Mechanisms of grapevine resilience to a vascular disease: investigating stem radial growth, xylem development and physiological acclimation

木质部 生物 维管形成层 血管组织 植物 开枪 蒸腾作用 生长季节 气孔导度 适应 栽培 园艺 形成层 光合作用
作者
Ninon Dell’Acqua,Grégory A. Gambetta,Sylvain Delzon,Nathalie Ferrer,Laurent J. Lamarque,Nicolas Saurin,Pauline Theodore,Chloé E. L. Delmas
出处
期刊:Annals of Botany [Oxford University Press]
被引量:2
标识
DOI:10.1093/aob/mcad188
摘要

Abstract Background and Aims Plant vascular diseases significantly impact crop yield worldwide. Esca is a vascular disease of grapevine found globally in vineyards which causes a loss of hydraulic conductance due to the occlusion of xylem vessels by tyloses. However, the integrated response of plant radial growth and physiology in maintaining xylem integrity in grapevine expressing esca symptoms remains poorly understood. Methods We investigated the interplay between variation in stem diameter, xylem anatomy, plant physiological response and hydraulic traits in two widespread esca-susceptible cultivars, ‘Sauvignon blanc’ and ‘Cabernet Sauvignon’. We used an original experimental design using naturally infected mature vines which were uprooted and transplanted into pots allowing for their study in a mini-lysimeter glasshouse phenotyping platform. Key Results Esca significantly altered the timing and sequence of stem growth periods in both cultivars, particularly the shrinkage phase following radial expansion. Symptomatic plants had a significantly higher density of occluded vessels and lower leaf and whole-plant gas exchange. Esca-symptomatic vines showed compensation mechanisms, producing numerous small functional xylem vessels later in development suggesting a maintenance of stem vascular cambium activity. Stabilization or late recovery of whole-plant stomatal conductance coincided with new healthy shoots at the top of the plant after esca symptoms plateaued. Conclusions Modified cropping practices, such as avoiding late-season topping, may enhance resilience in esca-symptomatic plants. These results highlight that integrating dendrometers, xylem anatomy and gas exchange provides insights into vascular pathogenesis and its effects on plant physiology.

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