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Menon, S. H.

Publications and source records attributed to Menon, S. H..

2 recordsLinked to original sources

The systemically induced sugar transporter SWEET11 regulates growth-defense trade-offs during Serendipita indica symbiosis in Arabidopsis

Sugar exchange at the root interface is a pivotal process governing the establishment and stability of plant-fungal symbioses. Precise regulation of sugar exchange determines the success of this ecologically significant interaction. Sugar Will Eventually be Exported proteins (SWEETs) constitute a family of regulatory, energy-independent bidirectional sugar transporters that influence plant development, stress resilience, and survival. However, how specific SWEET transporters coordinate systemic carbon allocation and immune regulation during beneficial plant-fungal interactions remains poorly understood. In this study, we examined the role of the systemically induced Arabidopsis sugar transporter SWEET11 during association with the beneficial endophytic fungus Serendipita indica and following treatment with its elicitor, cellotriose (CT). Expression profiling of SWEET family members revealed a rapid and preferential induction of SWEET11 in aerial tissues upon fungal colonization and CT treatment. Loss-of-function of SWEET11 compromises key mutualistic outcomes, including plant growth enhancement, fungal colonization efficiency, penetration ability, carbohydrate distribution, and the regulation of defense-related phytohormones such as jasmonic acid and abscisic acid. Global transcriptome analysis further demonstrated that SWEET11 regulates whole-plant responses by orchestrating genes involved in central metabolism, secondary metabolite production, sesquiterpenoid and triterpenoid pathways, as well as defense signaling and nutrient transport systems. We show that SWEET11 interacts with a stress associated SNF1-related protein kinase (SnRK2.8) and plays a crucial role in enabling fungal establishment while mitigating host defense responses, and supporting plant growth. Our data shows that SWEET11 functions as a shoot-derived sugar exporter that directs carbon toward roots, facilitating sugar unloading to S. indica. This controlled carbon supply allows the fungus to meet its metabolic demands without disrupting host sugar balance, thereby maintaining a stable and well-regulated symbiotic association under immune constraints.

plant biology↗

Arabidopsis SWEET12 regulates sugar allocation and defense responses to sustain beneficial association with Serendipita indica in roots

Carbon availability is a central determinant of beneficial plant-fungal associations, and sugar transporters are key levers of this exchange. SWEETs (SUGARS WILL EVENTUALLY BE EXPORTED TRANSPORTER) are involved in transporting various kinds of sugars in plants; however, their functional roles in fungal symbiosis are not sufficiently explored. In this study, we investigate the functional relevance of Arabidopsis SWEETs in the interaction with endophytic fungi, Serendipita indica. Transcript profiling of SWEET genes in response to S. indica and its major elicitor, cellotriose, revealed early root-specific induction of SWEET12. Using a SWEET12 loss-of-function mutant, we demonstrate that the absence of SWEET12 disrupts the major outcomes of mutualism including growth promotion, balanced colonization, sugar allocation, and the accumulation of defense phytohormones (JA and SA). Transcriptome profiling further reveals that SWEET12 buffers whole-plant responses by coordinating genes linked to carbohydrate, nitrogen, and lipid metabolism, and by tuning defense signalling and nutrient transporter networks. Our findings indicate that SWEET12 is essential for balancing fungal colonization and host defense, thereby promoting plant growth. SWEET12 does so by acting as sugar valve that meters sugar release to the apoplast, enabling the fungus to access carbon while preserving host sugar homeostasis and immune competence.

plant biology↗