Regulation of the Zinc Deficiency Response in the Legume Model Medicago truncatula

Research output: Contribution to journalJournal articleResearchpeer-review

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Regulation of the Zinc Deficiency Response in the Legume Model Medicago truncatula. / Liao, Feixue; Lilay, Grmay Hailu; Castro, Pedro Humberto; Azevedo, Herlander; Assuncao, Ana.

In: Frontiers in Plant Science, Vol. 13, 916168, 2022.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Liao, F, Lilay, GH, Castro, PH, Azevedo, H & Assuncao, A 2022, 'Regulation of the Zinc Deficiency Response in the Legume Model Medicago truncatula', Frontiers in Plant Science, vol. 13, 916168. https://doi.org/10.3389/fpls.2022.916168

APA

Liao, F., Lilay, G. H., Castro, P. H., Azevedo, H., & Assuncao, A. (2022). Regulation of the Zinc Deficiency Response in the Legume Model Medicago truncatula. Frontiers in Plant Science, 13, [916168]. https://doi.org/10.3389/fpls.2022.916168

Vancouver

Liao F, Lilay GH, Castro PH, Azevedo H, Assuncao A. Regulation of the Zinc Deficiency Response in the Legume Model Medicago truncatula. Frontiers in Plant Science. 2022;13. 916168. https://doi.org/10.3389/fpls.2022.916168

Author

Liao, Feixue ; Lilay, Grmay Hailu ; Castro, Pedro Humberto ; Azevedo, Herlander ; Assuncao, Ana. / Regulation of the Zinc Deficiency Response in the Legume Model Medicago truncatula. In: Frontiers in Plant Science. 2022 ; Vol. 13.

Bibtex

@article{b5de48cc4b2d4df09bcd047ae5cdd1f6,
title = "Regulation of the Zinc Deficiency Response in the Legume Model Medicago truncatula",
abstract = "The zinc deficiency response in Arabidopsis thaliana is regulated by F-group basic region leucine-zipper (F-bZIP) transcription factors, and there is evidence of evolutionary conservation of this regulatory network in land plants. Fundamental knowledge on the zinc homeostasis regulation in crop species will contribute to improving their zinc nutritional value. Legumes are protein-rich crops, used worldwide as part of traditional diets and as animal forage, being therefore a good target for micronutrient biofortification. Here, we identified F-bZIP transcription factors in representative legume species and functionally characterized the two F-bZIPs from Medicago truncatula. Results indicate that MtFbZIP1 is the functional homolog of A. thaliana bZIP19 and bZIP23, while MtFbZIP2 does not play a role in the zinc deficiency response. Additionally, analysis of M. truncatula genes from the Zrt/Irt-like protein (ZIP) family of zinc transporters or encoding nicotianamine synthase enzymes that produce the zinc ligand nicotianamine, support the conservation of the F-bZIP-regulated zinc deficiency response in M. truncatula. Phylogenetic analysis of F-bZIP homologs enriched in legume species reinforces the branching into two groups, with MtFbZIP1 and MtFbZIP2 mapping in Groups 1 and 2, respectively. This phylogeny combined with the functional characterization of MtFbZIPs supports the suggested conservation of the zinc deficiency response associated with Group 1 F-bZIPs, and the more variable evolutionary paths associated with Group 2. Overall, we provide novel insight on the mechanisms of response to zinc deficiency in M. truncatula, which contributes to developing strategies for improving zinc content in legume crops.",
author = "Feixue Liao and Lilay, {Grmay Hailu} and Castro, {Pedro Humberto} and Herlander Azevedo and Ana Assuncao",
year = "2022",
doi = "10.3389/fpls.2022.916168",
language = "English",
volume = "13",
journal = "Frontiers in Plant Science",
issn = "1664-462X",
publisher = "Frontiers Media S.A.",

}

RIS

TY - JOUR

T1 - Regulation of the Zinc Deficiency Response in the Legume Model Medicago truncatula

AU - Liao, Feixue

AU - Lilay, Grmay Hailu

AU - Castro, Pedro Humberto

AU - Azevedo, Herlander

AU - Assuncao, Ana

PY - 2022

Y1 - 2022

N2 - The zinc deficiency response in Arabidopsis thaliana is regulated by F-group basic region leucine-zipper (F-bZIP) transcription factors, and there is evidence of evolutionary conservation of this regulatory network in land plants. Fundamental knowledge on the zinc homeostasis regulation in crop species will contribute to improving their zinc nutritional value. Legumes are protein-rich crops, used worldwide as part of traditional diets and as animal forage, being therefore a good target for micronutrient biofortification. Here, we identified F-bZIP transcription factors in representative legume species and functionally characterized the two F-bZIPs from Medicago truncatula. Results indicate that MtFbZIP1 is the functional homolog of A. thaliana bZIP19 and bZIP23, while MtFbZIP2 does not play a role in the zinc deficiency response. Additionally, analysis of M. truncatula genes from the Zrt/Irt-like protein (ZIP) family of zinc transporters or encoding nicotianamine synthase enzymes that produce the zinc ligand nicotianamine, support the conservation of the F-bZIP-regulated zinc deficiency response in M. truncatula. Phylogenetic analysis of F-bZIP homologs enriched in legume species reinforces the branching into two groups, with MtFbZIP1 and MtFbZIP2 mapping in Groups 1 and 2, respectively. This phylogeny combined with the functional characterization of MtFbZIPs supports the suggested conservation of the zinc deficiency response associated with Group 1 F-bZIPs, and the more variable evolutionary paths associated with Group 2. Overall, we provide novel insight on the mechanisms of response to zinc deficiency in M. truncatula, which contributes to developing strategies for improving zinc content in legume crops.

AB - The zinc deficiency response in Arabidopsis thaliana is regulated by F-group basic region leucine-zipper (F-bZIP) transcription factors, and there is evidence of evolutionary conservation of this regulatory network in land plants. Fundamental knowledge on the zinc homeostasis regulation in crop species will contribute to improving their zinc nutritional value. Legumes are protein-rich crops, used worldwide as part of traditional diets and as animal forage, being therefore a good target for micronutrient biofortification. Here, we identified F-bZIP transcription factors in representative legume species and functionally characterized the two F-bZIPs from Medicago truncatula. Results indicate that MtFbZIP1 is the functional homolog of A. thaliana bZIP19 and bZIP23, while MtFbZIP2 does not play a role in the zinc deficiency response. Additionally, analysis of M. truncatula genes from the Zrt/Irt-like protein (ZIP) family of zinc transporters or encoding nicotianamine synthase enzymes that produce the zinc ligand nicotianamine, support the conservation of the F-bZIP-regulated zinc deficiency response in M. truncatula. Phylogenetic analysis of F-bZIP homologs enriched in legume species reinforces the branching into two groups, with MtFbZIP1 and MtFbZIP2 mapping in Groups 1 and 2, respectively. This phylogeny combined with the functional characterization of MtFbZIPs supports the suggested conservation of the zinc deficiency response associated with Group 1 F-bZIPs, and the more variable evolutionary paths associated with Group 2. Overall, we provide novel insight on the mechanisms of response to zinc deficiency in M. truncatula, which contributes to developing strategies for improving zinc content in legume crops.

U2 - 10.3389/fpls.2022.916168

DO - 10.3389/fpls.2022.916168

M3 - Journal article

C2 - 35845702

VL - 13

JO - Frontiers in Plant Science

JF - Frontiers in Plant Science

SN - 1664-462X

M1 - 916168

ER -

ID: 313385563