Leaf structural and hydraulic adjustment with respect to air humidity and canopy position in silver birch (Betula pendula).


Journal

Journal of plant research
ISSN: 1618-0860
Titre abrégé: J Plant Res
Pays: Japan
ID NLM: 9887853

Informations de publication

Date de publication:
May 2019
Historique:
received: 21 12 2018
accepted: 27 03 2019
pubmed: 17 4 2019
medline: 20 7 2019
entrez: 17 4 2019
Statut: ppublish

Résumé

Climate change scenarios predict an increase in air temperature and precipitation in northern temperate regions of Europe by the end of the century. Increasing atmospheric humidity inevitably resulting from more frequent rainfall events reduces water flux through vegetation, influencing plants' structure and functioning. We investigated the extent to which artificially elevated air humidity affects the anatomical structure of the vascular system and hydraulic conductance of leaves in Betula pendula. A field experiment was carried out at the Free Air Humidity Manipulation (FAHM) site with a mean increase in relative air humidity (RH) by 7% over the ambient level across the growing period. Leaf hydraulic properties were determined with a high-pressure flow meter; changes in leaf anatomical structure were studied by means of conventional light microscopy and digital image processing techniques. Leaf development under elevated RH reduced leaf-blade hydraulic conductance and petiole conductivity and had a weak effect on leaf vascular traits (vessel diameters decreased), but had no significant influence on stomatal traits or tissue proportions in laminae. Both hydraulic traits and relevant anatomical characteristics demonstrated pronounced trends with respect to leaf location in the canopy-they increased from crown base to top. Stomatal traits were positively correlated with several petiole and leaf midrib vascular traits. The reduction in leaf hydraulic conductance in response to increasing air humidity is primarily attributable to reduced vessel size, while higher hydraulic efficiency of upper-crown foliage is associated with vertical trends in the size of vascular bundles, vessel number and vein density. Although we observed co-ordinated adjustment of vascular and hydraulic traits, the reduced leaf hydraulic efficiency could lead to an imbalance between hydraulic supply and transpiration demand under the extreme environmental conditions likely to become more frequent in light of global climate change.

Identifiants

pubmed: 30989500
doi: 10.1007/s10265-019-01106-w
pii: 10.1007/s10265-019-01106-w
doi:

Substances chimiques

Water 059QF0KO0R

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

369-381

Subventions

Organisme : Estonian Ministry of Education and Research
ID : Institutional research project IUT34-9

Références

Tree Physiol. 2010 Aug;30(8):1016-25
pubmed: 20610665
Plant Cell Environ. 2014 Jan;37(1):124-31
pubmed: 23682831
Tree Physiol. 2011 Jul;31(7):782-94
pubmed: 21813514
Am J Bot. 2006 Jun;93(6):829-39
pubmed: 21642145
Plant J. 2011 Jul;67(1):72-80
pubmed: 21401747
Physiol Plant. 2011 Jul;142(3):274-86
pubmed: 21457269
Oecologia. 2005 Jan;142(3):388-97
pubmed: 15517405
Tree Physiol. 2016 Oct;36(10):1272-1282
pubmed: 27417514
Oecologia. 2009 Aug;161(1):15-24
pubmed: 19449035
BMC Plant Biol. 2014 Mar 24;14:72
pubmed: 24655599
Ann Bot. 2012 Jul;110(1):35-45
pubmed: 22589329
Tree Physiol. 2005 May;25(5):621-32
pubmed: 15741148
Plant Cell Environ. 2002 Feb;25(2):265-274
pubmed: 11841669
Tree Physiol. 2010 Dec;30(12):1528-35
pubmed: 21071503
J Exp Bot. 2008;59(12):3317-25
pubmed: 18648104
Front Plant Sci. 2016 Jun 14;7:775
pubmed: 27379108
New Phytol. 2015 Feb;205(3):973-93
pubmed: 25318596
New Phytol. 2010 Dec;188(4):1113-23
pubmed: 20738785
Plant Physiol Biochem. 2013 Jul;68:104-10
pubmed: 23681117
J Environ Manage. 2014 Dec 15;146:69-83
pubmed: 25156267
Tree Physiol. 2008 Mar;28(3):385-92
pubmed: 18171662
Planta. 2014 Sep;240(3):489-96
pubmed: 24915747
New Phytol. 2013 Jun;198(4):983-1000
pubmed: 23600478
Ann Bot. 2012 Sep;110(4):849-57
pubmed: 22782237
Science. 2000 Sep 22;289(5487):2068-74
pubmed: 11000103
Tree Physiol. 2017 Sep 1;37(9):1218-1228
pubmed: 28938056
Plant Cell Environ. 2011 Jul;34(7):1150-63
pubmed: 21414014
Proc Natl Acad Sci U S A. 2008 Feb 5;105(5):1567-72
pubmed: 18227511
J Exp Bot. 2016 Sep;67(17):5029-39
pubmed: 27388214
Front Plant Sci. 2015 Oct 13;6:860
pubmed: 26528318
New Phytol. 2012 Nov;196(3):788-98
pubmed: 22978628
J Exp Bot. 2007;58(13):3711-8
pubmed: 17928370
J Plant Physiol. 2013 Jul 1;170(10):890-8
pubmed: 23474196
Plant Physiol. 2003 Jan;131(1):177-85
pubmed: 12529526
Ecology. 2006 Feb;87(2):483-91
pubmed: 16637372
Annu Rev Plant Biol. 2006;57:361-81
pubmed: 16669766

Auteurs

Arne Sellin (A)

Institute of Ecology and Earth Sciences, University of Tartu, Lai 40, 51005, Tartu, Estonia. arne.sellin@ut.ee.

Haruhiko Taneda (H)

Department of Biological Sciences, Graduate School of Science, University of Tokyo, Bunkyo Ku, 7-3-1 Hongo, Tokyo, 1130033, Japan.

Meeli Alber (M)

Institute of Ecology and Earth Sciences, University of Tartu, Lai 40, 51005, Tartu, Estonia.

Articles similaires

Genome, Viral Ralstonia Composting Solanum lycopersicum Bacteriophages
Animals Dietary Fiber Dextran Sulfate Mice Disease Models, Animal
Semiconductors Photosynthesis Polymers Carbon Dioxide Bacteria
Fragaria Light Plant Leaves Osmosis Stress, Physiological

Classifications MeSH