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Hak, H.

Publications and source records attributed to Hak, H..

3 recordsLinked to original sources

Tm-22 resistance targets a conserved cysteine essential for tobacco mosaic virus (TMV) movement

The tomato Tm-22 gene was considered one of the most durable resistance genes in agriculture, protecting against viruses of the Tobamovirus genus, such as Tomato mosaic virus (ToMV) and Tobacco mosaic virus (TMV). However, an emerging tobamovirus, Tomato brown rugose fruit virus (ToBRFV), has overcome Tm-22, damaging tomato production worldwide. Tm-22 encodes a nucleotide-binding leucine-rich repeat (NLR) class immune receptor that recognizes its effector, the tobamovirus movement protein (MP). Previously, we found that ToBRFV MP (MPToBRFV) enabled the virus to overcome Tm-22- mediated resistance. Yet, it was unknown how Tm-22 remained durable against other tobamoviruses, such as TMV and ToMV, for over 60 years. Here, we show that the presence of a conserved cysteine (C68) in the MP of TMV (MPTMV) is both sufficient to trigger Tm-22 resistance and essential for viral movement. Substitution of MPToBRFV amino acid H67 with the corresponding amino acid in MPTMV (C68) activated Tm-22-medited resistance. However, replacement of C68 in TMV and ToMV disabled the infectivity of both viruses. Phylogenetic and structural prediction analysis revealed that C68 is conserved among all Solanaceae-infecting tobamoviruses except ToBRFV, and localizes to a predicted jelly-roll fold common to various MPs. Cell-to-cell, and subcellular movement analysis showed that C68 is required for the movement of TMV, by regulating the MP interaction with the endoplasmic reticulum and targeting it to plasmodesmata. The dual role of C68 in viral movement and Tm-22 immune activation could explain how TMV was unable to overcome this resistance for such a long period.

plant biology↗

Differential detection of Tomato mosaic virus (ToMV) and Tomato brown rugose fruit virus (ToBRFV) using CRISPR-Cas12

CRISPR/Cas12-based detection is a novel approach for efficient, sequence-specific identification of viruses. Here we adopt the use of CRISPR/Cas12a to identify the Tomato brown rugose fruit virus (ToBRFV), a new and emerging Tobamovirus causing substantial damage to the global tomato industry. Specific guide RNAs (gRNAs) were designed to detect either ToBRFV or the closely related Tomato mosaic virus (ToMV). This technology enabled the differential detection of ToBRFV and ToMV. Sensitivity assays revealed that viruses can be detected from 15-30 ng of RT-PCR product, and that specific detection could be achieved from a mix of ToMV and ToBRFV. In addition, we show that this method enabled the identification of ToBRFV in samples collected from commercial greenhouses. These results demonstrate a new method for species-specific detection of plant viruses. This could provide a platform for the development of efficient and user-friendly ways to distinguish between closely related strains and resistance-breaking pathogens.

molecular biology↗

The Tomato brown rugose fruit virus movement protein overcomes Tm-22 resistance while attenuating viral transport

Tomato brown rugose fruit virus (ToBRFV) is a new virus of the Tobamovirus genus, causing substantial damage to tomato crops in the Middle East. Reports of recent ToBRFV outbreaks from around the world indicate an emerging global epidemic. ToBRFV overcomes all tobamovirus resistances in tomato, including the durable Tm-22 resistance gene. Here, we show that the ToBRFV movement protein (MPToBRFV) is the cause for overcoming Tm-22 resistance. Transient expression of MPToBRFV failed to activate the Tm-22 resistance response. Replacement of the original MP sequences of Tomato mosaic virus (ToMV) with MPToBRFV enabled this recombinant virus to overcome Tm-22 resistance. Hybrid protein analysis revealed that the resistance-breaking elements are located between MPToBRFV amino acids 1 and 216, and not the C terminus as previously assumed. Interestingly, replacement of Tobacco mosaic virus (TMV) and ToMV MPs with MPToBRFV caused an attenuation of systemic infection of both viruses. Cell-to-cell movement analysis revealed that MPToBRFV moves less effectively compared to the TMV MP (MPTMV). These findings suggest that overcoming Tm-22 is associated with attenuated MP function. This viral fitness cost may explain the high durability of Tm-22 resistance, which had remained unbroken for over 60 years.

plant biology↗