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    Evolutionary trade-offs in plant immunity: prioritizing antiviral priming by herbivore-induced plant volatiles over defense against herbivores
    (Springer Nature Publishing AG, 2026) Megaladevi, Pachamuthu; Vadassery, Jyothilakshmi
    Plants respond to insect herbivory by producing and releasing distinctive blends of volatile compounds. These herbivore-induced plant volatiles (HIPVs) serve several roles, including direct defense through toxic or repellent effects on herbivores and indirect defense by attracting the herbivores’ natural enemies (Bleeker et al. 2009; Veyrat et al. 2016). HIPVs also act as warning signals, informing undamaged tissues within the same plant and nearby plants of a pending insect attack (Heil and Bueno 2007). HIPVs are mostly composed of terpenes, fatty acid-derived compounds, and shikimic acid pathway metabolites. In response to certain HIPVs, neighboring plants enter a primed state, preparing for a future attack. As a result, when these primed plants are later attacked by the same herbivore, they can mount a faster and stronger defense response (Arimura et al. 2009). However, many specialized herbivores and pathogens can overcome, and often manipulate, these defenses to thrive on their specific host plants. Some insect vectors have evolved mutualisms with their viruses, e.g., some begomoviruses suppress terpenoid emissions that negatively affect their whitefly vectors (Bleeker et al. 2009). HIPV emissions vulnerable to manipulation include the generalist whitefly Bemisia tabaci-induced volatile blend (composed of the monoterpenes β-myrcene and ρ-cymene, and the sesquiterpene β-caryophyllene). These whitefly-induced volatiles prime salicylic acid-dependent defenses against pathogens in tomato plants while suppressing jasmonic acid-dependent defenses against herbivores, thus rendering neighboring tomato plants more susceptible to whiteflies (Zhang et al. 2019). This appears to be paradoxical and warrants further investigation.
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    Diverse roles of phytohormonal signaling in modulating plant-virus interaction
    (Oxford University Press, 2025) Sharma, Shambhavi; Prasad, Manoj
    Virus infection brings about changes in the transcriptome, proteome and metabolome status of the infected plant wherein substantial alterations in the abundance of phytohormones and associated components involved in their signaling pathways have been observed. In the recent years, extensive research in the field of plant virology has showcased the undisputable significance of phytohormone signaling during plant-virus interactions. Apart from acting as growth regulators, phytohormones elicit robust immune response, which restricts the viral multiplication within the plant as well as its propagation by vector. Interestingly, these pathways have been shown to not only act as isolated mechanisms but as complex intertwined regulatory cascades where, the cross-talk among different phytohormones and with other antiviral pathways takes place during plant-virus interplay. Viruses cleverly disrupt phytohormone homeostasis via their multifunctional effectors that seems to be smart approach adopted by viruses to circumvent phytohormone-mediated plant immune responses. In this review, we summarize the current understanding of role of phytohormone signaling pathways during plant-virus interaction in activating antiviral immune responses of plant and also, how viruses exploit these signaling pathways favoring their pathogenesis.
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    Shedding light on immune suppression at high temperature
    (Elsevier B.V., 2022) Prasad, Ashish; Chirom, Oceania; Prasad, Manoj
    Rising temperatures pose a threat to agriculture in the present times. Salicylic acid (SA) accumulation and signaling is repressed at high temperatures leading to a compromise in plant immunity against pathogens. The mechanism behind this suppression was unknown. Recent evidence from Kim et al. suggests that CBP60g transcription is the key thermosensitive step.
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    N-acetylglucosamine sensing and metabolic engineering for attenuating human and plant pathogens
    (MDPI AG, 2022) Ansari, Sekhu; Kumar, Vinay; Bhatt, Dharmendra Nath; Irfan, Mohammad; Datta, Asis
    During evolution, both human and plant pathogens have evolved to utilize a diverse range of carbon sources. N-acetylglucosamine (GlcNAc), an amino sugar, is one of the major carbon sources utilized by several human and phytopathogens. GlcNAc regulates the expression of many virulence genes of pathogens. In fact, GlcNAc catabolism is also involved in the regulation of virulence and pathogenesis of various human pathogens, including Candida albicans, Vibrio cholerae, Leishmania donovani, Mycobacterium, and phytopathogens such as Magnaporthe oryzae. Moreover, GlcNAc is also a well-known structural component of many bacterial and fungal pathogen cell walls, suggesting its possible role in cell signaling. Over the last few decades, many studies have been performed to study GlcNAc sensing, signaling, and metabolism to better understand the GlcNAc roles in pathogenesis in order to identify new drug targets. In this review, we provide recent insights into GlcNAc-mediated cell signaling and pathogenesis. Further, we describe how the GlcNAc metabolic pathway can be targeted to reduce the pathogens’ virulence in order to control the disease prevalence and crop productivity.
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    Ribosomal protein QM/RPL10 positively regulates defence and protein translation mechanisms during nonhost disease resistance
    (John Wiley & Sons, 2020) Ramu, Vemanna S.; Dawane, Akashata; Lee, Seonghee; Oh, Sunhee; Lee, Hee-Kyung; Sun, Liang; Senthil-Kumar, Muthappa; Mysore, Kirankumar S.
    Ribosomes play an integral part in plant growth, development, and defence responses. We report here the role of ribosomal protein large (RPL) subunit QM/RPL10 in nonhost disease resistance. The RPL10-silenced Nicotiana benthamiana plants showed compromised disease resistance against nonhost pathogen Pseudomonas syringae pv. tomato T1. The RNA-sequencing analysis revealed that many genes involved in defence and protein translation mechanisms were differentially affected due to silencing of NbRPL10. Arabidopsis AtRPL10 RNAi and rpl10 mutant lines showed compromised nonhost disease resistance to P. syringae pv. tomato T1 and P. syringae pv. tabaci. Overexpression of AtRPL10A in Arabidopsis resulted in reduced susceptibility against host pathogen P. syringae pv. tomato DC3000. RPL10 interacts with the RNA recognition motif protein and ribosomal proteins RPL30, RPL23, and RPS30 in the yeast two-hybrid assay. Silencing or mutants of genes encoding these RPL10- interacting proteins in N. benthamiana or Arabidopsis, respectively, also showed compromised disease resistance to nonhost pathogens. These results suggest that QM/ RPL10 positively regulates the defence and translation-associated genes during nonhost pathogen infection.