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Delgado-Martin, J.

Publications and source records attributed to Delgado-Martin, J..

2 recordsLinked to original sources

Carbon dots boost dsRNA delivery in plants and increase local and systemic siRNA production

Carbon dots (CDs) have been proposed for nucleic acid delivery in many biological applications. In this work we have obtained carbon dots by a hydrothermal synthesis method for developing nanocomposites with dsRNA. These CDs were produced using glucose or saccharose as the nucleation source and passivated with branched polyethyleneimines for conferring positive charges. Hydrodynamic analyses and transmission electron microscopy TEM showed that they sized on average 4 and 5 nm, depending on the sugar. The CDs were fluorescent and showed a peak at 468 nm when excited with UV light. Physicochemical characteristics of their surfaces were revealed by X-ray photoelectron spectroscopy (XPS) and Fourier transform infrared spectroscopy (FT-IR). The {zeta} potential determined that both types of CDs had positive charges as well as good electrophoretic mobility and conductivity. Coating of the CDs to dsRNA was efficient but did not protect from nucleases. DsRNA naked or coated with the CDs were delivered to leaves of cucumber plants by spraying at 2.5 bar. Quantitation of the dsRNA that entered the leaves showed that when coated with the CDs, 50-fold more dsRNA was detected than when naked dsRNA was applied. Moreover, specific siRNAs derived from the sprayed dsRNAs were 130 times more abundant when the dsRNA was coated with the CDs. Systemic dsRNAs were determined in distal leaves showing a dramatic increase in concentration when delivered as a nanocomposite. Similarly, systemic siRNAs were significantly more abundant in distal leaves when spraying with the CD-dsRNA nanocomposite. Furthermore, FITC-labeled dsRNA was shown to accumulate in the apoplast and increase its entry in the plant when coated with CDs. These results indicate that CDs obtained by hydrothermal synthesis are suitable for dsRNA foliar delivery in RNAi plant applications and provide insight into CD-dsRNA translocations.

plant biology↗

Exogenous application of dsRNA for the control of viruses in cucurbits

The recurrent emergence of virus diseases in intensive horticultural crops requires alternative control strategies. Topical application of dsRNA molecules homologous to pathogens has been proposed as a tool for plant virus control. These dsRNAs induce the silencing mechanism (RNAi) that degrades homologous dsRNAs. Cucumber green mottle mosaic virus (CGMMV) represents a serious threat to cucurbit crops. Since genetic resistance to the virus is not yet available in commercial varieties, we aimed to control this virus by RNAi. For this purpose, we obtained constructions both for expressing dsRNA in bacteria to treat cucumber plants by topical application and for agroinoculation in experiments done in the growth chamber. Besides, greenhouse tests were performed in spring and in summer when plants were challenged with the virus and differences in several parameters were investigated, including severity of symptoms, dry weight, total height, virus accumulation and virus-derived small interfering RNAs (vsiRNAs). Spraying of plants with dsRNA reduced significatively CGMMV symptoms in the plants in growth chamber tests. Agroinfiltration experiments done under identical conditions were also effective in limiting the progress of CGMMV disease. In the greenhouse assay performed in spring, symptoms were significatively reduced in dsRNA-sprayed plants and the development of the plants improved with respect to non-treated plants. Virus titters and vsiRNAs were clearly reduced in dsRNA-treated plants. The effect of protection of the dsRNA was less evident in the greenhouse assay carried out in summer. Besides, we investigated the mobility of long (ds)RNA derived from spraying or agroinfiltrated dsRNA and found that it could be detected in local, close distal and far distal points from the site of application. VsiRNAs were also detected in local and distal points and the differences in accumulation were compared. In parallel, we investigated the capacity of dsRNAs derived from genes of tomato leaf curl New Delhi virus (ToLCNDV), another economically important virus in cucurbits, to limit the disease in zucchini, both by agroinfiltration or direct spraying, but found no protection effect. In view of the results, topical application of dsRNAs is postulated as a promising strategy for CGMMV control in cucumber.

plant biology↗