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LOCOSSELLI, Giuliano Maselli e BUCKERIDGE, Marcos. The science of urban trees to promote well-being. Trees, v. 37, p. 1–7, 2023Tradução . . Disponível em: https://doi.org/10.1007/s00468-023-02389-2. Acesso em: 25 fev. 2026.
APA
Locosselli, G. M., & Buckeridge, M. (2023). The science of urban trees to promote well-being. Trees, 37, 1–7. doi:10.1007/s00468-023-02389-2
NLM
Locosselli GM, Buckeridge M. The science of urban trees to promote well-being [Internet]. Trees. 2023 ; 37 1–7.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-023-02389-2
Vancouver
Locosselli GM, Buckeridge M. The science of urban trees to promote well-being [Internet]. Trees. 2023 ; 37 1–7.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-023-02389-2
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FEITOSA, Tiago Soares et al. Use of support infuences height and above‑ground allometry but not biomass allocation to diferent aerial organs of an invasive vine. Trees, v. 37, p. 373-383, 2023Tradução . . Disponível em: http://dx.doi.org/10.1007/s00468-022-02356-3. Acesso em: 25 fev. 2026.
APA
Feitosa, T. S., Carvalho, E. C. D. de, Barreto, R. W., Mantovani, W., Araújo, F. S. de, & Costa, R. C. da. (2023). Use of support infuences height and above‑ground allometry but not biomass allocation to diferent aerial organs of an invasive vine. Trees, 37, 373-383. doi:10.1007/s00468-022-02356-3
NLM
Feitosa TS, Carvalho ECD de, Barreto RW, Mantovani W, Araújo FS de, Costa RC da. Use of support infuences height and above‑ground allometry but not biomass allocation to diferent aerial organs of an invasive vine [Internet]. Trees. 2023 ; 37 373-383.[citado 2026 fev. 25 ] Available from: http://dx.doi.org/10.1007/s00468-022-02356-3
Vancouver
Feitosa TS, Carvalho ECD de, Barreto RW, Mantovani W, Araújo FS de, Costa RC da. Use of support infuences height and above‑ground allometry but not biomass allocation to diferent aerial organs of an invasive vine [Internet]. Trees. 2023 ; 37 373-383.[citado 2026 fev. 25 ] Available from: http://dx.doi.org/10.1007/s00468-022-02356-3
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MACIEIRA, Bernardo Pretti Becacici et al. Climatic regulation of the non-structural and structural carbon in the pioneer Senna multijuga and non-pioneer Hymenaea aurea trees of a humid tropical rainforest. Trees, 2023Tradução . . Disponível em: https://doi.org/10.1007/s00468-023-02427-z. Acesso em: 25 fev. 2026.
APA
Macieira, B. P. B., Locosselli, G. M., Buckeridge, M., Hartmann, H., & Cuzzuol, G. R. F. (2023). Climatic regulation of the non-structural and structural carbon in the pioneer Senna multijuga and non-pioneer Hymenaea aurea trees of a humid tropical rainforest. Trees. doi:10.1007/s00468-023-02427-z
NLM
Macieira BPB, Locosselli GM, Buckeridge M, Hartmann H, Cuzzuol GRF. Climatic regulation of the non-structural and structural carbon in the pioneer Senna multijuga and non-pioneer Hymenaea aurea trees of a humid tropical rainforest [Internet]. Trees. 2023 ;[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-023-02427-z
Vancouver
Macieira BPB, Locosselli GM, Buckeridge M, Hartmann H, Cuzzuol GRF. Climatic regulation of the non-structural and structural carbon in the pioneer Senna multijuga and non-pioneer Hymenaea aurea trees of a humid tropical rainforest [Internet]. Trees. 2023 ;[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-023-02427-z
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OLIVEIRA, Artur André e BUCKERIDGE, Marcos e HIRATA JÚNIOR, Roberto. Detecting tree and wire entanglements with deep learning. Trees, v. 37, n. 1, p. 147-159, 2023Tradução . . Disponível em: https://doi.org/10.1007/s00468-022-02305-0. Acesso em: 25 fev. 2026.
APA
Oliveira, A. A., Buckeridge, M., & Hirata Júnior, R. (2023). Detecting tree and wire entanglements with deep learning. Trees, 37( 1), 147-159. doi:10.1007/s00468-022-02305-0
NLM
Oliveira AA, Buckeridge M, Hirata Júnior R. Detecting tree and wire entanglements with deep learning [Internet]. Trees. 2023 ; 37( 1): 147-159.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-022-02305-0
Vancouver
Oliveira AA, Buckeridge M, Hirata Júnior R. Detecting tree and wire entanglements with deep learning [Internet]. Trees. 2023 ; 37( 1): 147-159.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-022-02305-0
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MORAES, Larissa Gonçalves et al. Forking and planting spacing impacts on wood density, X‐ray density, and heartwood proportion of Tachigali vulgaris. Trees, v. 37, p. 1567–1581, 2023Tradução . . Disponível em: https://doi.org/10.1007/s00468-023-02443-z. Acesso em: 25 fev. 2026.
APA
Moraes, L. G., Lima, M. D. R., Assis‐Pereira, G., Gonçalves, D. de A., Vidaurre, G. B., Bufalino, L., et al. (2023). Forking and planting spacing impacts on wood density, X‐ray density, and heartwood proportion of Tachigali vulgaris. Trees, 37, 1567–1581. doi:10.1007/s00468-023-02443-z
NLM
Moraes LG, Lima MDR, Assis‐Pereira G, Gonçalves D de A, Vidaurre GB, Bufalino L, Guedes FTP, Tomazello Filho M, Protásio T de P. Forking and planting spacing impacts on wood density, X‐ray density, and heartwood proportion of Tachigali vulgaris [Internet]. Trees. 2023 ; 37 1567–1581.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-023-02443-z
Vancouver
Moraes LG, Lima MDR, Assis‐Pereira G, Gonçalves D de A, Vidaurre GB, Bufalino L, Guedes FTP, Tomazello Filho M, Protásio T de P. Forking and planting spacing impacts on wood density, X‐ray density, and heartwood proportion of Tachigali vulgaris [Internet]. Trees. 2023 ; 37 1567–1581.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-023-02443-z
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CHAMBI-LEGOAS, Roger et al. Wood density prediction using near-infrared hyperspectral imaging for early selection of Eucalyptus grandis trees. Trees, v. 37, p. 981–991, 2023Tradução . . Disponível em: https://doi.org/10.1007/s00468-023-02397-2. Acesso em: 25 fev. 2026.
APA
Chambi-Legoas, R., Tomazello-Filho, M., Vidal, C., & Chaix, G. (2023). Wood density prediction using near-infrared hyperspectral imaging for early selection of Eucalyptus grandis trees. Trees, 37, 981–991. doi:10.1007/s00468-023-02397-2
NLM
Chambi-Legoas R, Tomazello-Filho M, Vidal C, Chaix G. Wood density prediction using near-infrared hyperspectral imaging for early selection of Eucalyptus grandis trees [Internet]. Trees. 2023 ; 37 981–991.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-023-02397-2
Vancouver
Chambi-Legoas R, Tomazello-Filho M, Vidal C, Chaix G. Wood density prediction using near-infrared hyperspectral imaging for early selection of Eucalyptus grandis trees [Internet]. Trees. 2023 ; 37 981–991.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-023-02397-2
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PAULA, Ranieri Ribeiro et al. Exploring the forestry potential of two legume species with contrasting ecological strategies in a seasonally dry tropical region. Trees, p. 1-12, 2022Tradução . . Disponível em: https://doi.org/10.1007/s00468-022-02298-w. Acesso em: 25 fev. 2026.
APA
Paula, R. R., Guillemot, J., Delarmelina, W. M., Souza, P. H. de, Moraes, C. R. de, Campanharo, Í. F., et al. (2022). Exploring the forestry potential of two legume species with contrasting ecological strategies in a seasonally dry tropical region. Trees, 1-12. doi:10.1007/s00468-022-02298-w
NLM
Paula RR, Guillemot J, Delarmelina WM, Souza PH de, Moraes CR de, Campanharo ÍF, Mendes LJ, Trivelin PCO, Klippel VH, Trazzi PA, Caldeira MVW. Exploring the forestry potential of two legume species with contrasting ecological strategies in a seasonally dry tropical region [Internet]. Trees. 2022 ; 1-12.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-022-02298-w
Vancouver
Paula RR, Guillemot J, Delarmelina WM, Souza PH de, Moraes CR de, Campanharo ÍF, Mendes LJ, Trivelin PCO, Klippel VH, Trazzi PA, Caldeira MVW. Exploring the forestry potential of two legume species with contrasting ecological strategies in a seasonally dry tropical region [Internet]. Trees. 2022 ; 1-12.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-022-02298-w
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LOCOSSELLI, Giuliano Maselli et al. Climate drivers of tree fall on the streets of São Paulo, Brazil. Trees, p. 1-9, 2021Tradução . . Disponível em: https://doi.org/10.1007/s00468-021-02145-4. Acesso em: 25 fev. 2026.
APA
Locosselli, G. M., Miyahara, A. A. L., Cerqueira, P., & Buckeridge, M. (2021). Climate drivers of tree fall on the streets of São Paulo, Brazil. Trees, 1-9. doi:10.1007/s00468-021-02145-4
NLM
Locosselli GM, Miyahara AAL, Cerqueira P, Buckeridge M. Climate drivers of tree fall on the streets of São Paulo, Brazil [Internet]. Trees. 2021 ; 1-9.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-021-02145-4
Vancouver
Locosselli GM, Miyahara AAL, Cerqueira P, Buckeridge M. Climate drivers of tree fall on the streets of São Paulo, Brazil [Internet]. Trees. 2021 ; 1-9.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-021-02145-4
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MORENO, Maria A et al. Long distance pollen dispersal and intrapopulation genetic structure determined by clonal diversity in Hymenaea stigonocarpa populations of the Brazilian savanna. Trees, 2021Tradução . . Disponível em: https://doi.org/10.1007/s00468-021-02222-8. Acesso em: 25 fev. 2026.
APA
Moreno, M. A., Boshier, D., Tarazi, R., Tambarussi, E. V., Aguiar, B. I., Ferraz, E. M., et al. (2021). Long distance pollen dispersal and intrapopulation genetic structure determined by clonal diversity in Hymenaea stigonocarpa populations of the Brazilian savanna. Trees. doi:10.1007/s00468-021-02222-8
NLM
Moreno MA, Boshier D, Tarazi R, Tambarussi EV, Aguiar BI, Ferraz EM, Kageyama PY, Sebbenn AM. Long distance pollen dispersal and intrapopulation genetic structure determined by clonal diversity in Hymenaea stigonocarpa populations of the Brazilian savanna [Internet]. Trees. 2021 ;[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-021-02222-8
Vancouver
Moreno MA, Boshier D, Tarazi R, Tambarussi EV, Aguiar BI, Ferraz EM, Kageyama PY, Sebbenn AM. Long distance pollen dispersal and intrapopulation genetic structure determined by clonal diversity in Hymenaea stigonocarpa populations of the Brazilian savanna [Internet]. Trees. 2021 ;[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-021-02222-8
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BICHARA, Samir e MAZZAFERA, Paulo e ANDRADE, Sara Adrian L. de. Root morphological changes in response to low phosphorus concentration in eucalypt species. Trees, p. 1-11, 2021Tradução . . Disponível em: https://doi.org/10.1007/s00468-021-02161-4. Acesso em: 25 fev. 2026.
APA
Bichara, S., Mazzafera, P., & Andrade, S. A. L. de. (2021). Root morphological changes in response to low phosphorus concentration in eucalypt species. Trees, 1-11. doi:10.1007/s00468-021-02161-4
NLM
Bichara S, Mazzafera P, Andrade SAL de. Root morphological changes in response to low phosphorus concentration in eucalypt species [Internet]. Trees. 2021 ; 1-11.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-021-02161-4
Vancouver
Bichara S, Mazzafera P, Andrade SAL de. Root morphological changes in response to low phosphorus concentration in eucalypt species [Internet]. Trees. 2021 ; 1-11.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-021-02161-4
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GONÇALVES, Janaína Quixabeira et al. Minimum temperature and evapotranspiration in Central Amazonian floodplains limit tree growth of Nectandra amazonum (Lauraceae). Trees, p. 1-18, 2021Tradução . . Disponível em: https://doi.org/10.1007/s00468-021-02126-7. Acesso em: 25 fev. 2026.
APA
Gonçalves, J. Q., Durgante, F. M., Wittmann, F., Piedade, M. T. F., Rodriguez, D. R. O., Tomazello-Filho, M., et al. (2021). Minimum temperature and evapotranspiration in Central Amazonian floodplains limit tree growth of Nectandra amazonum (Lauraceae). Trees, 1-18. doi:10.1007/s00468-021-02126-7
NLM
Gonçalves JQ, Durgante FM, Wittmann F, Piedade MTF, Rodriguez DRO, Tomazello-Filho M, Parolin P, Schöngart J. Minimum temperature and evapotranspiration in Central Amazonian floodplains limit tree growth of Nectandra amazonum (Lauraceae) [Internet]. Trees. 2021 ; 1-18.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-021-02126-7
Vancouver
Gonçalves JQ, Durgante FM, Wittmann F, Piedade MTF, Rodriguez DRO, Tomazello-Filho M, Parolin P, Schöngart J. Minimum temperature and evapotranspiration in Central Amazonian floodplains limit tree growth of Nectandra amazonum (Lauraceae) [Internet]. Trees. 2021 ; 1-18.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-021-02126-7
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ALBIERO JÚNIOR, Alci et al. Amazon forest fragmentation and edge effects temporarily favored understory and midstory tree growth. Trees, p. 1-10, 2021Tradução . . Disponível em: https://doi.org/10.1007/s00468-021-02172-1. Acesso em: 25 fev. 2026.
APA
Albiero Júnior, A., Venegas-González, A., Camargo, J. L. C., Roig, F. A., & Tomazello Filho, M. (2021). Amazon forest fragmentation and edge effects temporarily favored understory and midstory tree growth. Trees, 1-10. doi:10.1007/s00468-021-02172-1
NLM
Albiero Júnior A, Venegas-González A, Camargo JLC, Roig FA, Tomazello Filho M. Amazon forest fragmentation and edge effects temporarily favored understory and midstory tree growth [Internet]. Trees. 2021 ; 1-10.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-021-02172-1
Vancouver
Albiero Júnior A, Venegas-González A, Camargo JLC, Roig FA, Tomazello Filho M. Amazon forest fragmentation and edge effects temporarily favored understory and midstory tree growth [Internet]. Trees. 2021 ; 1-10.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-021-02172-1
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MACEDO, Tahysa Mota et al. Climate signals in tree rings of Paubrasilia echinata (Leguminosae-Caesalpinioidea) from the Atlantic Forest of Brazil. Trees, v. 34, p. 337-347, 2020Tradução . . Disponível em: https://doi.org/10.1007/s00468-019-01919-1. Acesso em: 25 fev. 2026.
APA
Macedo, T. M., Barros, C. F., Lima, H. C. de, Brandes, A. F. das N., Costa, W. S. da, Costa, C. G., & Roig, F. A. (2020). Climate signals in tree rings of Paubrasilia echinata (Leguminosae-Caesalpinioidea) from the Atlantic Forest of Brazil. Trees, 34, 337-347. doi:10.1007/s00468-019-01919-1
NLM
Macedo TM, Barros CF, Lima HC de, Brandes AF das N, Costa WS da, Costa CG, Roig FA. Climate signals in tree rings of Paubrasilia echinata (Leguminosae-Caesalpinioidea) from the Atlantic Forest of Brazil [Internet]. Trees. 2020 ; 34 337-347.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-019-01919-1
Vancouver
Macedo TM, Barros CF, Lima HC de, Brandes AF das N, Costa WS da, Costa CG, Roig FA. Climate signals in tree rings of Paubrasilia echinata (Leguminosae-Caesalpinioidea) from the Atlantic Forest of Brazil [Internet]. Trees. 2020 ; 34 337-347.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-019-01919-1
A citação é gerada automaticamente e pode não estar totalmente de acordo com as normas
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GODOY‐VEIGA, Milena et al. Shadows of the edge effects for tropical emergent trees: the impact of lianas on the growth of Aspidosperma polyneuron. Trees, 2018Tradução . . Disponível em: https://doi.org/10.1007/s00468-018-1696-x. Acesso em: 25 fev. 2026.
APA
Godoy‐Veiga, M., Ceccantini, G., Pitsch, P., Krottenthaler, S., Anhuf, D., & Locosselli, G. M. (2018). Shadows of the edge effects for tropical emergent trees: the impact of lianas on the growth of Aspidosperma polyneuron. Trees. doi:10.1007/s00468-018-1696-x
NLM
Godoy‐Veiga M, Ceccantini G, Pitsch P, Krottenthaler S, Anhuf D, Locosselli GM. Shadows of the edge effects for tropical emergent trees: the impact of lianas on the growth of Aspidosperma polyneuron [Internet]. Trees. 2018 ;[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-018-1696-x
Vancouver
Godoy‐Veiga M, Ceccantini G, Pitsch P, Krottenthaler S, Anhuf D, Locosselli GM. Shadows of the edge effects for tropical emergent trees: the impact of lianas on the growth of Aspidosperma polyneuron [Internet]. Trees. 2018 ;[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-018-1696-x
A citação é gerada automaticamente e pode não estar totalmente de acordo com as normas
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NOGUEIRA, Francisco de Carvalho et al. Responses of tree-ring growth in Schinopsis brasiliensis to climate factors in the dry forests of northeastern Brazil. Trees, v. 32, p. 453-464, 2018Tradução . . Disponível em: https://doi.org/10.1007/s00468-017-1642-3. Acesso em: 25 fev. 2026.
APA
Nogueira, F. de C., Pagotto, M. A., Roig, F. A., Lisi, C. S., & Souza Ribeiro, A. de. (2018). Responses of tree-ring growth in Schinopsis brasiliensis to climate factors in the dry forests of northeastern Brazil. Trees, 32, 453-464. doi:10.1007/s00468-017-1642-3
NLM
Nogueira F de C, Pagotto MA, Roig FA, Lisi CS, Souza Ribeiro A de. Responses of tree-ring growth in Schinopsis brasiliensis to climate factors in the dry forests of northeastern Brazil [Internet]. Trees. 2018 ; 32 453-464.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-017-1642-3
Vancouver
Nogueira F de C, Pagotto MA, Roig FA, Lisi CS, Souza Ribeiro A de. Responses of tree-ring growth in Schinopsis brasiliensis to climate factors in the dry forests of northeastern Brazil [Internet]. Trees. 2018 ; 32 453-464.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-017-1642-3
A citação é gerada automaticamente e pode não estar totalmente de acordo com as normas
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LOCOSSELLI, Giuliano Maselli e BUCKERIDGE, Marcos. Dendrobiochemistry, a missing link to further understand carbon allocation during growth and decline of trees. Trees, 2017Tradução . . Disponível em: https://doi.org/10.1007/s00468-017-1599-2. Acesso em: 25 fev. 2026.
APA
Locosselli, G. M., & Buckeridge, M. (2017). Dendrobiochemistry, a missing link to further understand carbon allocation during growth and decline of trees. Trees. doi:10.1007/s00468-017-1599-2
NLM
Locosselli GM, Buckeridge M. Dendrobiochemistry, a missing link to further understand carbon allocation during growth and decline of trees [Internet]. Trees. 2017 ;[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-017-1599-2
Vancouver
Locosselli GM, Buckeridge M. Dendrobiochemistry, a missing link to further understand carbon allocation during growth and decline of trees [Internet]. Trees. 2017 ;[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-017-1599-2
A citação é gerada automaticamente e pode não estar totalmente de acordo com as normas
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HEIN, P. R. G et al. Spatial variation of wood density, stiffness and microfibril angle along Eucalyptus trunks grown under contrasting growth conditions. Trees, v. 30 p. 871-882, 2016Tradução . . Disponível em: https://doi.org/10.1007/s00468-015-1327-8. Acesso em: 25 fev. 2026.
APA
Hein, P. R. G., Chaix, G. C., Clair, B., Brancheriau, L., & Gril, J. (2016). Spatial variation of wood density, stiffness and microfibril angle along Eucalyptus trunks grown under contrasting growth conditions. Trees, 30 p. 871-882. doi:10.1007/s00468-015-1327-8
NLM
Hein PRG, Chaix GC, Clair B, Brancheriau L, Gril J. Spatial variation of wood density, stiffness and microfibril angle along Eucalyptus trunks grown under contrasting growth conditions [Internet]. Trees. 2016 ; 30 p. 871-882[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-015-1327-8
Vancouver
Hein PRG, Chaix GC, Clair B, Brancheriau L, Gril J. Spatial variation of wood density, stiffness and microfibril angle along Eucalyptus trunks grown under contrasting growth conditions [Internet]. Trees. 2016 ; 30 p. 871-882[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-015-1327-8
A citação é gerada automaticamente e pode não estar totalmente de acordo com as normas
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ARENQUE, Bruna C. et al. Responses of Senna reticulata, a legume tree from the Amazonian floodplains, to elevated atmospheric CO2 concentration and waterlogging. Trees, v. 28, p. 1021-1034, 2014Tradução . . Disponível em: https://doi.org/10.1007/s00468-014-1015-0. Acesso em: 25 fev. 2026.
APA
Arenque, B. C., Grandis, A., Pocius, O., Souza, A. P. de, & Buckeridge, M. (2014). Responses of Senna reticulata, a legume tree from the Amazonian floodplains, to elevated atmospheric CO2 concentration and waterlogging. Trees, 28, 1021-1034. doi:10.1007/s00468-014-1015-0
NLM
Arenque BC, Grandis A, Pocius O, Souza AP de, Buckeridge M. Responses of Senna reticulata, a legume tree from the Amazonian floodplains, to elevated atmospheric CO2 concentration and waterlogging [Internet]. Trees. 2014 ; 28 1021-1034.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-014-1015-0
Vancouver
Arenque BC, Grandis A, Pocius O, Souza AP de, Buckeridge M. Responses of Senna reticulata, a legume tree from the Amazonian floodplains, to elevated atmospheric CO2 concentration and waterlogging [Internet]. Trees. 2014 ; 28 1021-1034.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-014-1015-0
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CONTIN, Daniele R. et al. Antioxidant and photoprotective defenses in response to gradual water stress under low and high irradiance in two Malvaceae tree species used for tropical forest restoration. Trees, v. 28, n. 6, p. 1705-1722, 2014Tradução . . Disponível em: https://doi.org/10.1007/s00468-014-1079-x. Acesso em: 25 fev. 2026.
APA
Contin, D. R., Soriani, H. H., Hernández, I., Furriel, R. dos P. M., Munné-Bosch, S., & Martinez, C. A. (2014). Antioxidant and photoprotective defenses in response to gradual water stress under low and high irradiance in two Malvaceae tree species used for tropical forest restoration. Trees, 28( 6), 1705-1722. doi:10.1007/s00468-014-1079-x
NLM
Contin DR, Soriani HH, Hernández I, Furriel R dos PM, Munné-Bosch S, Martinez CA. Antioxidant and photoprotective defenses in response to gradual water stress under low and high irradiance in two Malvaceae tree species used for tropical forest restoration [Internet]. Trees. 2014 ; 28( 6): 1705-1722.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-014-1079-x
Vancouver
Contin DR, Soriani HH, Hernández I, Furriel R dos PM, Munné-Bosch S, Martinez CA. Antioxidant and photoprotective defenses in response to gradual water stress under low and high irradiance in two Malvaceae tree species used for tropical forest restoration [Internet]. Trees. 2014 ; 28( 6): 1705-1722.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-014-1079-x
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ABNT
CAPUCHO, Liana Carneiro e TEIXEIRA, Simone de Pádua. Morphology of the unusual polyad in Amazonian Parkia legume trees. Trees, v. 28, n. 5, p. 1507-1514, 2014Tradução . . Disponível em: https://doi.org/10.1007/s00468-014-1055-5. Acesso em: 25 fev. 2026.
APA
Capucho, L. C., & Teixeira, S. de P. (2014). Morphology of the unusual polyad in Amazonian Parkia legume trees. Trees, 28( 5), 1507-1514. doi:10.1007/s00468-014-1055-5
NLM
Capucho LC, Teixeira S de P. Morphology of the unusual polyad in Amazonian Parkia legume trees [Internet]. Trees. 2014 ; 28( 5): 1507-1514.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-014-1055-5
Vancouver
Capucho LC, Teixeira S de P. Morphology of the unusual polyad in Amazonian Parkia legume trees [Internet]. Trees. 2014 ; 28( 5): 1507-1514.[citado 2026 fev. 25 ] Available from: https://doi.org/10.1007/s00468-014-1055-5