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1.
J Exp Bot ; 69(22): 5611-5623, 2018 11 26.
Article in English | MEDLINE | ID: mdl-30184113

ABSTRACT

According to the hydraulic vulnerability segmentation hypothesis, leaves are more vulnerable to decline of hydraulic conductivity than branches, but whether stem xylem is more embolism resistant than leaves remains unclear. Drought-induced embolism resistance of leaf xylem was investigated based on X-ray microcomputed tomography (microCT) for Betula pendula, Laurus nobilis, and Liriodendron tulipifera, excluding outside-xylem, and compared with hydraulic vulnerability curves for branch xylem. Moreover, bordered pit characters related to embolism resistance were investigated for both organs. Theoretical P50 values (i.e. the xylem pressure corresponding to 50% loss of hydraulic conductance) of leaves were generally within the same range as hydraulic P50 values of branches. P50 values of leaves were similar to branches for L. tulipifera (-2.01 versus -2.10 MPa, respectively), more negative for B. pendula (-2.87 versus -1.80 MPa), and less negative for L. nobilis (-6.4 versus -9.2 MPa). Despite more narrow conduits in leaves than branches, mean interconduit pit membrane thickness was similar in both organs, but significantly higher in leaves of B. pendula than in branches. This case study indicates that xylem shows a largely similar embolism resistance across leaves and branches, although differences both within and across organs may occur, suggesting interspecific variation with regard to the hydraulic vulnerability segmentation hypothesis.


Subject(s)
Betula/anatomy & histology , Droughts , Laurus/anatomy & histology , Liriodendron/anatomy & histology , Trees/anatomy & histology , Xylem/physiology , Betula/physiology , Laurus/physiology , Liriodendron/physiology , Plant Leaves/anatomy & histology , Plant Leaves/cytology , Plant Leaves/physiology , Plant Shoots/anatomy & histology , Plant Shoots/cytology , Plant Shoots/physiology , Trees/physiology , X-Ray Microtomography
2.
Int J Biometeorol ; 58(10): 2059-69, 2014 Dec.
Article in English | MEDLINE | ID: mdl-24615637

ABSTRACT

Many tree species have been shown to funnel substantial rainfall to their stem base as stemflow flux, given a favorable stand structure and storm conditions. As stemflow is a spatially concentrated flux, prior studies have shown its impact on ecohydrological and biogeochemical processes can be significant. Less work has been performed examining stemflow variability from meteorological conditions compared to canopy structural traits. As such, this study performs multiple regressions: (1) to examine stemflow variability due to event-based rainfall amount, intensity, mean wind speeds, and vapor pressure deficit; (2) across three diameter size classes (10-20, 21-40, and >41 cm DBH); and (3) for two common tree species in the northeastern USA of contrasting canopy morphology--Liriodendron tulipifera L. (yellow poplar) versus Fagus grandifolia Ehrh. (American beech). On the whole, multiple regression results yielded significant positive correlations with stemflow for rainfall amount, intensity, and mean wind speed and a significant negative correlation for vapor pressure deficit (VPD). Tree size altered stemflow-meteorological condition relationships, where larger trees strengthened indirect stemflow-VPD and direct stemflow-rainfall and stemflow-intensity associations. Canopies of rougher bark and lower branch angle (represented by L. tulipifera) enhanced correlations for nearly all meteorological conditions via greater stemflow residence time (and longer exposure to meteorological conditions). Multiple regressions performed on leafless canopy stemflow resulted in an inverse relationship with wind speeds, likely decoupling stemflow sheltered solely on bark surfaces from VPD influences. Leaf presence generally increased direct stemflow associations with rainfall intensity, yet diminished stemflow-rainfall relationships. F. grandifolia canopies (exemplifying structures of smoother bark and greater branch angle) strengthened differences in stemflow associations with rainfall/mean wind speed between leaf states. These findings are placed in a conceptual interception loss path analysis, which shows the potential to alter common interception loss estimates in high stemflow stands.


Subject(s)
Fagus , Liriodendron , Plant Stems/anatomy & histology , Plant Stems/physiology , Fagus/anatomy & histology , Fagus/physiology , Liriodendron/anatomy & histology , Liriodendron/physiology , Plant Leaves , Rain , Regression Analysis , Wind
3.
Tree Physiol ; 33(9): 940-8, 2013 Sep.
Article in English | MEDLINE | ID: mdl-24128849

ABSTRACT

Resource exploitation of patches is influenced not simply by the rate of root production in the patches but also by the lifespan of the roots inhabiting the patches. We examined the effect of sustained localized nitrogen (N) fertilization on root lifespan in four tree species that varied widely in root morphology and presumed foraging strategy. The study was conducted in a 12-year-old common garden in central Pennsylvania using a combination of data from minirhizotron and root in-growth cores. The two fine-root tree species, Acer negundo L. and Populus tremuloides Michx., exhibited significant increases in root lifespan with local N fertilization; no significant responses were observed in the two coarse-root tree species, Sassafras albidum Nutt. and Liriodendron tulipifera L. Across species, coarse-root tree species had longer median root lifespan than fine-root tree species. Localized N fertilization did not significantly increase the N concentration or the respiration of the roots growing in the N-rich patch. Our results suggest that some plant species appear to regulate the lifespan of different portions of their root system to improve resource acquisition while other species do not. Our results are discussed in the context of different strategies of foraging of nutrient patches in species of different root morphology.


Subject(s)
Plant Roots/anatomy & histology , Plant Roots/physiology , Trees/anatomy & histology , Trees/physiology , Acer/anatomy & histology , Acer/drug effects , Acer/physiology , Cell Respiration/drug effects , Liriodendron/anatomy & histology , Liriodendron/drug effects , Liriodendron/physiology , Nitrogen/pharmacology , Pennsylvania , Plant Roots/cytology , Plant Roots/drug effects , Populus/anatomy & histology , Populus/drug effects , Populus/physiology , Proportional Hazards Models , Sassafras/anatomy & histology , Sassafras/drug effects , Sassafras/physiology , Trees/drug effects
4.
New Phytol ; 190(1): 213-221, 2011 Apr.
Article in English | MEDLINE | ID: mdl-21210817

ABSTRACT

Not all roots born as first-order branches are the same and this has important consequences for overall function. We hypothesized that, compared with fibrous roots, pioneer roots are built to live longer at the expense of absorptive capacity. We tested this hypothesis by investigating pioneer and fibrous roots in their first 14 d of life in the arbuscular mycorrhizal tree species: Acer negundo, Acer saccharum, Juglans nigra, Liriodendron tulipifera and Populus tremuloides. Root observations were made with root-access boxes that allowed roots to be sampled at known ages in field-grown trees. Compared to fibrous roots, pioneer roots had larger diameter, lower specific root length, greater average length and a lack of mycorrhizal or nonmycorrhizal fungal colonization. Pioneer roots < 14 d old had more layers of hypodermis with a lower percentage of putative passage cells and more protoxylem groups than similar age fibrous roots. Our results suggest that pioneer roots are constructed for defense against biotic and abiotic challenges, exploration of soil distal to the stem, high fibrous root branching and secondary development with high axial hydraulic conductivity at the expense of mycorrhizal colonization and high absorptive capacity for water and nutrients.


Subject(s)
Mycorrhizae/growth & development , Trees/anatomy & histology , Trees/microbiology , Acer/anatomy & histology , Acer/growth & development , Acer/microbiology , Colony Count, Microbial , Juglans/anatomy & histology , Juglans/growth & development , Juglans/microbiology , Liriodendron/anatomy & histology , Liriodendron/growth & development , Liriodendron/microbiology , Populus/anatomy & histology , Populus/growth & development , Populus/microbiology , Trees/growth & development
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