4.7 Article

Internal and external regulation of plant organ stoichiometry

期刊

PLANT BIOLOGY
卷 16, 期 5, 页码 897-907

出版社

WILEY
DOI: 10.1111/plb.12155

关键词

Bivariate line-fitting; element ratio; growth rate hypothesis; heterostasis; homeostasis; standardised major axis analysis; tissue nutrient concentration

资金

  1. 'II. Oldenburgischer Deichband'
  2. 'Wasserverbandstag e.V.' (NWS) [10/05]

向作者/读者索取更多资源

Internal differences between plant organs are caused by the functional differentiation of plant tissue, whereas external supply rates of elements constrain nutrient uptake. Previous studies have concentrated on foliar or whole-plant stoichiometric response to the environment, whereas investigation of organ-specific comparisons is still pending. We explore C:N:P ratios of stems, leaves, diaspores and belowground organs in marsh plants, and evaluate the influence of environmental constraints using standardised major axis regression (SMA). For a pooled dataset, SMA resulted in distinct patterns of isometric and anisometric slopes between plant organs. Bivariate line-fitting for a split dataset of four ecological groups revealed that species of the frequently inundated marsh had higher N: C ratios than those of the infrequently inundated marsh. The influence of nutrient availability was detectable in decreased P: C and increased N: P ratios in P-poor sites. Across ecological groups, leaves and diaspores showed higher elemental homeostasis than stems and belowground organs. Any change in N: C ratios of belowground organs and diaspores in response to the environment was accompanied by an even stronger internal change in stem N: C ratios, indicating a pivotal role of stems of herbaceous plants in ecosystem processes. We found distinct patterns of C: N: P ratios in plant organs related to their internal function and external environmental constraints. Leaves and diaspores showed a higher degree of homeostasis than stems and belowground organs. We detected a clear external signal in element: element ratios of plant organs, with low soil P translating into lower tissue P: C ratio and stronger N retention in leaves as a response to salt stress.

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