Mal de Río Cuarto virus infection causes hormone imbalance and sugar accumulation in wheat leaves.

Luis Alejandro de Haro, Sofía Maité Arellano, Ondrej Novák, Regina Feil, Analía Delina Dumón, María Fernanda Mattio, Danuše Tarkowská, Gabriela Llauger, Miroslav Strnad, John Edward Lunn, Stephen Pearce, Carlos María Figueroa, Mariana Del Vas

Journal: BMC plant biology 2019;19(1):112

PMID: 30902042

Abstract

BACKGROUND

Mal de Río Cuarto virus (MRCV) infects several monocotyledonous species including maize and wheat. Infected plants show shortened internodes, partial sterility, increased tillering and reduced root length. To better understand the molecular basis of the plant-virus interactions leading to these symptoms, we combined RNA sequencing with metabolite and hormone measurements.

RESULTS

More than 3000 differentially accumulated transcripts (DATs) were detected in MRCV-infected wheat plants at 21 days post inoculation compared to mock-inoculated plants. Infected plants exhibited decreased levels of TaSWEET13 transcripts, which are involved in sucrose phloem loading. Soluble sugars, starch, trehalose 6-phosphate (Tre6P), and organic and amino acids were all higher in MRCV-infected plants. In addition, several transcripts related to plant hormone metabolism, transport and signalling were increased upon MRCV infection. Transcripts coding for GA20ox, D14, MAX2 and SMAX1-like proteins involved in gibberellin biosynthesis and strigolactone signalling, were reduced. Transcripts involved in jasmonic acid, ethylene and brassinosteroid biosynthesis, perception and signalling and in auxin transport were also altered. Hormone measurements showed that jasmonic acid, brassinosteroids, abscisic acid and indole-3-acetic acid were significantly higher in infected leaves.

CONCLUSIONS

Our results indicate that MRCV causes a profound hormonal imbalance that, together with alterations in sugar partitioning, could account for the symptoms observed in MRCV-infected plants.

Address: Instituto de Biotecnología, CICVyA, INTA, CONICET, Hurlingham, Buenos Aires, Argentina.; Laboratory of Growth Regulators, Palacký University and Institute of Experimental Botany Czech Academy of Sciences, Šlechtitelů 27, CZ-78371, Olomouc, Czech Republic.; Max Planck Institute of Molecular Plant Physiology, Potsdam-Golm, Germany.; Instituto de Patología Vegetal, CIAP, INTA, Córdoba, Argentina.; Department of Soil and Crop Sciences, Colorado State University, Fort Collins, CO, USA.; Instituto de Agrobiotecnología del Litoral, UNL, CONICET, FBCB, Santa Fe, Argentina.; Instituto de Biotecnología, CICVyA, INTA, CONICET, Hurlingham, Buenos Aires, Argentina. [email protected].
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