver
Sandri S, Hebeda CB, Broering MF, Silva M de P, Moredo LF, Silva MJ de B e, Molina AS, Pinto CAL, Duprat Neto JP, Reutelingsperger CP, Gil CD, Farsky SHP. Role of Annexin A1 Secreted by Neutrophils in Melanoma Metastasis [Internet]. Cells. 2023 ; 12 1-19 art. 425.[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12030425
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ALVES, Paula Ketilly Nascimento et al. Leucine supplementation improves diastolic function in HFpEF by HDAC4 inhibition. Cells, v. 12, n. 21, p. 24 , 2023Tradução . . Disponível em: https://doi.org/10.3390/cells12212561. Acesso em: 08 out. 2025.
APA
Alves, P. K. N., Schauer, A., Augstein, A., Männel, A., Barthel, P., Joachim, D., et al. (2023). Leucine supplementation improves diastolic function in HFpEF by HDAC4 inhibition. Cells, 12( 21), 24 . doi:10.3390/cells12212561
NLM
Alves PKN, Schauer A, Augstein A, Männel A, Barthel P, Joachim D, Friedrich J, Prieto ME, Linke A, Adams V, Moriscot AS. Leucine supplementation improves diastolic function in HFpEF by HDAC4 inhibition [Internet]. Cells. 2023 ; 12( 21): 24 .[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12212561
Vancouver
Alves PKN, Schauer A, Augstein A, Männel A, Barthel P, Joachim D, Friedrich J, Prieto ME, Linke A, Adams V, Moriscot AS. Leucine supplementation improves diastolic function in HFpEF by HDAC4 inhibition [Internet]. Cells. 2023 ; 12( 21): 24 .[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12212561
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MONTEIRO, Lucca de Filipe Rebocho e GIRALDI, Laís Albuquerque e WINCK, Flavia Vischi. From Feasting to Fasting: The Arginine Pathway as a Metabolic Switch in Nitrogen-Deprived Chlamydomonas reinhardtii. Cells, v. 12, 2023Tradução . . Disponível em: https://doi.org/10.3390/cells12101379. Acesso em: 08 out. 2025.
APA
Monteiro, L. de F. R., Giraldi, L. A., & Winck, F. V. (2023). From Feasting to Fasting: The Arginine Pathway as a Metabolic Switch in Nitrogen-Deprived Chlamydomonas reinhardtii. Cells, 12. doi:10.3390/cells12101379
NLM
Monteiro L de FR, Giraldi LA, Winck FV. From Feasting to Fasting: The Arginine Pathway as a Metabolic Switch in Nitrogen-Deprived Chlamydomonas reinhardtii [Internet]. Cells. 2023 ; 12[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12101379
Vancouver
Monteiro L de FR, Giraldi LA, Winck FV. From Feasting to Fasting: The Arginine Pathway as a Metabolic Switch in Nitrogen-Deprived Chlamydomonas reinhardtii [Internet]. Cells. 2023 ; 12[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12101379
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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: 08 out. 2025.
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 2025 out. 08 ] 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 2025 out. 08 ] Available from: https://doi.org/10.3390/cells12091250
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ABNT
MACEDO, Thais Rodrigues et al. Imatinib mesylate for the treatment of canine mast cell tumors: assessment of the response and adverse events in comparison with the conventional therapy with vinblastine and prednisone. Cells, v. 11, n. 3, p. 1-12, 2022Tradução . . Disponível em: https://doi.org/10.3390/cells11030571. Acesso em: 08 out. 2025.
APA
Macedo, T. R., Queiroz, G. F. de, Casagrande, T. A. C., Alexandre, P. A., Brandão, P. E., Fukumasu, H., et al. (2022). Imatinib mesylate for the treatment of canine mast cell tumors: assessment of the response and adverse events in comparison with the conventional therapy with vinblastine and prednisone. Cells, 11( 3), 1-12. doi:10.3390/cells11030571
NLM
Macedo TR, Queiroz GF de, Casagrande TAC, Alexandre PA, Brandão PE, Fukumasu H, Melo SR, Dagli MLZ, Pinto ACB de CF, Matera JM. Imatinib mesylate for the treatment of canine mast cell tumors: assessment of the response and adverse events in comparison with the conventional therapy with vinblastine and prednisone [Internet]. Cells. 2022 ; 11( 3): 1-12.[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells11030571
Vancouver
Macedo TR, Queiroz GF de, Casagrande TAC, Alexandre PA, Brandão PE, Fukumasu H, Melo SR, Dagli MLZ, Pinto ACB de CF, Matera JM. Imatinib mesylate for the treatment of canine mast cell tumors: assessment of the response and adverse events in comparison with the conventional therapy with vinblastine and prednisone [Internet]. Cells. 2022 ; 11( 3): 1-12.[citado 2025 out. 08 ] Available from: https://doi.org/10.3390/cells11030571