Selective Autophagy in Plant Immunity: Mechanisms, Regulation, and Emerging Concepts in Xenophagy

Selective autophagy has emerged as a critical component of plant immunity, yet its role as a dedicated antimicrobial mechanism, xenophagy, remains conceptually underdeveloped. In plants, xenophagy extends beyond bulk degradation to function as a highly regulated, cargo-specific pathway that targets invading pathogens and their effector molecules for autophagic clearance. Recent evidence demonstrates that selective autophagy receptors, particularly NBR1, integrate ubiquitin-mediated recognition with ATG8-dependent sequestration, enabling the elimination of bacterial, fungal, and viral components. However, this process is not merely degradative but operates at the intersection of immune signaling, proteostasis, and cellular decision-making. Here, we synthesize current advances in plant xenophagy and propose a unifying framework in which xenophagy appears to function as a cell-autonomous immune hub comprising three interconnected modules: cargo recognition, selective sequestration, and autophagic execution, dynamically modulated by pathogen-derived countermeasures. We further examine how pathogens subvert or exploit host autophagic machinery, revealing xenophagy as a contested interface in plant-pathogen interactions. By integrating molecular, cellular, and cross-kingdom perspectives, we highlight key conceptual gaps, including the specificity of cargo selection, the regulatory logic of receptor engagement, and the coordination between autophagy and canonical immune pathways. Resolving these gaps will be essential for repositioning xenophagy as a central determinant of plant immune competence, with significant implications for engineering disease-resistant crops.

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Publication Details

Journal
Plant Cell & Environment
Published
2026-09-01
DOI
https://doi.org/10.1111/pce.70830
Primary Topic
Plant-Microbe Interactions and Immunity
Type
article
Field-Weighted Citation Impact
0.00

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article

Selective Autophagy in Plant Immunity: Mechanisms, Regulation, and Emerging Concepts in Xenophagy

Mehanathan Muthamilarasan, Laha Supriya, Padmaja Gudipalli, Namisha Sharma et al.
Plant Cell & Environment
Plant-Microbe Interactions and Immunity
article

Selective Autophagy in Plant Immunity: Mechanisms, Regulation, and Emerging Concepts in Xenophagy

Mehanathan Muthamilarasan, Laha Supriya, Padmaja Gudipalli, Namisha Sharma, Pooja Shukla, Deepika Dake
article en

Abstract

Selective autophagy has emerged as a critical component of plant immunity, yet its role as a dedicated antimicrobial mechanism, xenophagy, remains conceptually underdeveloped. In plants, xenophagy extends beyond bulk degradation to function as a highly regulated, cargo-specific pathway that targets invading pathogens and their effector molecules for autophagic clearance. Recent evidence demonstrates that selective autophagy receptors, particularly NBR1, integrate ubiquitin-mediated recognition with ATG8-dependent sequestration, enabling the elimination of bacterial, fungal, and viral components. However, this process is not merely degradative but operates at the intersection of immune signaling, proteostasis, and cellular decision-making. Here, we synthesize current advances in plant xenophagy and propose a unifying framework in which xenophagy appears to function as a cell-autonomous immune hub comprising three interconnected modules: cargo recognition, selective sequestration, and autophagic execution, dynamically modulated by pathogen-derived countermeasures. We further examine how pathogens subvert or exploit host autophagic machinery, revealing xenophagy as a contested interface in plant-pathogen interactions. By integrating molecular, cellular, and cross-kingdom perspectives, we highlight key conceptual gaps, including the specificity of cargo selection, the regulatory logic of receptor engagement, and the coordination between autophagy and canonical immune pathways. Resolving these gaps will be essential for repositioning xenophagy as a central determinant of plant immune competence, with significant implications for engineering disease-resistant crops.

Plant Cell & Environment
University of Hyderabad (IN), Institute of Life Sciences (IN)
Department of Biotechnology, Ministry of Science and Technology, India, Department of Science and Technology, Ministry of Science and Technology, India, University of Hyderabad
Peace, Justice and strong institutions
Openalex Percentile: Top 13%
Plant-Microbe Interactions and Immunity
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