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Detecting forest response to droughts with global observations of vegetation water content

Droughts in a warming climate have become more common and more extreme, making understanding forest responses to water stress increasingly pressing. Analysis of water stress in trees has long focused on water potential in xylem and leaves, which influences stomatal closure and water flow through the...

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Autores principales: Konings, Alexandra G., Saatchi, Sassan S., Frankenberg, Christian, Keller, Michael, Leshyk, Victor, Anderegg, William R. L., Humphrey, Vincent, Matheny, Ashley M., Trugman, Anna, Sack, Lawren, Agee, Elizabeth, Barnes, Mallory L., Binks, Oliver, Cawse‐Nicholson, Kerry, Christoffersen, Bradley O., Entekhabi, Dara, Gentine, Pierre, Holtzman, Nataniel M., Katul, Gabriel G., Liu, Yanlan, Longo, Marcos, Martinez‐Vilalta, Jordi, McDowell, Nate, Meir, Patrick, Mencuccini, Maurizio, Mrad, Assaad, Novick, Kimberly A., Oliveira, Rafael S., Siqueira, Paul, Steele‐Dunne, Susan C., Thompson, David R., Wang, Yujie, Wehr, Richard, Wood, Jeffrey D., Xu, Xiangtao, Zuidema, Pieter A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9293345/
https://www.ncbi.nlm.nih.gov/pubmed/34478589
http://dx.doi.org/10.1111/gcb.15872
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author Konings, Alexandra G.
Saatchi, Sassan S.
Frankenberg, Christian
Keller, Michael
Leshyk, Victor
Anderegg, William R. L.
Humphrey, Vincent
Matheny, Ashley M.
Trugman, Anna
Sack, Lawren
Agee, Elizabeth
Barnes, Mallory L.
Binks, Oliver
Cawse‐Nicholson, Kerry
Christoffersen, Bradley O.
Entekhabi, Dara
Gentine, Pierre
Holtzman, Nataniel M.
Katul, Gabriel G.
Liu, Yanlan
Longo, Marcos
Martinez‐Vilalta, Jordi
McDowell, Nate
Meir, Patrick
Mencuccini, Maurizio
Mrad, Assaad
Novick, Kimberly A.
Oliveira, Rafael S.
Siqueira, Paul
Steele‐Dunne, Susan C.
Thompson, David R.
Wang, Yujie
Wehr, Richard
Wood, Jeffrey D.
Xu, Xiangtao
Zuidema, Pieter A.
author_facet Konings, Alexandra G.
Saatchi, Sassan S.
Frankenberg, Christian
Keller, Michael
Leshyk, Victor
Anderegg, William R. L.
Humphrey, Vincent
Matheny, Ashley M.
Trugman, Anna
Sack, Lawren
Agee, Elizabeth
Barnes, Mallory L.
Binks, Oliver
Cawse‐Nicholson, Kerry
Christoffersen, Bradley O.
Entekhabi, Dara
Gentine, Pierre
Holtzman, Nataniel M.
Katul, Gabriel G.
Liu, Yanlan
Longo, Marcos
Martinez‐Vilalta, Jordi
McDowell, Nate
Meir, Patrick
Mencuccini, Maurizio
Mrad, Assaad
Novick, Kimberly A.
Oliveira, Rafael S.
Siqueira, Paul
Steele‐Dunne, Susan C.
Thompson, David R.
Wang, Yujie
Wehr, Richard
Wood, Jeffrey D.
Xu, Xiangtao
Zuidema, Pieter A.
author_sort Konings, Alexandra G.
collection PubMed
description Droughts in a warming climate have become more common and more extreme, making understanding forest responses to water stress increasingly pressing. Analysis of water stress in trees has long focused on water potential in xylem and leaves, which influences stomatal closure and water flow through the soil‐plant‐atmosphere continuum. At the same time, changes of vegetation water content (VWC) are linked to a range of tree responses, including fluxes of water and carbon, mortality, flammability, and more. Unlike water potential, which requires demanding in situ measurements, VWC can be retrieved from remote sensing measurements, particularly at microwave frequencies using radar and radiometry. Here, we highlight key frontiers through which VWC has the potential to significantly increase our understanding of forest responses to water stress. To validate remote sensing observations of VWC at landscape scale and to better relate them to data assimilation model parameters, we introduce an ecosystem‐scale analog of the pressure–volume curve, the non‐linear relationship between average leaf or branch water potential and water content commonly used in plant hydraulics. The sources of variability in these ecosystem‐scale pressure‐volume curves and their relationship to forest response to water stress are discussed. We further show to what extent diel, seasonal, and decadal dynamics of VWC reflect variations in different processes relating the tree response to water stress. VWC can also be used for inferring belowground conditions—which are difficult to impossible to observe directly. Lastly, we discuss how a dedicated geostationary spaceborne observational system for VWC, when combined with existing datasets, can capture diel and seasonal water dynamics to advance the science and applications of global forest vulnerability to future droughts.
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spelling pubmed-92933452022-07-20 Detecting forest response to droughts with global observations of vegetation water content Konings, Alexandra G. Saatchi, Sassan S. Frankenberg, Christian Keller, Michael Leshyk, Victor Anderegg, William R. L. Humphrey, Vincent Matheny, Ashley M. Trugman, Anna Sack, Lawren Agee, Elizabeth Barnes, Mallory L. Binks, Oliver Cawse‐Nicholson, Kerry Christoffersen, Bradley O. Entekhabi, Dara Gentine, Pierre Holtzman, Nataniel M. Katul, Gabriel G. Liu, Yanlan Longo, Marcos Martinez‐Vilalta, Jordi McDowell, Nate Meir, Patrick Mencuccini, Maurizio Mrad, Assaad Novick, Kimberly A. Oliveira, Rafael S. Siqueira, Paul Steele‐Dunne, Susan C. Thompson, David R. Wang, Yujie Wehr, Richard Wood, Jeffrey D. Xu, Xiangtao Zuidema, Pieter A. Glob Chang Biol Research Review Droughts in a warming climate have become more common and more extreme, making understanding forest responses to water stress increasingly pressing. Analysis of water stress in trees has long focused on water potential in xylem and leaves, which influences stomatal closure and water flow through the soil‐plant‐atmosphere continuum. At the same time, changes of vegetation water content (VWC) are linked to a range of tree responses, including fluxes of water and carbon, mortality, flammability, and more. Unlike water potential, which requires demanding in situ measurements, VWC can be retrieved from remote sensing measurements, particularly at microwave frequencies using radar and radiometry. Here, we highlight key frontiers through which VWC has the potential to significantly increase our understanding of forest responses to water stress. To validate remote sensing observations of VWC at landscape scale and to better relate them to data assimilation model parameters, we introduce an ecosystem‐scale analog of the pressure–volume curve, the non‐linear relationship between average leaf or branch water potential and water content commonly used in plant hydraulics. The sources of variability in these ecosystem‐scale pressure‐volume curves and their relationship to forest response to water stress are discussed. We further show to what extent diel, seasonal, and decadal dynamics of VWC reflect variations in different processes relating the tree response to water stress. VWC can also be used for inferring belowground conditions—which are difficult to impossible to observe directly. Lastly, we discuss how a dedicated geostationary spaceborne observational system for VWC, when combined with existing datasets, can capture diel and seasonal water dynamics to advance the science and applications of global forest vulnerability to future droughts. John Wiley and Sons Inc. 2021-09-25 2021-12 /pmc/articles/PMC9293345/ /pubmed/34478589 http://dx.doi.org/10.1111/gcb.15872 Text en © 2021 The Authors. Global Change Biology published by John Wiley & Sons Ltd. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Review
Konings, Alexandra G.
Saatchi, Sassan S.
Frankenberg, Christian
Keller, Michael
Leshyk, Victor
Anderegg, William R. L.
Humphrey, Vincent
Matheny, Ashley M.
Trugman, Anna
Sack, Lawren
Agee, Elizabeth
Barnes, Mallory L.
Binks, Oliver
Cawse‐Nicholson, Kerry
Christoffersen, Bradley O.
Entekhabi, Dara
Gentine, Pierre
Holtzman, Nataniel M.
Katul, Gabriel G.
Liu, Yanlan
Longo, Marcos
Martinez‐Vilalta, Jordi
McDowell, Nate
Meir, Patrick
Mencuccini, Maurizio
Mrad, Assaad
Novick, Kimberly A.
Oliveira, Rafael S.
Siqueira, Paul
Steele‐Dunne, Susan C.
Thompson, David R.
Wang, Yujie
Wehr, Richard
Wood, Jeffrey D.
Xu, Xiangtao
Zuidema, Pieter A.
Detecting forest response to droughts with global observations of vegetation water content
title Detecting forest response to droughts with global observations of vegetation water content
title_full Detecting forest response to droughts with global observations of vegetation water content
title_fullStr Detecting forest response to droughts with global observations of vegetation water content
title_full_unstemmed Detecting forest response to droughts with global observations of vegetation water content
title_short Detecting forest response to droughts with global observations of vegetation water content
title_sort detecting forest response to droughts with global observations of vegetation water content
topic Research Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9293345/
https://www.ncbi.nlm.nih.gov/pubmed/34478589
http://dx.doi.org/10.1111/gcb.15872
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