| Literature DB >> 29910820 |
Jared J Stewart1, Stephanie K Polutchko1, Barbara Demmig-Adams1, William W Adams1.
Abstract
An Arabidopsis thaliana accession with naturally low vein density, Eifel-5 (Ei-5), was compared to Columbia-0 (Col-0) with respect to rosette growth, foliar vein architecture, photosynthesis, and transpiration. In addition to having to a lower vein density, Ei-5 grew more slowly, with significantly lower rates of rosette expansion, but had similar capacities for photosynthetic oxygen evolution on a leaf area basis compared to Col-0. The individual foliar minor veins were larger in Ei-5, with a greater number of vascular cells per vein, compared to Col-0. This compensation for low vein density resulted in similar values for the product of vein density × phloem cell number per minor vein in Ei-5 and Col-0, which suggests a similar capacity for foliar sugar export to support similar photosynthetic capacities per unit leaf area. In contrast, the product of vein density × xylem cell number per minor vein was significantly greater in Ei-5 compared to Col-0, and was associated not only with a higher ratio of water-transporting tracheary elements versus sugar-transporting sieve elements but also significantly higher foliar transpiration rates per leaf area in Ei-5. In contrast, previous studies in other systems had reported higher ratios of tracheary to sieve elements and higher transpiration rate to be associated with higher - rather than lower - vein densities. The Ei-5 accession thus further underscores the plasticity of the foliar vasculature by illustrating an example where a higher ratio of tracheary to sieve elements is associated with a lower vein density. Establishment of the Ei-5 accession, with a low vein density but an apparent overcapacity for water flux through the foliar xylem network, may have been facilitated by a higher level of precipitation in its habitat of origin compared to that of the Col-0 accession.Entities:
Keywords: Arabidopsis thaliana; phloem; photosynthesis; transpiration; vein density; xylem
Year: 2018 PMID: 29910820 PMCID: PMC5992485 DOI: 10.3389/fpls.2018.00693
Source DB: PubMed Journal: Front Plant Sci ISSN: 1664-462X Impact factor: 5.753
Leaf minor vein features and gas exchange for the Col-0 and low-vein-density Ei-5 accessions of Arabidopsis thaliana grown under a 9-h photoperiod of 100 μmol photons m-2 s-1 at a leaf temperature of 20°C.
| Low light | |||
|---|---|---|---|
| Parameter | Col-0 | Ei-5 | |
| Minor vein density (mm mm-2) | 2.12 @ 0.10 | 1.52 @ 0.12 | ∗∗∗ |
| Cells per minor vein | 39.4 @ 1.9 | 54.9 @ 1.4 | ∗∗∗ |
| Cells per minor vein × vein density | 83.8 @ 4.1 | 83.6 @ 2.1 | |
| Xylem cells per minor vein | 5.8 @ 0.6 | 10.7 @ 0.9 | ∗∗ |
| Phloem cells per minor vein | 30.6 @ 1.2 | 39.7 @ 1.7 | ∗∗ |
| Ratio of xylem to phloem cells | 0.187 @ 0.017 | 0.273 @ 0.034 | ∗ |
| Tracheary elements per minor vein | 3.46 @ 0.37 | 6.53 @ 0.47 | ∗∗ |
| Sieve elements per minor vein | 7.0 @ 0.4 | 10.2 @ 0.6 | ∗∗ |
| CCs + PCs per minor vein | 23.7 @ 0.8 | 29.5 @ 1.2 | ∗∗ |
| Ratio of tracheary to sieve elements | 0.509 @ 0.054 | 0.666 @ 0.069 | |
| Photosynthetic capacity (μmol O2 m-2 s-1) | 16.0 @ 3.3 | 16.0 @ 0.8 | |
| Phloem cells per minor vein × vein density | 65.1 @ 2.5 | 60.4 @ 2.6 | |
| Sieve elements per minor vein × vein density | 14.8 @ 0.9 | 15.5 @ 0.9 | |
| CCs + PCs per minor vein × vein density | 50.3 @ 1.8 | 44.9 @ 1.9 | ∗ |
| Transpiration ratio (mol H2O mol-1 CO2) | 321 @ 59 | 705 @ 206 | ∗∗ |
| Xylem cells per minor vein × vein density | 12.4 @ 1.4 | 16.3 @ 1.3 | ∗ |
| Tracheary elements per minor vein × vein density | 7.36 @ 0.79 | 9.95 @ 0.71 | ∗ |
Results of a two-way analysis of variance for the effect of genotype, growth light intensity, and the degree of genotype response to growth light intensity for parameters in Table and scores of principal components 1 and 2 (see Figure ).
| Parameter | Genotype | Light | Genotype × Light |
|---|---|---|---|
| Minor vein density (mm mm-2) | ∗∗∗ | ∗∗ | |
| Cells per minor vein | ∗∗∗ | ∗∗∗ | ∗ |
| Cells per minor vein × vein density | ∗∗∗ | ||
| Xylem cells per minor vein | ∗∗∗ | ∗∗∗ | ∗∗ |
| Phloem cells per minor vein | ∗∗∗ | ∗∗∗ | |
| Ratio of xylem to phloem cells | ∗∗∗ | ∗ | |
| Tracheary elements per minor vein | ∗∗∗ | ∗∗∗ | ∗∗ |
| Sieve elements per minor vein | ∗∗∗ | ∗∗∗ | ∗ |
| CCs + PCs per minor vein | ∗∗∗ | ∗∗∗ | |
| Ratio of tracheary to sieve elements | ∗∗ | ||
| Photosynthetic capacity (μmol O2 m-2 s-1) | ∗∗∗ | ||
| Phloem cells per minor vein × vein density | ∗∗∗ | ||
| Sieve elements per minor vein × vein density | ∗∗∗ | ||
| CCs + PCs per minor vein × vein density | ∗∗∗ | ||
| Transpiration ratio (mol H2O mol-1 CO2) | ∗∗∗ | ∗∗∗ | ∗ |
| Xylem cells per minor vein × vein density | ∗∗ | ∗∗∗ | |
| Tracheary elements per minor vein × vein density | ∗∗∗ | ∗∗∗ | |
| Principal component 1 | ∗∗∗ | ∗∗∗ | |
| Principal component 2 | ∗∗∗ | ∗∗∗ |