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MiDaf16-like and MiSkn1-like Gene Families Are Reliable Targets to Develop Biotechnological Tools for the Control and Management of Meloidogyne Incognita

Abstract

Meloidogyne incognita is a plant-parasitic root-knot nematode (RKN, PPN) responsible for causing damage to several crops worldwide. In Caenorhabditis elegans, the DAF-16 and SKN-1 transcription factors (TFs) orchestrate aging, longevity, and defense responses to several stresses. Here, we report that MiDaf16-like1 and MiSkn1-like1, which are orthologous to DAF-16 and SKN-1 in C. elegans, and some of their targets, are modulated in M. incognita J2 during oxidative stress or plant parasitism. We used RNAi technology for the stable production of siRNAs in planta to downregulate the MiDaf16-like1 and MiSkn1-like1 genes of M. incognita during host plant parasitism. Arabidopsis thaliana and Nicotiana tabacum overexpressing a hairpin-derived dsRNA targeting these genes individually (single-gene silencing) or simultaneously (double-gene silencing) were generated. T plants were challenged with M. incognita and the number of eggs, galls, and J2, and the nematode reproduction factor (NRF) were evaluated. Our data indicate that MiDaf16-like1, MiSkn1-like1 and some genes from their networks are modulated in M. incognita J2 during oxidative stress or plant parasitism. Transgenic A. thaliana and N. tabacum plants with single- or double-gene silencing showed significant reductions in the numbers of eggs, J2, and galls, and in NRF. Additionally, the double-gene silencing plants had the highest resistance level. Gene expression assays confirmed the downregulation of the MiDaf16-like1 and MiSkn1-like1 TFs and defense genes in their networks during nematode parasitism in the transgenic plants. All these findings demonstrate that these two TFs are potential targets for the development of biotechnological tools for nematode control and management in economically important crops.

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References
1.
Shukla N, Yadav R, Kaur P, Rasmussen S, Goel S, Agarwal M . Transcriptome analysis of root-knot nematode (Meloidogyne incognita)-infected tomato (Solanum lycopersicum) roots reveals complex gene expression profiles and metabolic networks of both host and nematode during susceptible and resistance responses. Mol Plant Pathol. 2017; 19(3):615-633. PMC: 6638136. DOI: 10.1111/mpp.12547. View

2.
Antonino de Souza Junior J, Pierre O, Coelho R, Grossi-de-Sa M, Engler G, Engler J . Application of Nuclear Volume Measurements to Comprehend the Cell Cycle in Root-Knot Nematode-Induced Giant Cells. Front Plant Sci. 2017; 8:961. PMC: 5466992. DOI: 10.3389/fpls.2017.00961. View

3.
Engler J, Van Poucke K, Karimi M, De Groodt R, Gheysen G, Engler G . Dynamic cytoskeleton rearrangements in giant cells and syncytia of nematode-infected roots. Plant J. 2004; 38(1):12-26. DOI: 10.1111/j.1365-313X.2004.02019.x. View

4.
Engler J, Kyndt T, Vieira P, Van Cappelle E, Boudolf V, Sanchez V . CCS52 and DEL1 genes are key components of the endocycle in nematode-induced feeding sites. Plant J. 2012; 72(2):185-98. DOI: 10.1111/j.1365-313X.2012.05054.x. View

5.
Melakeberhan H, Webster J, Brooke R, DAuria J, Cackette M . Effect of Meloidogyne incognita on Plant Nutrient Concentration and Its Influence on the Physiology of Beans. J Nematol. 2009; 19(3):324-30. PMC: 2618653. View