Reviews and syntheses: on the roles trees play in building and plumbing the critical zone
Trees, the most successful biological power plants on earth, build and plumb the critical zone (CZ) in ways that we do not yet understand. To encourage exploration of the character and implications of interactions between trees and soil in the CZ, we propose nine hypotheses that can be tested at d...
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Format: | Article |
Language: | English |
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Copernicus Publications
2017-11-01
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Series: | Biogeosciences |
Online Access: | https://www.biogeosciences.net/14/5115/2017/bg-14-5115-2017.pdf |
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doaj-3910ca62c0284f16b541371001388b04 |
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record_format |
Article |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
S. L. Brantley D. M. Eissenstat J. A. Marshall J. A. Marshall S. E. Godsey Z. Balogh-Brunstad D. L. Karwan S. A. Papuga S. A. Papuga J. Roering T. E. Dawson J. Evaristo O. Chadwick J. J. McDonnell K. C. Weathers |
spellingShingle |
S. L. Brantley D. M. Eissenstat J. A. Marshall J. A. Marshall S. E. Godsey Z. Balogh-Brunstad D. L. Karwan S. A. Papuga S. A. Papuga J. Roering T. E. Dawson J. Evaristo O. Chadwick J. J. McDonnell K. C. Weathers Reviews and syntheses: on the roles trees play in building and plumbing the critical zone Biogeosciences |
author_facet |
S. L. Brantley D. M. Eissenstat J. A. Marshall J. A. Marshall S. E. Godsey Z. Balogh-Brunstad D. L. Karwan S. A. Papuga S. A. Papuga J. Roering T. E. Dawson J. Evaristo O. Chadwick J. J. McDonnell K. C. Weathers |
author_sort |
S. L. Brantley |
title |
Reviews and syntheses: on the roles trees play in building and plumbing the critical zone |
title_short |
Reviews and syntheses: on the roles trees play in building and plumbing the critical zone |
title_full |
Reviews and syntheses: on the roles trees play in building and plumbing the critical zone |
title_fullStr |
Reviews and syntheses: on the roles trees play in building and plumbing the critical zone |
title_full_unstemmed |
Reviews and syntheses: on the roles trees play in building and plumbing the critical zone |
title_sort |
reviews and syntheses: on the roles trees play in building and plumbing the critical zone |
publisher |
Copernicus Publications |
series |
Biogeosciences |
issn |
1726-4170 1726-4189 |
publishDate |
2017-11-01 |
description |
Trees, the most successful biological power plants on earth, build and plumb the critical zone (CZ) in ways that we do not yet
understand. To encourage exploration of the character and implications of interactions between trees and soil in the CZ, we propose
nine hypotheses that can be tested at diverse settings. The hypotheses are roughly divided into those about the architecture
(building) and those about the water (plumbing) in the CZ, but the two
functions are intertwined. Depending upon one's
disciplinary background, many of the nine hypotheses listed below may appear obviously true or obviously false. (1) Tree roots can
only physically penetrate and biogeochemically comminute the immobile substrate underlying mobile soil where that underlying
substrate is fractured or pre-weathered. (2) In settings where the thickness of weathered material, <i>H</i>, is large, trees primarily
shape the CZ through biogeochemical reactions within the rooting zone. (3) In forested uplands, the thickness of mobile soil, <i>h</i>,
can evolve toward a steady state because of feedbacks related to root disruption and tree throw. (4) In settings where <i>h</i> ≪ <i>H</i> and
the rates of uplift and erosion are low, the uptake of phosphorus into trees
is buffered by the fine-grained fraction of the soil, and
the ultimate source of this phosphorus is dust. (5) In settings of limited water availability, trees maintain the highest length
density of functional roots at depths where water can be extracted over most of the growing season with the least amount of energy
expenditure. (6) Trees grow the majority of their roots in the zone where the most growth-limiting resource is abundant, but they
also grow roots at other depths to forage for other resources and to hydraulically redistribute those resources to depths where they
can be taken up more efficiently. (7) Trees rely on matrix water in the unsaturated zone that at times may have an isotopic
composition distinct from the gravity-drained water that transits from the hillslope to groundwater and streamflow. (8) Mycorrhizal
fungi can use matrix water directly, but trees can only use this water by
accessing it indirectly through the fungi. (9) Even trees
growing well above the valley floor of a catchment can directly affect stream chemistry where changes in permeability near the
rooting zone promote intermittent zones of water saturation and downslope flow of water to the stream. By testing these nine
hypotheses, we will generate important new cross-disciplinary insights that
advance CZ science. |
url |
https://www.biogeosciences.net/14/5115/2017/bg-14-5115-2017.pdf |
work_keys_str_mv |
AT slbrantley reviewsandsynthesesontherolestreesplayinbuildingandplumbingthecriticalzone AT dmeissenstat reviewsandsynthesesontherolestreesplayinbuildingandplumbingthecriticalzone AT jamarshall reviewsandsynthesesontherolestreesplayinbuildingandplumbingthecriticalzone AT jamarshall reviewsandsynthesesontherolestreesplayinbuildingandplumbingthecriticalzone AT segodsey reviewsandsynthesesontherolestreesplayinbuildingandplumbingthecriticalzone AT zbaloghbrunstad reviewsandsynthesesontherolestreesplayinbuildingandplumbingthecriticalzone AT dlkarwan reviewsandsynthesesontherolestreesplayinbuildingandplumbingthecriticalzone AT sapapuga reviewsandsynthesesontherolestreesplayinbuildingandplumbingthecriticalzone AT sapapuga reviewsandsynthesesontherolestreesplayinbuildingandplumbingthecriticalzone AT jroering reviewsandsynthesesontherolestreesplayinbuildingandplumbingthecriticalzone AT tedawson reviewsandsynthesesontherolestreesplayinbuildingandplumbingthecriticalzone AT jevaristo reviewsandsynthesesontherolestreesplayinbuildingandplumbingthecriticalzone AT ochadwick reviewsandsynthesesontherolestreesplayinbuildingandplumbingthecriticalzone AT jjmcdonnell reviewsandsynthesesontherolestreesplayinbuildingandplumbingthecriticalzone AT kcweathers reviewsandsynthesesontherolestreesplayinbuildingandplumbingthecriticalzone |
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doaj-3910ca62c0284f16b541371001388b042020-11-25T01:57:55ZengCopernicus PublicationsBiogeosciences1726-41701726-41892017-11-01145115514210.5194/bg-14-5115-2017Reviews and syntheses: on the roles trees play in building and plumbing the critical zoneS. L. Brantley0D. M. Eissenstat1J. A. Marshall2J. A. Marshall3S. E. Godsey4Z. Balogh-Brunstad5D. L. Karwan6S. A. Papuga7S. A. Papuga8J. Roering9T. E. Dawson10J. Evaristo11O. Chadwick12J. J. McDonnell13K. C. Weathers14Earth and Environmental Systems Institute and Department of Geosciences, Pennsylvania State University, University Park, PA, USADepartment of Ecosystem Science and Management, Pennsylvania State University, University Park, PA, USAEarth and Planetary Science, University of California-Berkeley, Berkeley, CA, USAInstitute of Alpine and Arctic Research (INSTAAR), University of Colorado, Boulder, CO 80309, USADepartment of Geosciences, Idaho State University, Pocatello, ID, USADepartment of Geology and Environmental Sciences, Hartwick College, Oneonta, NY, USADepartment of Forest Resources, University of Minnesota, Saint Paul, MN, USASchool of Natural Resources and Environment, University of Arizona, Tucson, AZ, USADepartment of Geology, Wayne State University, Detroit, MI, USADepartment of Geological Sciences, University of Oregon, Eugene, OR, USADepartment of Integrative Biology, University of California, Berkeley, CA, USADepartment of Natural Resources and Environmental Science, University of Nevada, Reno, NV, USADepartment of Geography, University of California-Santa Barbara, Santa Barbara, CA, USASchool of Environment and Sustainability, University of Saskatchewan, Saskatoon, CanadaCary Institute of Ecosystem Studies, Millbrook, NY, USATrees, the most successful biological power plants on earth, build and plumb the critical zone (CZ) in ways that we do not yet understand. To encourage exploration of the character and implications of interactions between trees and soil in the CZ, we propose nine hypotheses that can be tested at diverse settings. The hypotheses are roughly divided into those about the architecture (building) and those about the water (plumbing) in the CZ, but the two functions are intertwined. Depending upon one's disciplinary background, many of the nine hypotheses listed below may appear obviously true or obviously false. (1) Tree roots can only physically penetrate and biogeochemically comminute the immobile substrate underlying mobile soil where that underlying substrate is fractured or pre-weathered. (2) In settings where the thickness of weathered material, <i>H</i>, is large, trees primarily shape the CZ through biogeochemical reactions within the rooting zone. (3) In forested uplands, the thickness of mobile soil, <i>h</i>, can evolve toward a steady state because of feedbacks related to root disruption and tree throw. (4) In settings where <i>h</i> ≪ <i>H</i> and the rates of uplift and erosion are low, the uptake of phosphorus into trees is buffered by the fine-grained fraction of the soil, and the ultimate source of this phosphorus is dust. (5) In settings of limited water availability, trees maintain the highest length density of functional roots at depths where water can be extracted over most of the growing season with the least amount of energy expenditure. (6) Trees grow the majority of their roots in the zone where the most growth-limiting resource is abundant, but they also grow roots at other depths to forage for other resources and to hydraulically redistribute those resources to depths where they can be taken up more efficiently. (7) Trees rely on matrix water in the unsaturated zone that at times may have an isotopic composition distinct from the gravity-drained water that transits from the hillslope to groundwater and streamflow. (8) Mycorrhizal fungi can use matrix water directly, but trees can only use this water by accessing it indirectly through the fungi. (9) Even trees growing well above the valley floor of a catchment can directly affect stream chemistry where changes in permeability near the rooting zone promote intermittent zones of water saturation and downslope flow of water to the stream. By testing these nine hypotheses, we will generate important new cross-disciplinary insights that advance CZ science.https://www.biogeosciences.net/14/5115/2017/bg-14-5115-2017.pdf |