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2篇 您的检索式:作者名="Alexandre Martiniere"
    题名 作者 年代 出处 被引量
1Super-Resolved and Dynamic Imaging of Membrane Proteins in Plant Cells Reveal Contrasting Kinetic Profiles and Multiple Confinement Mechanisms显示文摘Dear Editor, Microscopic techniques allow either a global mobility analysis of proteins with fluorescence recovery after photobleaching (FRAP) or single-protein mobility characterization with single-particle or quantum dot tracking.For instance,total internal reflection fluorescence microscopy allowed single-particle tracking (SPT) of Arabidopsis plasma membrane (PM) proteins,revealing their heterogeneous distribution,low lateral diffusion,and dynamic properties in response to salt stress (Li et al.,2011).Studies of SPT based on green fluorescent protein are unfortunately restricted by the density of proteins at the surface,since diffracted emission fluorescence prevents tracking of individual proteins separated by less than 1 μm.The recent emergence of high-density SPT techniques based on temporal emission decorrelation,such as single-particle tracking with photoactivated localization microscopy (sptPALM),allowed the diffraction limit of classic light microscopy to be broken and reach nanometerlevel spatial resolutions (Manley et al.,2008).Application of these techniques has rendered possible the characterization of the structural and dynamic heterogeneity of PM proteins with an accuracy of ~20-80 nm (Rossier et al.,2012).Such super-resolved dynamic imaging of membrane proteins has not yet been applied to any plant system.Here,we report the first use in plants of the live-cell sptPALM technique,providing a high-density super-resolved nanoscale map of individual membrane-protein motions.Eric Hosy Alexandre Martiniere Daniel Choquet Christophe Maurel Doan- Trung Luu 2015Molecular Plant2015,8,2:3
2Root osmotic sensing from local perception to systemic responses显示文摘Plants face a constantly changing environment,requiring fine tuning of their growth and development.Plants have therefore developed numerous mechanisms to cope with environmental stress conditions.One striking exam-ple is root response to water deficit.Upon drought(which causes osmotic stress to cells),plants can among other responses alter locally their root system architecture(hydropatterning)or orientate their root growth to optimize water uptake(hydrotropism).They can also modify their hydraulic properties,metabolism and development coordi-nately at the whole root and plant levels.Upstream of these developmental and physiological changes,plant roots must perceive and transduce signals for water availability.Here,we review current knowledge on plant osmotic per-ception and discuss how long distance signaling can play a role in signal integration,leading to the great phenotypic plasticity of roots and plant development.Lucille Gorgues Xuelian Li Christophe Maurel Alexandre Martiniere Philippe Nacry 2022Stress Biology2022,2,1:1
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