bioRxiv Science⌕ Search

Biology subjects

Kuroyanagi, T.

Publications and source records attributed to Kuroyanagi, T..

2 recordsLinked to original sources

Functional characterization of Botrytis cinerea ABC transporter gene BcatrB in response to phytoalexins produced in plants belonging to families Solanaceae, Brassicaceae and Fabaceae

Botrytis cinerea, a generalist fungal pathogen of economically important crop species, has been shown to exhibit reduced sensitivity to fungicides and plant toxins. Specifically, previous reports indicate B. cinereas efficacy in tolerating a wide array of phytoalexins, toxic plant metabolites that play key role in plant immune defense strategies. Previously, we have shown that a distinct set of genes was induced in B. cinerea when treated with phytoalexins derived from different plant species such as rishitin (tomato and potato), capsidiol (tobacco and bell pepper) or resveratrol (grape and blueberry). In this study, we focused on the functional analyses of B. cinerea genes induced by rishitin treatment. B. cinerea can metabolize rishitin to at least 4 oxidized forms. Heterologous expression of rishitin-induced B. cinerea genes in the plant symbiotic fungus, Epichloe festucae, revealed that oxidoreductase (Bcin08g04910) and cytochrome P450 (Bcin16g01490) genes are involved in the oxidation of rishitin. BcatrB is an exporter of structurally unrelated anti-microbial compounds such as resveratrol, camalexin and fungicide fenpicionil. Expression of BcatrB is upregulated by rishitin, but not by structurally resembling capsidiol. BcatrB knock out transformants ({Delta}bcatrB) showed enhanced sensitivity to rishitin, but not to capsidiol. Likewise,{Delta} bcatrB showed reduced virulence on tomato fruits (which produce rishitin), but showed full virulence on Nicotiana benthamiana (which mainly produces capsidiol), suggesting that B. cinerea distinguishes phytoalexins and activates expression of appropriate transporter genes during the infection. Activation of BcatrB promoter was detected using P_BcatrB:GFP transformant during the B. cinerea infection in plant tissues. Surveying of 26 plant species across 13 families revealed that the BcatrB promoter is mainly activated during the infection of plants belonging to the Solanaceae, Fabaceae and Brassicaceae families. The BcatrB promoter is activated by the treatment with Fabaceae phytoalexins medicarpin and glyceollin, and{Delta} bcatrB showed reduced virulence on red clover, which produces medicarpin. These results suggest that BcatrB plays a critical role in the strategy employed by B. cinerea to bypass the plant innate immune responses in a wide variety of important crops belonging to the Solanaceae, Brassicaceae and Fabaceae families.

microbiology↗

Botrytis cinerea identifies host plants via the recognition of antifungal capsidiol to induce expression of a specific detoxification gene

The gray mold pathogen Botrytis cinerea has a broad host range, causing disease in over 400 plant species, but it is not known how this pathogen evolved this polyxenous nature. B. cinerea can metabolize a wide range of phytoalexins, including the stilbenoid, resveratrol, and the sesquiterpenoids capsidiol in tobacco, and rishitin in potato and tomato. In this study, we analyzed the metabolism of sesquiterpenoid phytoalexins by B. cinerea. Capsidiol was dehydrogenated to capsenone which was then further oxidized, while rishitin was directly oxidized to epoxy-or hydroxy-rishitins indicating that B. cinerea has separate mechanisms to detoxify structurally similar sesquiterpenoid phytoalexins. RNAseq analysis revealed that a distinct set of genes were induced in B. cinerea when treated with capsidiol or rishitin, suggesting that B. cinerea can distinguish structurally similar phytoalexins to activate appropriate detoxification mechanisms. The gene most highly upregulated by capsidiol treatment encoded a dehydrogenase, designated Bccpdh. Heterologous expression of Bccpdh in a capsidiol-sensitive plant symbiotic fungus, Epichloe festucae, resulted in an acquired tolerance of capsidiol and the ability to metabolize capsidiol to capsenone, while B. cinerea {Delta}bccpdh mutants became relatively sensitive to capsidiol. The{Delta} bccpdh mutant showed reduced virulence on the capsidiol producing Nicotiana and Capsicum species but remained fully pathogenic on potato and tomato. Homologs of Bccpdh are not found in taxonomically distant Ascomycota fungi but not in related Leotiomycete species, suggesting that B. cinerea acquired the ancestral Bccpdh by horizontal gene transfer, thereby extending the pathogenic host range of this polyxenous pathogen to capsidiol-producing plant species. Significance StatementB. cinerea can metabolize a wide range of phytoalexins, however, the extent to which phytoalexin detoxification contributes to pathogenicity is largely unknown. In this study, we have shown that B. cinerea recognizes structurally resembling sesquiterpenoid phytoalexins, rishitin and capsidiol, to activate appropriate detoxification mechanisms. We identify Bccpdh, encoding a dehydrogenase for capsidiol detoxification, which is upregulated in B. cinerea exclusively during the infection of capsidiol producing plant species, and is required to exert full virulence. Analysis of the Bccpdh locus implicates that the gene was acquired via horizontal gene transfer. This work highlights that the polyxenous plant pathogen B. cinerea can distinguish its host plants by its anti-microbial compounds, to activate appropriate mechanisms for enhanced virulence.

microbiology↗