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Cell-type-specific transcriptomics reveals that root hairs and endodermal barriers play important roles in beneficial plant-rhizobacterium interactions

摘要Growth-and health-promoting bacteria can boost crop productivity in a sustainable way.Pseudomonas sim-iae WCS417 is such a bacterium that efficiently colonizes roots,modifies the architecture of the root system to increase its size,and induces systemic resistance to make plants more resistant to pests and pathogens.Our previous work suggested that WCS417-induced phenotypes are controlled by root cell-type-specific mech-anisms.However,it remains unclear how WCS417 affects these mechanisms.In this study,we transcription-ally profiled five Arabidopsis thaliana root cell types following WCS417 colonization.We found that the cortex and endodermis have the most differentially expressed genes,even though they are not in direct contact with this epiphytic bacterium.Many of these genes are associated with reduced cell wall biogenesis,and mutant analysis suggests that this downregulation facilitates WCS417-driven root architectural changes.Further-more,we observed elevated expression of suberin biosynthesis genes and increased deposition of suberin in the endodermis of WCS417-colonized roots.Using an endodermal barrier mutant,we showed the impor-tance of endodermal barrier integrity for optimal plant-beneficial bacterium association.Comparison of the transcriptome profiles in the two epidermal cell types that are in direct contact with WCS417-trichoblasts that form root hairs and atrichoblasts that do not-implies a difference in potential for defense gene activation.While both cell types respond to WCS417,trichoblasts displayed both higher basal and WCS417-dependent activation of defense-related genes compared with atrichoblasts.This suggests that root hairs may activate root immunity,a hypothesis that is supported by differential immune responses in root hair mutants.Taken together,these results highlight the strength of cell-type-specific transcriptional profiling to uncover"masked"biological mechanisms underlying beneficial plant-microbe associations.

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作者 Eline H.Verbon [1] Louisa M.Liberman [2] Jiayu Zhou [1] Jie Yin [1] Corné M.J.Pieterse [1] Philip N.Benfey [2] Ioannis A.Stringlis [3] Ronnie de Jonge [1] 学术成果认领
作者单位 Plant-Microbe Interactions,Department of Biology,Science4Life,Utrecht University,P.O.Box 800.56,3508 TB Utrecht,the Netherlands [1] Howard Hughes Medical Institute,Duke University,Durham,NC 27708,USA;Department of Biology,Duke University,Durham,NC 27708,USA [2] Plant-Microbe Interactions,Department of Biology,Science4Life,Utrecht University,P.O.Box 800.56,3508 TB Utrecht,the Netherlands;Laboratory of Plant Pathology,Agricultural University of Athens,75 lera Odos str.,11855 Athens,Greece [3]
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DOI 10.1016/j.molp.2023.06.001
发布时间 2023-12-20(万方平台首次上网日期,不代表论文的发表时间)
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分子植物(英文版)

分子植物(英文版)

2023年16卷7期

1160-1177页

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