The present study represents the first application of base editing in barley plants, using the EIF4E gene as an example, and two newly generated alleles led to resistance upon BaMMV inoculation without adverse effects on yield, proving this approach promising to generate new material for resistance breeding.
Abstract
The barley yellow mosaic virus disease is one of the most important threats of barley production in Europe and Asia. Transmitted by the soil-borne plasmodiophorid Polymyxa graminis, there are no direct control options against the causal bymoviruses Barley Yellow Mosaic Virus (BaYMV) and Barley Mild Mosaic Virus (BaMMV). Resistance breeding is thus the only viable approach and has been very successful in the past, with the resistance-conferring alleles rym4 and rym5 of the EUKARYOTIC TRANSLATION INITIATION FACTOR 4E being used extensively in European winter barley breeding. However, virus strains have meanwhile overcome this resistance. Therefore, there is an urgent need for new sources of resistance. Genome editing with Cas endonucleases is a timely and promising approach in this respect. However, the small insertions and deletions that frequently arise during site-directed mutagenesis usually lead to the knockout of the target genes. In the case of EIF4E, loss-of-function is accompanied by significant yield reduction. Consequently, more precisely edited alleles with retained function are necessary for crop improvement. The present study represents the first application of base editing in barley plants, using the EIF4E gene as an example. Base exchanges were made at two positions in this gene using an nCas9-cytidine deaminase fusion, resulting in a total of 10 novel EIF4E alleles in addition to the introduction of a single nucleotide polymorphism that is part of rym4. Two of these newly generated alleles led to resistance upon BaMMV inoculation without adverse effects on yield, proving this approach promising to generate new material for resistance breeding.
The ecology- and genomics-driven evolution of this economically important virus and strategies targeting streak resistance in maize are discussed, and a five-cardinal agenda for future research covering layered surveillance-supported host resistance, evolutionary surveillance, agro-ecological alignment of breeding, esc...
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Understanding plant resistance to insects has lagged owing to a scarcity of cloned resistance genes. Here we report cloning of the greenbug resistance gene Gb3 in wheat (Triticum aestivum L.), initially introgressed into cultivars such as 'TAM112' from Aegilops tauschii. Gb3 encodes an intracellular kinase-pseudokinase...
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The mutant POLD1 enzyme reported here introduces mutations into the viral genome during replication, thereby disrupting the function of essential viral proteins, and is a powerful resistance mechanism that plant geminiviruses cannot escape.
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R. Hanisia, Alfred Patisenah, H. A. S. M. P. Negara et al.· Journal of Horticultural Res...· 0 citations
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It is demonstrated that elimination of the tan spot susceptibility gene Tsc2 through conventional breeding using a diagnostic marker or disruption of Tsc2 by gene editing can be used to improve tan spot resistance in wheat.
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