Expression of OsFRDL1, a MATE gene family member, indicates its involvement in aluminum response in rice

Autores/as

  • Denise Colares de Oliveira ufpel
  • Vivian Ebeling Viana UFPel
  • Camila Pegoraro UFPEL
  • Rogerio Oliveira de Sousa UFPel
  • Antonio Costa Oliveira Universidade Federal de Pelotas

DOI:

https://doi.org/10.52945/rac.v33i3.1032

Palabras clave:

Root development, gene expression, genetic variability, Oryza sativa

Resumen

In soils under acidic conditions, Aluminum (Al) is solubilized to its ionic form, which is toxic to plants. Al rapidly inhibits root elongation, water and nutrient uptake, resulting in crop yield reduction. Members of the MATE family are responsible for citrate transport and Al detoxification in different species. In rice, the OsFRDL1 gene (MATE family) is homologous to the HvAACT1 and SbMATE, which are involved in Al tolerance in barley and sorghum, respectively. Silencing OsFRDL1 showed that it is not involved in Al tolerance in rice. However, the OsFRDL1 expression was not accessed in rice genotypes contrasting for Al tolerance. Thus, in this study, four Brazilian rice genotypes were evaluated in response to Al treatment in different time of exposition and OsFRDL1 expression was analyzed. The analyzed cultivars displayed different responses to Al dose x time. Al affected root growth in all analyzed genotypes, however, a minor negative effect that only occurred after 72 and 48 hours of exposure was detected in Farroupilha and BRS Curinga cultivars, respectively. In contrast, BR-IRGA 410 and IAS 12-9 showed a negative effect in root growth from the first hours of exposure to Al. Two cultivars differing in Al tolerance were used for gene expression analysis. The expression of OsFRDL1 was highly increased in Al-tolerant cultivar Farroupilha than in the Al-sensitive cultivar BR IRGA 410. This results indicates that OsFRDL1 is regulated by Al. This finding suggests that OsFRDL1 is involved in Al stress response, however seems to be insufficient in controlling Al tolerance.

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ARENHART, R.A.; BAI, Y.; DE OLIVEIRA, L.F.; NETO, L.B.; SCHUNEMANN, M.; MARASCHIN, F.S.; MARIATH, J.; SILVERIO, A.; SACHETTO-MARTINS, G.; MARGIS R.; WANG, Z-Y.; MARGIS-PINHEIRO, M. New Insights into Aluminum Tolerance in Rice: The ASR5 Protein Binds the STAR1 Promoter and Other Aluminum-Responsive Genes. Molecular Plant, v.7, n.4, p.709-721, April 2014.

BUSTIN, S.A.; BENES, V.; GARSON, J.A.; HELLEMANS, J.; HUGGETT, J.; KUBISTA, M.; MUELLER, R.; NOLAN, T.; PFAFFL, M.W.; SHIPLEY, G.L.; VANDESOMPELE, J.; WITTWER, C.T. The MIQE guidelines: minimum information for publication of quantitative real-time PCR experiments. Clinical Chemistry, v.55, n.4, p.611-22, April 2009.

CAMARGO, C.E.O.; OLIVEIRA, O.F. Tolerância de cultivares de trigo a diferentes níveis de alumínio em solução nutritiva e no solo. Bragantia, v.40, n.1, p.21-31, Fevereiro 1981.

CHANG, S.; JING-HAO, W.; GAO-LING, S.; LAI-QING, L.; JUN-XIA, D.; JIAN-LIN, W.; QING-SHENG, C. Different Aluminum Tolerance among Indica, Japonica and Hybrid Rice Varieties. Rice Science, v.22, n.3, p.123-131, May 2015.

CHEN, H.; LU, C.; JIANG, H.; PENG, J. Global Transcriptome Analysis Reveals Distinct Aluminum-Tolerance Pathways in the Al-Accumulating Species Hydrangea macrophylla and Marker Identification. PLoS One, v.10, p.e0144927, December 2015.

DURRETT, T.P.; GASSMANN, W.; ROGERS, E.E. The FRD3-mediated efflux of citrate into the root vasculature is necessary for efficient iron translocation. Plant Physiology, v.144, n.1, p.197–205, May 2007.

FURUKAWA, J.; YAMAJI, N.; WANG, H.; MITANI, N.; MURATA, Y.; SATO, K.; KATSUHARA, M.; TAKEDA, K.; MA, J.F. An aluminum-activated citrate transporter in barley. Plant Cell Physiology, v.48, n.8, p.1081-1091, August 2007.

FOY, C.D. Plant adaptation to acid aluminum-toxic soils. Communication in Soil Science and Plant Analysis, 19:959-987, November 1988.

KOCHIAN, L.V.; PIÑEROS, M.A.; HOEKENGA, O.A. The physiology, genetics and molecular biology of plant aluminum resistance and toxicity. Plant and Soil, v.274, p.175-195, July 2005.

KOCHIAN, L.V. Cellular mechanisms of aluminum toxicity and resistance in plants. Annual Review of Plant Physiology and Plant Molecular Biology, v.46, p.237-260, June 1995.

KOCHIAN, L.V.; PINEROS, M.A.; LIU, J.; MAGALHAES, J.V. Plant Adaptation to Acid Soils: The Molecular Basis for Crop Aluminum Resistance. Annual Review of Plant Biology, v.66, p.571-598, January 2015.

LIU, J.; LI, Y.; WANG, W.; GAI, J.; LI, Y. Genome-wide analysis of MATE transporters and expression patterns of a subgroup of MATES genes in response to aluminium toxicity in soybean. BMC Genomics, v.17, n.223, p.217-223, March 2016.

LIVAK, K.J.; SCHIMITTGEN, T.D. Analysis of relative gene expression data using real-time quantitative PCR and the 2-∆∆CT method. Methods, v.25, n.4, p.402-408, December 2001.

MA, J.F. Role of organic acids in detoxification of Al in higher plants. Plant Cell Physiology, v.41, n.4, p.383-390, April 2000.

MA, J.F.; RYAN, P.R.; DELHAIZE, E. Aluminium tolerance in plants and the complexing role of organic acids. Trends in Plant Science, v.6, n.6, p.273-278, June 2001.

MA, J.F.; FURUKAWA, J. Recent progress in the research of external Al detoxification in higher plants: a minireview. Journal of Inorganic Biochemistry, v.97, n.1, p.46-51, September 2003.

MACEDO, C.C.; KINET, J.M.; JAN, V.V.S. Effects of duration and intensity of aluminum stress on growth parameters in four rice genotypes differing in aluminum sensitivity. Journal of Plant Nutrition, v.20, p.181-193, November 1997.

MAGALHÃES, J.V.; LIU, J.; GUIMARAES, C.T.; LANA, U.G.P.; ALVES, V.M.C.; WANG, Y.; SCHAFFERT, R.E.; HOEKENGA, O.A.; PIÑEROS, M.A.; SHAFF, J.E.; KLEIN, P.E.; CARNEIRO, N.P.; COELHO, C.M.; TRICK, H.N.; KOCHIAN, L.V. A gene in the multidrug and toxic compound extrusion (MATE) family confers aluminum tolerance in sorghum. Nature Genetics, v.39, n.9, p.1156-1161, September 2007.

MARON, L.G.; PIÑEROS, M.A.; GUIMARAES, C.T.; MAGALHÃES, J.V.; PLEIMAN, J.K.; MAO, C.; SHAFF, J.; BELICUAS, S.N.J.; KOCHIAN, L.V. Two functionally distinct members of the MATE (multi-drug and toxic compound extrusion) family of transporters potentially underlie two major aluminum tolerance QTLs in maize. The Plant Journal, v.61, n.5, p.728–740, March 2010.

PIÑEROS, M.A.; KOCHIAN, L.V. A patch-clamp study on the physiology of aluminum toxicity and aluminum tolerance in maize. Identification and characterization of Al3+-induced anion channels. Plant Physiology, v.125, n.1, p.292-305, January 2001.

RAHMAN, M.A.; LEE, S-H.; JI, H.C.; KABIR, A.H.; JONES, C.S.; LEE, K.W. Importance of Mineral Nutrition for Mitigating Aluminum Toxicity in Plants on Acidic Soils: Current Status and Opportunities. International Journal of Molecular Sciences, v.19, n.10, p.3073, October 2018.

RYAN, P.R.; DELHAIZE, E. Function and mechanism of organic anion exudation from plant roots. Annual Review of Plant Physiology and Plant Molecular Biology, v.52, p.527-560, June 2001.

SAS. The SAS system for Windows. Cary, NC –USA: SAS Institute Inc. 2013

SASAKI, T.; YAMAMOTO, Y.; EZAKI, B.; KATSUHARA, M.; AHN, S.J.; RYAN, P.R.; DELHAIZE, E.; MATSUMOTO, H. A wheat gene encoding an aluminum-activated malate transporter. The Plant Journal, v.37, n.5, p.645-653, March 2004.

SOSBAI. Arroz irrigado: recomendações técnicas da pesquisa para o Sul do Brasil/ Sociedade Sul-Brasileira de Arroz Irrigado; XXXII Reunião Técnica da Cultura do Arroz Irrigado, Farroupilha, RS - Cachoeirinha, 205 p. 2018

YANG, L-T.; QI, Y-P.; JIANG, H-X.; CHEN, L-S. Roles of Organic Acid Anion Secretion in Aluminium Tolerance of Higher Plants. BioMed Research International, v.2013, p.173682, December 2013.

YOKOSHO, K.; YAMAJI, N.; UENO, D.; MITANI, N.; MA, J.F. OsFRDL1 is a citrate transporter required for efficient translocation of iron in rice. Plant Physiology, v.149, n.1, p.297-305, January 2009.

YOKOSHO, K.; YAMAJI, N.; MA, J.F. An Al-inducible MATE gene is involved in external detoxification of Al in Rice. The Plant Journal, v.68, n.6, p.1061-1069, December 2011.

ZHANG, X.; LONG, Y.; HUANG, J.; XIA, J. Molecular Mechanisms for Coping with Al Toxicity in Plants. International Journal of Molecular Sciences, v.20, n.7, p.1551, April 2019a.

ZHANG, F.; YAN, X.; HAN, X.; TANG, R.; CHU, M.; YANG, Y.; YANG, Y-H.; ZHAO, F.; FU, A.; LUAN, S.; LAN, W. A Defective Vacuolar Proton Pump Enhances Aluminum Tolerance by Reducing Vacuole Sequestration of Organic Acids. Plant Physiology, v.181, n.2, p.743-761, October 2019b.

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Publicado

2020-12-30

Cómo citar

Oliveira, D. C. de, Viana, V. E., Pegoraro, C., Sousa, R. O. de, & Oliveira, A. C. (2020). Expression of OsFRDL1, a MATE gene family member, indicates its involvement in aluminum response in rice. Agropecuária Catarinense, 33(3), 53–59. https://doi.org/10.52945/rac.v33i3.1032

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Artigo Científico