| Literature DB >> 30272223 |
Natalie A McBranch1, Charlotte Grossiord1, Henry Adams2, Isaac Borrego1, Adam D Collins1, Turin Dickman1, Max Ryan1, Sanna Sevanto1, Nate G McDowell3.
Abstract
The leaf area to sapwood area ratios of trees (Al:AS) can shift to maintain homeostatic gas exchange per unit leaf area in response to climate variability. We tested the hypothesis that trees alter their Al:AS ratios in response to long-term warming and reduced precipitation in order to maintain leaf-specific gas exchange rates under more stressful conditions. Whole-tree Al:AS was measured on mature piñon pine (Pinus edulis Engelm.) and one-seed juniper (Juniperus monosperma (Engelm.) Sarg.) trees after 5 years (2012-16) of chronic exposure to increased temperature (+4.8 °C), precipitation reduction (-45%), or both simultaneously. No difference was found in Al:As among treatments for either species. Associated with this lack of shift in Al:As were large changes in pre-dawn leaf water potential and stomatal conductance, consistent with theoretical expectations of interactions between leaf and whole-tree hydraulic supply. Our results suggest that a lack of whole-tree acclimation in Al:As results in the reductions in plant gas exchange and water status associated with long-term warming and reduced precipitation in semi-arid woodlands.Entities:
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Year: 2019 PMID: 30272223 DOI: 10.1093/treephys/tpy066
Source DB: PubMed Journal: Tree Physiol ISSN: 0829-318X Impact factor: 4.196