In Situ Mapping of Nutrient Uptake in the Rhizosphere Using Nanoscale Secondary Ion Mass Spectrometry

被引:104
作者
Clode, Peta L. [1 ]
Kilburn, Matt R. [1 ]
Jones, David L. [3 ]
Stockdale, Elizabeth A. [4 ]
Cliff, John B., III [1 ]
Herrmann, Anke M. [2 ,4 ]
Murphy, Daniel V. [2 ]
机构
[1] Univ Western Australia, Ctr Microscopy Characterisat & Anal, Crawley, WA 6009, Australia
[2] Univ Western Australia, Soil Biol Grp, Sch Earth & Environm, Crawley, WA 6009, Australia
[3] Univ Wales, Sch Environm & Nat Resources, Bangor LL57 2UW, Gwynedd, Wales
[4] Newcastle Univ, Inst Res Environm & Sustainabil, Newcastle Upon Tyne NE1 7RU, Tyne & Wear, England
基金
澳大利亚研究理事会;
关键词
SOIL; PLANT; CELL; ASSIMILATION; PROGRESS; CARBON;
D O I
10.1104/pp.109.141499
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Plant roots and microorganisms interact and compete for nutrients within the rhizosphere, which is considered one of the most biologically complex systems on Earth. Unraveling the nitrogen (N) cycle is key to understanding and managing nutrient flows in terrestrial ecosystems, yet to date it has proved impossible to analyze and image N transfer in situ within such a complex system at a scale relevant to soil-microbe-plant interactions. Linking the physical heterogeneity of soil to biological processes marks a current frontier in plant and soil sciences. Here we present a new and widely applicable approach that allows imaging of the spatial and temporal dynamics of the stable isotope N-15 assimilated within the rhizosphere. This approach allows visualization and measurement of nutrient resource capture between competing plant cells and microorganisms. For confirmation we show the correlative use of nanoscale secondary ion mass spectrometry, and transmission electron microscopy, to image differential partitioning of (NH4+)-N-15 between plant roots and native soil microbial communities at the submicron scale. It is shown that N-15 compounds can be detected and imaged in situ in individual microorganisms in the soil matrix and intracellularly within the root. Nanoscale secondary ion mass spectrometry has potential to allow the study of assimilatory processes at the submicron level in a wide range of applications involving plants, microorganisms, and animals.
引用
收藏
页码:1751 / 1757
页数:7
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