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Dotto, M. C.

Publications and source records attributed to Dotto, M. C..

4 recordsLinked to original sources

Maize mutant hybrids with improved drought tolerance and increased yield in a field experimental setting

Previous studies determined that maize mutants in miR394-regulated genes, ZmLCR1 and ZmLCR2, are more tolerant than wild-type seedlings to prolonged periods of drought. In order to evaluate the effect of these mutations in a genetic background more similar to that of maize commercialization, in this work we evaluate growth of double mutant hybrid plants in W22/B73 genetic background and also evaluated plant fitness, flowering and yield in experimental plots under two watering regimes, and compared the nutritional content of wild-type and mutant hybrids. Our results show that mutant hybrid seedlings exhibit improved physiology under normal watering conditions as well as in drought conditions, exhibiting an increase in epicuticular wax content, unaltered membrane damage in drought and lower ROS production, supporting higher survival after severe drought for double mutant hybrid seedlings. We also established that the hybrid mutants grown in typical agricultural conditions do not show differences in flowering time or in physiological and nutritional aspects, but they present a higher yield in comparison to wild-type W22/B73 hybrids, as determined by higher ear weight and number of kernels per ear in mutant hybrids, when grown in field rainfed conditions. HighlightsO_LIDouble mutants in miR394-regulated genes, ZmLCR1 and ZmLCR2, show enhanced drought tolerance in hybrid maize seedlings, with improved physiological traits under both normal and stress conditions. C_LIO_LIMutant hybrids exhibit increased epicuticular wax accumulation and reduced ROS production, supporting greater survival during prolonged drought stress. C_LIO_LIField-grown mutant hybrids in a W22/B73 background maintain normal flowering time and nutritional composition, indicating no agronomic penalties from the mutations. C_LIO_LIYield is significantly higher in mutant hybrids compared to wild-type controls, as shown by increased ear weight and kernel number under rainfed field conditions. C_LIO_LIThese findings highlight ZmLCR1 and ZmLCR2 as valuable targets for breeding drought-tolerant, high-yielding maize cultivars suited to production environments. C_LI

plant biology↗

Genome-wide analysis of phased small interfering RNAs related to tomato fruit ripening and quality

Fruit quality and sensorial aspects are key determinants for costumer selection and satisfaction. Main characteristics include texture, color, aroma and taste, which are defined by a wide range of molecular processes that will ultimately determine fruit general appearance. The production of cultivars with optimized metabolite contents is increasingly being explored, in particular through the study of gene regulatory networks that modulate the metabolism of these compounds. There are several types of small RNAs originating from different biosynthesis mechanisms that regulate a large number of genes involved in various processes during plant development and growth. However, reports on their participation in regulatory networks related to qualitative aspects of fruits are scarce. In this work, genome-wide bioinformatics analyses were performed to identify regulatory modules that involve the action of phased secondary small interfering RNAs in different ripening stages of tomato fruits. We identified small RNA regulatory modules related to the acquisition of commercially important traits, such as the development of brightness, color, firmness, and nutritional content, which set the basis for further characterization of phasiRNA-mediated regulation of aspects related to tomato fruit quality improvement and the possibility of using these regulatory RNAs as tools for molecular breeding.

plant biology↗

Transcriptomic insights into the role of miR394 in the regulation of flowering time in Arabidopsis thaliana

The initiation of flowering is a highly coordinated process that requires synchronization of endogenous plant developmental program with environmental signals through a complex interplay of genetic regulatory networks. The developmental shift from vegetative to reproductive stage is controlled by multiple flowering pathways, which together with other signals participate in the orchestration of flowering time regulation. Collectively, the different pathways converge to modulate the expression of key floral integrator genes, which subsequently trigger the expression of genes related to the differentiation of the vegetative shoot apical meristem into a flower meristem with the subsequent development of floral organs. We had previously demonstrated a role for miR394 in the regulation of flowering time, since mir394a mir394b double mutant plants harboring T-DNA insertions in the two MIR394 Arabidopsis genes exhibited an early flowering phenotype correlated with modified expression of flowering genes. In the present study we provide transcriptomic data and histological staining of reporter lines to give further insight into the role of miR394 in the regulation of flowering time in Arabidopsis thaliana and present an initial bioinformatic characterization of a newly identified lncRNA, which is found partially overlapping the MIR394B locus, and therefore we named MIR394B-ASSOCIATED TRANSCRIPT (MIRAST). We identified differential domains of expression during flower development, which together with the transcriptomic analysis allows us to propose a role for miR394 in the fine tuning of Arabidopsis flower development through the regulation of transcription factors and chromatin remodeling factors. Key messageDifferential domains of activity of MIR394A and MIR394B gene promoters together with transcriptomic analysis of mutant plants, indicate that miR394 participates in the fine tuning of Arabidopsis flower development through regulation of transcription factors and chromatin remodeling factors.

plant biology↗

Maize mutants in miR394-regulated genes show improved drought tolerance

Water limitation represents one of the major threats to agricultural production, which often leads to drought stress and results in compromised growth, development and yield of crop species. Drought tolerance has been intensively studied in search for potential targets for molecular approaches to crop improvement. However, drought adaptive traits are complex and our understanding of the physiological and genetic basis of drought tolerance is still incomplete. The miR394-LCR pathway is a conserved regulatory module shown to participate in several aspects of plant growth and development, including stress response. Here we characterized the miR394 pathway in maize, which harbors two genetic loci producing an evolutionarily conserved mature zma-miR394 targeting two transcripts coding for F-Box proteins, named hereby ZmLCR1 and ZmLCR2. Arabidopsis plants overexpressing zma-MIR394B gene showed high tolerance to drought conditions, compared to control plants. Moreover, analysis of growth and development of single and double maize mutant plants in ZmLCR genes indicate that these mutations do not affect plant fitness when they grow in normal watering conditions, but mutants showed better survival than wild type plants under water deprivation conditions. This increased drought tolerance is based on a more efficient intrinsic water use, changes in root architecture and increased epicuticular wax content under water limiting conditions. Our results indicate that the miR394-regulated ZmLCR genes are involved in drought stress tolerance and are remarkable candidates for maize crop improvement.

plant biology↗