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| DOI | 10.1093/JXB/ERAA534 | ||||
| Año | 2021 | ||||
| Tipo | artículo de investigación |
Citas Totales
Autores Afiliación Chile
Instituciones Chile
% Participación
Internacional
Autores
Afiliación Extranjera
Instituciones
Extranjeras
Plants possess a robust metabolic network for sensing and controlling reactive oxygen species (ROS) levels upon stress conditions. Evidence shown here supports a role for TGA class II transcription factors as critical regulators of genes controlling ROS levels in the tolerance response to UV-B stress in Arabidopsis. First, tga256 mutant plants showed reduced capacity to scavenge H2O2 and restrict oxidative damage in response to UV-B, and also to methylviologen-induced photooxidative stress. The TGA2 transgene (tga256/TGA2 plants) complemented these phenotypes. Second, RNAseq followed by clustering and Gene Ontology term analyses indicate that TGA2/5/6 positively control the UV-B-induced expression of a group of genes with oxidoreductase, glutathione transferase, and glucosyltransferase activities, such as members of the glutathione S-transferase Tau subfamily (GSTU), which encodes peroxide-scavenging enzymes. Accordingly, increased glutathione peroxidase activity triggered by UV-B was impaired in tga256 mutants. Third, the function of TGA2/5/6 as transcriptional activators of GSTU genes in the UV-B response was confirmed for GSTU7, GSTU8, and GSTU25, using quantitative reverse transcription-PCR and ChIP analyses. Fourth, expression of the GSTU7 transgene complemented the UV-B-susceptible phenotype of tga256 mutant plants. Together, this evidence indicates that TGA2/5/6 factors are key regulators of the antioxidant/detoxifying response to an abiotic stress such as UV-B light overexposure.
| Ord. | Autor | Género | Institución - País |
|---|---|---|---|
| 1 | Herrera-Vasquez, Ariel | Hombre |
Pontificia Universidad Católica de Chile - Chile
Núcleo Milenio en Biología Sintética y Biología de Sistemas Vegetales - Chile Universidad Nacional Andrés Bello - Chile Instituto Milenio de Biología Integrativa - Chile Universität Bielefeld - Alemania Millennium Institute for Integrative Biology (iBio) - Chile |
| 2 | Fonseca, Alejandro | Hombre |
Pontificia Universidad Católica de Chile - Chile
Universität Bielefeld - Alemania |
| 3 | Ugalde, Jose-Manuel | Hombre |
Pontificia Universidad Católica de Chile - Chile
Universität Bielefeld - Alemania |
| 4 | Lamig, Liliana | Mujer |
Pontificia Universidad Católica de Chile - Chile
Universität Bielefeld - Alemania |
| 5 | SEGUEL-AVELLO, ALDO LUIS | Hombre |
Pontificia Universidad Católica de Chile - Chile
Universität Bielefeld - Alemania |
| 6 | MOYANO-YUGOVIC, TOMAS CUSTODIO | Hombre |
Pontificia Universidad Católica de Chile - Chile
Núcleo Milenio en Biología Sintética y Biología de Sistemas Vegetales - Chile FONDAP Ctr Genome Regulat - Chile Instituto Milenio de Biología Integrativa - Chile Instituto Milenio Centro de Regulación del Genoma - Chile Universität Bielefeld - Alemania Millennium Institute for Integrative Biology (iBio) - Chile |
| 7 | GUTIERREZ-ILABACA, RODRIGO ANTONIO | Hombre |
Pontificia Universidad Católica de Chile - Chile
Núcleo Milenio en Biología Sintética y Biología de Sistemas Vegetales - Chile FONDAP Ctr Genome Regulat - Chile Instituto Milenio de Biología Integrativa - Chile Instituto Milenio Centro de Regulación del Genoma - Chile Universität Bielefeld - Alemania Millennium Institute for Integrative Biology (iBio) - Chile |
| 8 | SALINAS-SALVO, PAULA ANDREA | Mujer |
Universidad Santo Tomás - Chile
Universität Bielefeld - Alemania |
| 9 | VIDAL-OLATE, ELENA ALEJANDRA | Mujer |
Núcleo Milenio en Biología Sintética y Biología de Sistemas Vegetales - Chile
Universidad Mayor - Chile Instituto Milenio de Biología Integrativa - Chile Universität Bielefeld - Alemania Millennium Institute for Integrative Biology (iBio) - Chile |
| 10 | HOLUIGUE-BARROS, MARIA LORETO | Mujer |
Pontificia Universidad Católica de Chile - Chile
Universität Bielefeld - Alemania |
| Fuente |
|---|
| CONICYT |
| National Commission for Science and Technology CONICYT (FONDECYT) |
| Millennium Science Initiative [Institute for Integrative Biology (iBio)] |
| Millennium Science Initiative [Nucleus for Plant Synthetic and Systems Biology] |
| Agradecimiento |
|---|
| The authors thank Xin Li (Department of Botany, University of British Columbia, Canada) for providing the tga6-1, tga2-1 tga5-1, and tga2-1 tga5-1 tga6-1 mutant lines. This work was supported by the National Commission for Science and Technology CONICYT (FONDECYT grants no. 1141202 to LH, no. 1141029 to PS, and no. 1170926 to EAV) and the Millennium Science Initiative [Nucleus for Plant Synthetic and Systems Biology, grant NC130030 and Institute for Integrative Biology (iBio)]. TCM, JMU, and AS were supported by a PhD fellowship from CONICYT. |