Methyl-salicylate: A surveillance system for triggering immunity in neighboring plants

Saumya Jaiswal , Durgesh Kumar Tripathi , Ravi Gupta , Jing He , Zhong-Hua Chen , Vijay Pratap Singh

Journal of Integrative Plant Biology ›› 2024, Vol. 66 ›› Issue (2) : 163 -165.

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Journal of Integrative Plant Biology ›› 2024, Vol. 66 ›› Issue (2) :163 -165. DOI: 10.1111/jipb.13621
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Methyl-salicylate: A surveillance system for triggering immunity in neighboring plants

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Saumya Jaiswal, Durgesh Kumar Tripathi, Ravi Gupta, Jing He, Zhong-Hua Chen, Vijay Pratap Singh. Methyl-salicylate: A surveillance system for triggering immunity in neighboring plants. Journal of Integrative Plant Biology, 2024, 66(2): 163-165 DOI:10.1111/jipb.13621

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References

[1]

Bouwmeester,H., Schuurink, R.C., Bleeker,P.M., and Schiestl,F. (2019). The role of volatiles in plant communication. Plant J. 100: 892-907.

[2]

Cascone,P., Vuts,J., Birkett,M.A., Rasmann,S., Pickett, J.A., and Guerrieri,E. (2023). Small volatile lipophilic molecules induced belowground by aphid attack elicit a defensive response in neighbouring un-infested plants. Front. Plant Sci. 14: 1154587.

[3]

Chen,J., Clinton, M., Qi,G., Wang,D., Liu,F., and Fu,Z.Q. (2020). Reprogramming and remodeling: Transcriptional and epigenetic regulation of salicylic acid-mediated plant defense. J. Exp. Bot. 71: 5256-5268.

[4]

Ding,P., and Ding, Y. (2020). Stories of salicylic acid: A plant defense hormone. Trends Plant Sci. 25: 549-565.

[5]

Dong,H., Zhang,W., Li,Y., Feng, Y., Wang,X., Liu,Z., Li,D., Wen,X., Ma, S., and Zhang,X. (2022). Overexpression of salicylic acid methyltransferase reduces salicylic acid-mediated pathogen resistance in poplar. Front. Plant Sci. 13: 973305.

[6]

Gondor,O.K., Pál, M., Janda,T., and Szalai,G. (2022). The role of methyl salicylate in plant growth under stress conditions. J. Plant Physiol. 277: 153809.

[7]

Gong,Q., Wang,Y., He,L., Huang, F., Zhang,D., Wang,Y., Wei,X., Han,M., Deng, H., Luo,L., et al. (2023). Molecular basis of methyl-salicylate-mediated plant airborne defence. Nature 622: 139-148.

[8]

Iqbal,Z., Iqbal,M.S., Hashem,A., Abd_Allah, E.F., and Ansari,M.I. (2021). Plant defense responses to biotic stress and its interplay with fluctuating dark/light conditions. Front. Plant Sci. 12: 631810.

[9]

Ninkovic,V., Glinwood, R., ÜnlüA.G., Ganji,S., and Unelius, C.R. (2021). Effects of methyl salicylate on host plant acceptance and feeding by the aphid Rhopalosiphum padi. Front. Plant Sci. 12: 710268.

[10]

Sugimoto,K., Ono,E., Inaba,T., Tsukahara, T., Matsui,K., Horikawa,M., Toyonaga, H., Fujikawa,K., Osawa,T., Homma,S., et al. (2023). Identification of a tomato UDP-arabinosyltransferase for airborne volatile reception. Nat. Commun. 14: 677.

[11]

Wenig,M., Ghirardo, A., Sales,J.H., Pabst,E.S., Breitenbach, H.H., Antritter,F., Weber,B., Lange,B., Lenk,M., Cameron, R.K., et al. (2019). Systemic acquired resistance networks amplify airborne defense cues. Nat. Commun. 10: 3813.

[12]

Zhang,Y., and Li, X. (2019). Salicylic acid: Biosynthesis, perception, and contributions to plant immunity. Curr. Opin. Plant Biol. 50: 29-36.

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2024 Institute of Botany, Chinese Academy of Sciences.

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